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Part IV - Wellness Interventions

Published online by Cambridge University Press:  18 September 2020

Waguih William IsHak
Affiliation:
Cedars-Sinai Medical Center and David Geffen School of Medicine, University of California Los Angeles (UCLA)
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Publisher: Cambridge University Press
Print publication year: 2020

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References

References

Dauncey, MJ. Recent advances in nutrition, genes and brain health. Proc Nutr Soc 2012; 71(4): 581591.CrossRefGoogle Scholar
Mondin, TC, Stuart, AL, Williams, LJ, et al. Diet quality, dietary patterns and short sleep duration: a cross-sectional population-based study. Eur J Nutr 2018; 58: 641651.CrossRefGoogle ScholarPubMed
Jacka, FN, O’Neil, A, Opie, R, et al. A randomised controlled trial of dietary improvement for adults with major depression (the “SMILES” trial). BMC Med 2017; 15(1): 23.CrossRefGoogle ScholarPubMed
Hayward, J, Jacka, FN, Skouteris, H, et al. Lifestyle factors and adolescent depressive symptomatology: associations and effect sizes of diet, physical activity and sedentary behaviour. Aust N Z J Psychiatry 2016; 50(11): 10641073.CrossRefGoogle ScholarPubMed
Jacka, FN, Mykletun, A, Berk, M. Moving towards a population health approach to the primary prevention of common mental disorders. BMC Med 2012; 27(10): 149.CrossRefGoogle Scholar
Mujcic, R, Oswald, J. Evolution of well-being and happiness after increases in consumption of fruit and vegetables. Am J Public Health 2016; 106(8): 15041510.CrossRefGoogle ScholarPubMed
Ocean, N, Howley, P, Ensor, J. Lettuce be happy: a longitudinal UK study on the relationship between fruit and vegetable consumption and well-being. Soc Sci Med 2019; 222: 335345.CrossRefGoogle Scholar
Ioannidis, JPA. The challenge of reforming nutritional epidemiologic research. JAMA 2018; 320(10): 969970.Google Scholar
Teicholz, N, The Big Fat Surprise. New York, Simon and Schuster; 2014.Google Scholar
Wang, Y, Hao, Q, Su, L, et al. Adherence to the Mediterranean diet and the risk of frailty in old people: a systematic review and meta-analysis. J Nutr Health Aging 2018; 22(5): 613618.CrossRefGoogle Scholar
Kojima, G, Avgerinou, C, Iliffe, S, Walters, K. Adherence to Mediterranean diet reduces incident frailty risk: systematic review and meta-analysis. J Am Geriatr Soc 2018; 66(4): 783788.CrossRefGoogle ScholarPubMed
Castelló, A, Boldo, E, Pérez-Gómez, B, et al. Adherence to the Western, Prudent and Mediterranean dietary patterns and breast cancer risk: MCC-Spain study. Maturitas 2017; 103: 815.Google Scholar
van den Brandt, PA, Schulpen, M. Mediterranean diet adherence and risk of postmenopausal breast cancer: results of a cohort study and meta-analysis. Int J Cancer 2017; 140(10): 22202231.Google Scholar
Krusinska, B, Hawrysz, I, Wadolowska, L, et al. Associations of Mediterranean diet and a posteriori derived dietary patterns with breast and lung cancer risk: a case-control study. Nutrients 2018; 11(10): 4.Google Scholar
Praud, D, Bertuccio, P, Bosetti, C, et al. Adherence to the Mediterranean diet and gastric cancer risk in Italy. Int J Cancer 2014; 134(12): 29352941.Google Scholar
Turati, F, Bravi, F, Polesel, J, et al. Adherence to the Mediterranean diet and nasopharyngeal cancer risk in Italy. Cancer Causes Control 2017; 28(2): 8995.CrossRefGoogle Scholar
Filomeno, M, Bosetti, C, Bidoli, E, et al. Mediterranean diet and risk of endometrial cancer: a pooled analysis of three Italian case-control studies. Br J Cancer 2015; 112(11): 18161821.CrossRefGoogle ScholarPubMed
Bosetti, C, Turati, F, Dal Pont, A, et al. The role of Mediterranean diet on the risk of pancreatic cancer. Br J Cancer 2013; 109(5): 13601366.CrossRefGoogle ScholarPubMed
Castelló, A, Amiano, P, Fernández de Larrea, N, et al. Low adherence to the western and high adherence to the Mediterranean dietary patterns could prevent colorectal cancer. Eur J Nutr 2018; 58: 14951505.CrossRefGoogle Scholar
Castelló, A, Boldo, E, Amiano, P, et al. Mediterranean Dietary pattern is associated with low risk of aggressive prostate cancer: MCC-Spain study. J Urol 2018; 199(2): 430437.CrossRefGoogle ScholarPubMed
Esposito, K, Marfella, R, Ciotola, M, et al. Effect of a Mediterranean-style diet on endothelial dysfunction and markers of vascular inflammation in the metabolic syndrome: a randomized trial. JAMA 2004; 292(12): 14401446.Google Scholar
Mattei, J, Sotos-Prieto, M, Bigornia, SJ, Noel, SE, Tucker, KL. The Mediterranean diet score is more strongly associated with favorable cardiometabolic risk factors over 2 years than other diet quality indexes in Puerto Rican adults. J Nutr 2017; 147(4): 661669.Google Scholar
Lasa, A, Miranda, J, Bulló, M, et al. Comparative effect of two Mediterranean diets versus a low-fat diet on glycaemic control in individuals with type 2 diabetes. Eur J Clin Nutr 2014; 68(7): 767772.CrossRefGoogle ScholarPubMed
Álvarez-Pérez, J, Sánchez-Villegas, A, Díaz-Benítez, EM, et al. Influence of a Mediterranean dietary pattern on body fat distribution: results of the PREDIMED-Canarias intervention randomized trial. J Am Coll Nutr 2016; 35(6): 568580.Google Scholar
Rallidis, LS, Lekakis, J, Kolomvotsou, A, et al. Close adherence to a Mediterranean diet improves endothelial function in subjects with abdominal obesity. Am J Clin Nutr 2009; 90(2): 263268.CrossRefGoogle ScholarPubMed
Estruch, R, Ros, E, Salas-Salvadó, J, et al. Primary prevention of cardiovascular disease with a Mediterranean diet supplemented with extra-virgin olive oil or nuts. N Engl J Med 2018; 378: e34,CrossRefGoogle ScholarPubMed
Salas-Salvadó, J, Bulló, M, Estruch, R, et al. Prevention of diabetes with Mediterranean diets: a subgroup analysis of a randomized trial. Ann Intern Med 2014; 160(1): 110.CrossRefGoogle ScholarPubMed
Esposito, K, Maiorino, MI, Bellastella, G, et al. A journey into a Mediterranean diet and type 2 diabetes: a systematic review with meta-analyses. BMJ Open 2015; 5(8). DOI:10.1136/bmjopen-2015-008222.Google Scholar
Ajala, O, English, P, Pinkney, J. Systematic review and meta-analysis of different dietary approaches to the management of type 2 diabetes. Am J Clin Nutr 2013; 97(3): 505516.CrossRefGoogle Scholar
Whalen, KA, McCullough, ML, Flanders, WD, et al. Paleolithic and Mediterranean diet pattern scores are inversely associated with biomarkers of inflammation and oxidative balance in adults. J Nutr 2016; 146(6): 12171226.CrossRefGoogle Scholar
Fresán, U, Bes-Rastrollo, M, Segovia-Siapco, G, et al. Does the MIND diet decrease depression risk? A comparison with Mediterranean diet in the SUN cohort. Eur J Nutr 2018; 58: 12711282.Google Scholar
Martínez-Lapiscina, EH, Clavero, P, Toledo, E, et al. Mediterranean diet improves cognition: the PREDIMED-NAVARRA randomised trial. J Neurol Neurosurg Psychiatry 2013; 84(12): 13181325.CrossRefGoogle ScholarPubMed
Anastasiou, CA, Yannakoulia, M, Kosmidis, MH, et al. Mediterranean diet and cognitive health: initial results from the Hellenic Longitudinal Investigation of Ageing and Diet. PLoS One 2017; 12(8): e0182048.Google Scholar
Féart, C, Samieri, C, Rondeau, V, et al. Adherence to a Mediterranean diet, cognitive decline, and risk of dementia. JAMA 2009; 302(6): 638648.CrossRefGoogle ScholarPubMed
Koyama, A, Houston, DK, Simonsick, EM, et al. Association between the Mediterranean diet and cognitive decline in a biracial population. J Gerontol A Biol Sci Med Sci 2015; 70(3): 354359.CrossRefGoogle Scholar
Berti, V, Walters, M, Sterling, J, et al. Mediterranean diet and 3-year Alzheimer brain biomarker changes in middle-aged adults. Neurology 2018; 90(20): e1789e1798.Google Scholar
Singh, B, Parsaik, AK, Mielke, MM, et al. Association of Mediterranean diet with mild cognitive impairment and Alzheimer’s disease: a systematic review and meta-analysis. J Alzheimers Dis 2014; 39(2): 271282.Google Scholar
Scarmeas, N, Luchsinger, JA, Mayeux, R, Stern, Y. Mediterranean diet and Alzheimer disease mortality. Neurology 2007; 69(11): 10841093.CrossRefGoogle ScholarPubMed
Alvarez-Alvarez, I, Zazpe, I, Pérez de Rojas, J, et al. Mediterranean diet, physical activity and their combined effect on all-cause mortality: the Seguimiento Universidad de Navarra (SUN) cohort. Prev Med 2018; 106: 4552.CrossRefGoogle Scholar
Kuipers, RS, Luxwolda, MF, Dijck-Brouwer, DA, et al. Estimated macronutrient and fatty acid intakes from an East African Paleolithic diet. Br J Nutr 2010; 104(11): 16661687.Google Scholar
Konner, M, Eaton, SB. Paleolithic nutrition: twenty-five years later. Nutr Clin Pract 2010; 25(6): 594602.CrossRefGoogle ScholarPubMed
Cordain, L, Miller, JB, Eaton, SB, et al. Plant–animal subsistence ratios and macronutrient energy estimations in worldwide hunter-gatherer diets. Am J Clin Nutr 2000; 71(3): 682692.Google Scholar
Frassetto, LA, Schloetter, M, Mietus-Synder, M, Morris, RC Jr, Sebastian, A. Metabolic and physiologic improvements from consuming a paleolithic, hunter-gatherer type diet. Eur J Clin Nutr. 2009; 63(8): 947955. Erratum in: Eur J Clin Nutr 2015; 69(12): 1376.Google Scholar
Otten, J, Stomby, A, Waling, M, et al. Benefits of a Paleolithic diet with and without supervised exercise on fat mass, insulin sensitivity, and glycemic control: a randomized controlled trial in individuals with type 2 diabetes. Diabetes Metab Res Rev. 2017; 33(1). DOI:10.1002/dmrr.2828.Google Scholar
Jönsson, T, Granfeldt, Y, Lindeberg, S, Hallberg, AC. Subjective satiety and other experiences of a Paleolithic diet compared to a diabetes diet in patients with type 2 diabetes. Nutr J 2013; 29(12): 105.CrossRefGoogle Scholar
Lindeberg, S, Jönsson, T, Granfeldt, Y, et al. A Palaeolithic diet improves glucose tolerance more than a Mediterranean-like diet in individuals with ischaemic heart disease. Diabetologia 2007; 50(9): 17951807.CrossRefGoogle ScholarPubMed
Genoni, A, Lyons-Wall, P, Lo, J, Devine, A. Cardiovascular metabolic effects and dietary composition of ad-libitum Paleolithic vs. Australian guide to healthy eating diets: a 4-week randomised trial. Nutrients 2016; 8(5). DOI:10.3390/nu8050314.Google Scholar
Mellberg, C, Sandberg, S, Ryberg, M, et al. Long-term effects of a Palaeolithic-type diet in obese postmenopausal women: a 2-year randomized trial. Eur J Clin Nutr 2014; 68(3): 350357.Google Scholar
Osterdahl, M, Kocturk, T, Koochek, A, Wändell, PE. Effects of a short-term intervention with a Paleolithic diet in healthy volunteers. Eur J Clin Nutr 2008; 62(5): 682685.CrossRefGoogle ScholarPubMed
Bligh, HF, Godsland, IF, Frost, G, et al. Plant-rich mixed meals based on Palaeolithic diet principles have a dramatic impact on incretin, peptide YY and satiety response, but show little effect on glucose and insulin homeostasis: an acute-effects randomised study. Br J Nutr 2015; 113(4): 574584.CrossRefGoogle ScholarPubMed
Fontes-Villalba, M, Lindeberg, S, Granfeldt, Y, et al. Palaeolithic diet decreases fasting plasma leptin concentrations more than a diabetes diet in patients with type 2 diabetes: a randomised cross-over trial. Cardiovasc Diabetol 2016; 15: 80.CrossRefGoogle ScholarPubMed
Whalen, KA, McCullough, ML, Flanders, WD, et al. Paleolithic and Mediterranean diet pattern scores are inversely associated with biomarkers of inflammation and oxidative balance in adults. J Nutr 2016; 146(6): 12171226.CrossRefGoogle Scholar
Whalen, KA, McCullough, M, Flanders, WD, et al. Paleolithic and Mediterranean diet pattern scores and risk of incident, sporadic colorectal adenomas. Am J Epidemiol 2014; 180(11): 10881097.CrossRefGoogle ScholarPubMed
Whalen, KA, Judd, S, McCullough, ML, et al. Paleolithic and Mediterranean diet pattern scores are inversely associated with all-cause and cause-specific mortality in adults. J Nutr 2017; 147(4): 612620.Google Scholar
Paoli, A, Rubini, A, Volek, JS, Grimaldi, KA. Beyond weight loss: a review of the therapeutic uses of very-low-carbohydrate (ketogenic) diets. Eur J Clin Nutr 2013; 67(8): 789796.Google Scholar
Owen, OE, Morgan, AP, Kemp, HG, et al. Brain metabolism during fasting. J Clin Invest 1967; 46(10): 15891595.Google Scholar
Paoli, A, Grimaldi, K, Toniolo, L, et al. Nutrition and acne: therapeutic potential of ketogenic diets. Skin Pharmacol Physiol 2012; 25(3): 111117.CrossRefGoogle ScholarPubMed
Cavaleri, F, Bashar, E. Potential synergies of β-Hydroxybutyrate and butyrate on the modulation of metabolism, inflammation, cognition, and general health. J Nutr Metab 2018; 2018: 7195760.Google Scholar
Martin-McGill, KJ, Marson, AG, Tudur Smith, C, Jenkinson, MD. The modified Ketogenic diet in adults with glioblastoma: an evaluation of feasibility and deliverability within the National Health Service. Nutr Cancer 2018; 70(4): 643649.Google Scholar
Zhang, J, Jia, PP, Liu, QL, et al. Low ketolytic enzyme levels in tumors predict ketogenic diet responses in cancer cell lines in vitro and in vivo. J Lipid Res 2018; 59(4): 625634.CrossRefGoogle ScholarPubMed
Aminzadeh-Gohari, S, Feichtinger, RG, Vidali, S, et al. A ketogenic diet supplemented with medium-chain triglycerides enhances the anti-tumor and anti-angiogenic efficacy of chemotherapy on neuroblastoma xenografts in a CD1-nu mouse model. Oncotarget 2017; 8(39): 6472864744.Google Scholar
Morscher, RJ, Aminzadeh-Gohari, S, Feichtinger, RG, et al. Inhibition of neuroblastoma tumor growth by ketogenic diet and/or calorie restriction in a CD1-Nu mouse model. PLoS One 2015; 10(6). DOI:10.1371/journal.pone.0129802.CrossRefGoogle ScholarPubMed
Martin-McGill, KJ, Jenkinson, MD, Tudur Smith, C, Marson, AG. The modified ketogenic diet for adults with refractory epilepsy: an evaluation of a set up service. Seizure 2017; 52: 16.Google Scholar
Neal, EG, Chaffe, H, Schwartz, RH, et al. The ketogenic diet for the treatment of childhood epilepsy: a randomised controlled trial. Lancet Neurol 2008; 7(6): 500506.Google Scholar
Nei, M, Ngo, L, Sirven, JI, Sperling, MR. Ketogenic diet in adolescents and adults with epilepsy. Seizure 2014; 23(6): 439442.Google Scholar
Bueno, NB, de Melo, IS, de Oliveira, SL, da Rocha Ataide, T. Very-low-carbohydrate ketogenic diet v. low-fat diet for long-term weight loss: a meta-analysis of randomised controlled trials. Br J Nutr 2013; 110(7): 11781187.Google Scholar
Moreno, B, Bellido, D, Sajoux, I, et al. Comparison of a very low-calorie-ketogenic diet with a standard low-calorie diet in the treatment of obesity. Endocrine 2014; 47(3): 793805.CrossRefGoogle ScholarPubMed
Cicero, AF, Benelli, M, Brancaleoni, M, et al. Middle and long-term impact of a very low-carbohydrate ketogenic diet on cardiometabolic factors: a multi-center, cross-sectional, clinical study. High Blood Press Cardiovasc Prev 2015; 22(4): 389394.Google Scholar
Paoli, A, Bianco, A, Grimaldi, KA, Lodi, A, Bosco, G. Long term successful weight loss with a combination biphasic ketogenic Mediterranean diet and Mediterranean diet maintenance protocol. Nutrients 2013; 5(12): 52055217.CrossRefGoogle ScholarPubMed
Gomez-Arbelaez, D, Bellido, D, Castro, AI, et al. Body composition changes after very-low-calorie ketogenic diet in obesity evaluated by 3 standardized methods. J Clin Endocrinol Metab 2017; 102(2): 488498.CrossRefGoogle ScholarPubMed
Moreno, B, Crujeiras, AB, Bellido, D, Sajoux, I, Casanueva, FF. Obesity treatment by very low-calorie-ketogenic diet at two years: reduction in visceral fat and on the burden of disease. Endocrine 2016; 54(3): 681690.CrossRefGoogle ScholarPubMed
Gomez-Arbelaez, D, Crujeiras, AB, Castro, AI, et al. Resting metabolic rate of obese patients under very low calorie ketogenic diet. Nutr Metab (Lond) 2018; 15: 18.Google Scholar
Johnstone, AM, Horgan, GW, Murison, SD, Bremner, DM, Lobley, GE. Effects of a high-protein ketogenic diet on hunger, appetite, and weight loss in obese men feeding ad libitum. Am J Clin Nutr 2008; 87(1): 4455.CrossRefGoogle ScholarPubMed
Sharman, MJ, Kraemer, WJ, Love, DM, et al. A ketogenic diet favorably affects serum biomarkers for cardiovascular disease in normal-weight men. J Nutr 2002; 132(7): 18791885.Google Scholar
Badman, MK, Kennedy, AR, Adams, AC, Pissios, P, Maratos-Flier, E. A very low carbohydrate ketogenic diet improves glucose tolerance in ob/ob mice independently of weight loss. Am J Physiol Endocrinol Metab 2009; 297(5): E1197E1204.Google Scholar
Saslow, LR, Mason, AE, Kim, S, et al. An online intervention comparing a very low-carbohydrate ketogenic diet and lifestyle recommendations versus a plate method diet in overweight individuals with type 2 diabetes: a randomized controlled trial. J Med Internet Res 2017; 19(2): e36.Google Scholar
Tay, J, Luscombe-Marsh, ND, Thompson, CH, et al. A very low-carbohydrate, low-saturated fat diet for type 2 diabetes management: a randomized trial. Diabetes Care 2014; 37(11): 29092918.Google Scholar
Appel, LJ, Moore, TJ, Obarzanek, E, et al. A clinical trial of the effects of dietary patterns on blood pressure. N Engl J Med 1997; 336(16): 11171124.CrossRefGoogle ScholarPubMed
Salehi-Abargouei, A, Maghsoudi, Z, Shirani, F, Azadbakht, L. Effects of Dietary Approaches to Stop Hypertension (DASH)-style diet on fatal or nonfatal cardiovascular diseases – incidence: a systematic review and meta-analysis on observational prospective studies. Nutrition 2013; 29(4): 611618.Google Scholar
Fung, TT, Chiuve, SE, McCullough, ML, et al. Adherence to a DASH-style diet and risk of coronary heart disease and stroke in women. Arch Intern Med 2008; 168(7): 713720.Google Scholar
Sacks, FM, Svetkey, LP, Vollmer, WM, et al.Effects on blood pressure of reduced dietary sodium and the Dietary Approaches to Stop Hypertension (DASH) diet. N Engl J Med 2001; 344(1): 310.Google Scholar
Siervo, M, Lara, J, Chowdhury, S, et al. Effects of the Dietary Approach to Stop Hypertension (DASH) diet on cardiovascular risk factors: a systematic review and meta-analysis. Br J Nutr 2015; 113(1): 115.Google Scholar
Saneei, P, Salehi-Abargouei, A, Esmaillzadeh, A, Azadbakht, L. Influence of Dietary Approaches to Stop Hypertension (DASH) diet on blood pressure: a systematic review and meta-analysis on randomized controlled trials. Nutr Metab Cardiovasc Dis 2014; 24(12): 12531261.Google Scholar
Berendsen, AAM, Kang, JH, van de Rest, O, et al. The Dietary Approaches to Stop Hypertension Diet, cognitive function, and cognitive decline in American older women. J Am Med Dir Assoc 2017; 18(5): 427432.Google Scholar
Hikmat, F, Appel, LJ. Effects of the DASH diet on blood pressure in patients with and without metabolic syndrome: results from the DASH trial. J Hum Hypertens 2014; 28(3): 170175.Google Scholar
Conlin, PR, Chow, D, Miller, ER 3rd, et al. The effect of dietary patterns on blood pressure control in hypertensive patients: results from the Dietary Approaches to Stop Hypertension (DASH) trial. Am J Hypertens 2000; 13(9): 949955.CrossRefGoogle ScholarPubMed
Chiu, S, Bergeron, N, Williams, PT, et al. Comparison of the DASH (Dietary Approaches to Stop Hypertension) diet and a higher-fat DASH diet on blood pressure and lipids and lipoproteins: a randomized controlled trial. Am J Clin Nutr 2016; 103(2): 341347.Google Scholar
Asemi, Z, Tabassi, Z, Samimi, M, Fahiminejad, T, Esmaillzadeh, A. Favourable effects of the Dietary Approaches to Stop Hypertension diet on glucose tolerance and lipid profiles in gestational diabetes: a randomised clinical trial. Br J Nutr 2013; 109(11): 20242030.Google Scholar
Razavi Zade, M, Telkabadi, MH, Bahmani, F, et al. The effects of DASH diet on weight loss and metabolic status in adults with non-alcoholic fatty liver disease: a randomized clinical trial. Liver Int 2016; 36(4): 563571.Google Scholar
Saneei, P, Hashemipour, M, Kelishadi, R, Esmaillzadeh, A. The Dietary Approaches to Stop Hypertension (DASH) diet affects inflammation in childhood metabolic syndrome: a randomized cross-over clinical trial. Ann Nutr Metab 2014; 64(1): 2027.Google Scholar
Rebholz, CM, Crews, DC, Grams, ME, et al. DASH (Dietary Approaches to Stop Hypertension) diet and risk of subsequent kidney disease. Am J Kidney Dis 2016; 68(6): 853861.Google Scholar
Levitan, EB, Lewis, CE, Tinker, LF, et al. Mediterranean and DASH diet scores and mortality in women with heart failure: the Women’s Health Initiative. Circ Heart Fail 2013; 6(6): 11161123.Google Scholar
Jiang, J, Liu, M, Troy, LM, et al. Concordance with DASH diet and blood pressure change: results from the Framingham Offspring Study (1991–2008). J Hypertens 2015; 33(11): 22232230.Google Scholar
Jakše, B, Pinter, S, Jakše, B, Bučar Pajek, M, Pajek, J. Effects of an ad libitum consumed low-fat plant-based diet supplemented with plant-based meal replacements on body composition indices. Biomed Res Int 2017; 2017: 9626390.Google Scholar
Wright, N, Wilson, L, Smith, M, Duncan, B, McHugh, P. The BROAD study: a randomized controlled trial using a whole food plant-based diet in the community for obesity, ischaemic heart disease or diabetes. Nutr Diabetes 2017; 7(3): e256.Google Scholar
Sofi, F, Dinu, M, Pagliai, G, et al. Low-calorie vegetarian versus Mediterranean diets for reducing body weight and improving cardiovascular risk profile: CARDIVEG study (cardiovascular prevention with vegetarian diet). Circulation 2018; 137(11): 11031113.Google Scholar
Turner-McGrievy, GM, Davidson, CR, Wingard, EE, Wilcox, S, Frongillo, EA. Comparative effectiveness of plant-based diets for weight loss: a randomized controlled trial of five different diets. Nutrition 2015; 31(2): 350358.Google Scholar
Chen, Z, Zuurmond, MG, van der Schaft, N, et al. Plant versus animal based diets and insulin resistance, prediabetes and type 2 diabetes: the Rotterdam Study. Eur J Epidemiol 2018. DOI:10.1007/s10654-018-0414-8.Google Scholar
Satija, A, Bhupathiraju, SN, Rimm, EB, et al. Plant-based dietary patterns and incidence of type 2 diabetes in US men and women: results from three prospective cohort studies. PLoS Med 2016; 13(6). DOI:0.1371/journal.pmed.1002039.Google Scholar
Mishra, S, Xu, J, Agarwal, U, et al. A multicenter randomized controlled trial of a plant-based nutrition program to reduce body weight and cardiovascular risk in the corporate setting: the GEICO study. Eur J Clin Nutr 2013; 67(7): 718724.Google Scholar
Chiu, YF, Hsu, CC, Chiu, TH, et al. Cross-sectional and longitudinal comparisons of metabolic profiles between vegetarian and non-vegetarian subjects: a matched cohort study. Br J Nutr 2015; 114(8): 13131320.Google Scholar
Yokoyama, Y, Nishimura, K, Barnard, ND, et al. Vegetarian diets and blood pressure: a meta-analysis. JAMA Intern Med 2014; 174(4): 577587.CrossRefGoogle ScholarPubMed
Yokoyama, Y, Levin, SM, Barnard, ND. Association between plant-based diets and plasma lipids: a systematic review and meta-analysis. Nutr Rev 2017; 75(9): 683698.Google Scholar
Kahleova, H, Levin, S, Barnard, N. Cardio-metabolic benefits of plant-based diets. Nutrients 2017; 9(8). pii: E848.Google Scholar
Satija, A, Bhupathiraju, SN, Spiegelman, D, et al. Healthful and unhealthful plant-based diets and the risk of coronary heart disease in U.S. adults. J Am Coll Cardiol 2017; 70(4): 411422.Google Scholar
Orlich, MJ, Singh, PN, Sabaté, J, et al. Vegetarian dietary patterns and the risk of colorectal cancers. JAMA Intern Med 2015; 175(5): 767776.Google Scholar
Aune, D, Giovannucci, E, Boffetta, P, et al. Fruit and vegetable intake and the risk of cardiovascular disease, total cancer and all-cause mortality: a systematic review and dose–response meta-analysis of prospective studies. Int J Epidemiol 2017; 46(3): 10291056.Google Scholar
Huang, T, Yang, B, Zheng, J, et al. Cardiovascular disease mortality and cancer incidence in vegetarians: a meta-analysis and systematic review. Ann Nutr Metab 2012; 60(4): 233240.Google Scholar
Appleby, PN, Crowe, FL, Bradbury, KE, Travis, RC, Key, TJ. Mortality in vegetarians and comparable nonvegetarians in the United Kingdom. Am J Clin Nutr 2016; 103(1): 218230.Google Scholar
Key, TJ, Fraser, GE, Thorogood, M, et al. Mortality in vegetarians and non-vegetarians: a collaborative analysis of 8300 deaths among 76,000 men and women in five prospective studies. Public Health Nutr 1998; 1(1): 3341.Google Scholar
Key, TJ, Appleby, PN, Spencer, EA, et al. Mortality in British vegetarians: results from the European Prospective Investigation into Cancer and Nutrition (EPIC-Oxford). Am J Clin Nutr 2009; 89(5): 1613S1619S.Google Scholar
Muir, JG, Gibson, PR. The Low FODMAP diet for treatment of irritable bowel syndrome and other gastrointestinal disorders. Gastroenterol Hepatol (NY) 2013; 9(7): 450452.Google Scholar
Rao, SS, Yu, S, Fedewa, A. Systematic review: dietary fibre and FODMAP-restricted diet in the management of constipation and irritable bowel syndrome. Aliment Pharmacol Ther 2015; 41(12): 12561270.Google Scholar
Varjú, P, Farkas, N, Hegyi, P, et al. Low fermentable oligosaccharides, disaccharides, monosaccharides and polyols (FODMAP) diet improves symptoms in adults suffering from irritable bowel syndrome (IBS) compared to standard IBS diet: a meta-analysis of clinical studies. PLoS One 2017; 12(8): e0182942.Google Scholar
Chumpitazi, BP, Cope, JL, Hollister, EB, et al. Randomised clinical trial: gut microbiome biomarkers are associated with clinical response to a low FODMAP diet in children with the irritable bowel syndrome. Aliment Pharmacol Ther 2015; 42(4): 418627.Google Scholar
Lis, DM, Stellingwerff, T, Kitic, CM, et al. Low FODMAP: a preliminary strategy to reduce gastrointestinal distress in athletes. Med Sci Sports Exerc 2018; 50(1): 116123.Google Scholar
Wilder-Smith, CH, Olesen, SS, Materna, A, Drewes, AM. Predictors of response to a low-FODMAP diet in patients with functional gastrointestinal disorders and lactose or fructose intolerance. Aliment Pharmacol Ther 2017; 45(8): 10941106.Google Scholar
Marsh, A, Eslick, EM, Eslick, GD. Does a diet low in FODMAPs reduce symptoms associated with functional gastrointestinal disorders? A comprehensive systematic review and meta-analysis. Eur J Nutr 2016; 55(3): 897906.Google Scholar
Pourmand, H, Esmaillzadeh, A. Consumption of a low fermentable oligo-, di-, mono-saccharides, and polyols diet and irritable bowel syndrome: a systematic review. Int J Prev Med 2017; 13(8); 104.Google Scholar
Marum, AP, Moreira, C, Saraiva, F, Tomas-Carus, P, Sousa-Guerreiro, C. A low fermentable oligo-di-mono saccharides and polyols (FODMAP) diet reduced pain and improved daily life in fibromyalgia patients. Scand J Pain 2016; 13: 166172.Google Scholar
Halmos, EP, Christophersen, CT, Bird, AR, et al. Consistent prebiotic effect on gut microbiota with altered FODMAP intake in patients with Crohn’s disease: a randomised, controlled cross-over trial of well-defined diets. Clin Transl Gastroenterol 2016; 14(7); e164.Google Scholar
Sharma, S, Sankhyan, N, Gulati, S, Agarwala, A. Use of the modified Atkins diet for treatment of refractory childhood epilepsy: a randomized controlled trial. Epilepsia 2013; 54(3): 481486.Google Scholar
Sharma, S, Goel, S, Jain, P, Agarwala, A, Aneja, S. Evaluation of a simplified modified Atkins diet for use by parents with low levels of literacy in children with refractory epilepsy: a randomized controlled trial. Epilepsy Res 2016; 127: 152159.Google Scholar
Porta, N, Vallée, L, Boutry, E, et al. Comparison of seizure reduction and serum fatty acid levels after receiving the ketogenic and modified Atkins diet. Seizure 2009; 18(5): 359364.Google Scholar
Gardner, CD, Kiazand, A, Alhassan, S, et al. Comparison of the Atkins, Zone, Ornish, and LEARN diets for change in weight and related risk factors among overweight premenopausal women: the A TO Z Weight Loss Study: a randomized trial. JAMA 2007; 297(9): 969977.CrossRefGoogle Scholar
Tay, J, Brinkworth, GD, Noakes, M, Keogh, J, Clifton, PM. Metabolic effects of weight loss on a very-low-carbohydrate diet compared with an isocaloric high-carbohydrate diet in abdominally obese subjects. J Am Coll Cardiol 2008; 51(1): 5967.Google Scholar
de Luis, DA, Izaola, O, Aller, R, et al. Effects of a high-protein/low carbohydrate versus a standard hypocaloric diet on adipocytokine levels and insulin resistance in obese patients along 9 months. J Diabetes Complications 2015; 29(7): 950954.Google Scholar
Dansinger, ML, Gleason, JA, Griffith, JL, Selker, HP, Schaefer, EJ. Comparison of the Atkins, Ornish, Weight Watchers, and Zone diets for weight loss and heart disease risk reduction: a randomized trial. JAMA 2005; 293(1): 4353.Google Scholar
Gannon, MC, Nuttall, FQ. Effect of a high-protein, low-carbohydrate diet on blood glucose control in people with type 2 diabetes. Diabetes 2004; 53(9): 23752382.Google Scholar
McClernon, FJ, Yancy, WS Jr, Eberstein, JA, Atkins, RC, Westman, EC. The effects of a low-carbohydrate ketogenic diet and a low-fat diet on mood, hunger, and other self-reported symptoms. Obesity (Silver Spring) 2007; 15(1): 182187.Google Scholar
Martin, CK, Rosenbaum, D, Han, H, et al. Change in food cravings, food preferences, and appetite during a low-carbohydrate and low-fat diet. Obesity (Silver Spring) 2011; 19(10): 19631970.CrossRefGoogle ScholarPubMed
Tay, J, Thompson, CH, Luscombe-Marsh, ND, et al. Long-term effects of a very low carbohydrate compared with a high carbohydrate diet on renal function in individuals with type 2 diabetes: a randomized trial. Medicine (Baltimore) 2015; 94(47): e2181.Google Scholar
Ito, Y, Oguni, H, Ito, S, Oguni, M, Osawa, M. A modified Atkins diet is promising as a treatment for glucose transporter type 1 deficiency syndrome. Dev Med Child Neurol 2011; 53(7): 658663.Google Scholar
Morris, MC, Tangney, CC, Wang, Y, et al. MIND diet associated with reduced incidence of Alzheimer’s disease. Alzheimers Dement 2015; 11(9): 10071014.Google Scholar
Morris, MC, Tangney, CC, Wang, Y, et al. MIND diet slows cognitive decline with aging. Alzheimers Dement 2015; 11(9): 10151022.Google Scholar
McEvoy, CT, Guyer, H, Langa, KM, Yaffe, K. Neuroprotective diets are associated with better cognitive function: the Health and Retirement Study. J Am Geriatr Soc 2017; 65(8): 18571862.CrossRefGoogle ScholarPubMed
Berendsen, AM, Kang, JH, Feskens, EJM, et al. Association of long-term adherence to the MIND diet with cognitive function and cognitive decline in American women. J Nutr Health Aging 2018; 22(2): 222229.Google Scholar
Franklin, TL, Kolasa, KM, Griffin, K, Mayo, C, Badenhop, DT. Adherence to very-low-fat diet by a group of cardiac rehabilitation patients in the rural southeastern United States. Arch Fam Med 1995; 4(6): 551554.Google Scholar
Pischke, CR, Weidner, G, Elliott-Eller, M, Ornish, D. Lifestyle changes and clinical profile in coronary heart disease patients with an ejection fraction of <or=40% or >40% in the Multicenter Lifestyle Demonstration Project. Eur J Heart Fail 2007; 9(9): 928934.Google Scholar
Aldana, SG, Whitmer, WR, Greenlaw, R, et al. Cardiovascular risk reductions associated with aggressive lifestyle modification and cardiac rehabilitation. Heart Lung 2003; 32(6): 374382.Google Scholar
Chainani-Wu, N, Weidner, G, Purnell, DM, et al. Changes in emerging cardiac biomarkers after an intensive lifestyle intervention. Am J Cardiol 2011; 108(4): 498507.Google Scholar
Ornish, D, Scherwitz, LW, Doody, RS, et al. Effects of stress management training and dietary changes in treating ischemic heart disease. JAMA 1983; 249(1): 5459.Google Scholar
Ornish, D. Avoiding revascularization with lifestyle changes: the Multicenter Lifestyle Demonstration Project. Am J Cardiol 1998; 82(10B): 72T76T.Google Scholar
Ornish, D, Brown, SE, Scherwitz, LW, et al. Can lifestyle changes reverse coronary heart disease? The Lifestyle Heart Trial. Lancet 1990; 336(8708): 129133.Google Scholar
Ornish, D, Scherwitz, LW, Billings, JH, et al. Intensive lifestyle changes for reversal of coronary heart disease. JAMA 1998; 280(23): 20012007.Google Scholar
Aldana, SG, Greenlaw, R, Salberg, A, et al. The effects of an intensive lifestyle modification program on carotid artery intima-media thickness: a randomized trial. Am J Health Promot 2007; 21(6): 510516.Google Scholar
Baetge, C, Earnest, CP, Lockard, B, et al. Efficacy of a randomized trial examining commercial weight loss programs and exercise on metabolic syndrome in overweight and obese women. Appl Physiol Nutr Metab 2017; 42(2): 216227.Google Scholar
Morgan, LM, Griffin, BA, Millward, DJ, et al. Comparison of the effects of four commercially available weight-loss programmes on lipid-based cardiovascular risk factors. Public Health Nutr 2009; 12(6): 799807.Google Scholar
Truby, H, Baic, S, deLooy, A, et al. Randomised controlled trial of four commercial weight loss programmes in the UK: initial findings from the BBC “diet trials.BMJ 2006; 332(7553): 13091314.Google Scholar
Dansinger, ML, Gleason, JA, Griffith, JL, Selker, HP, Schaefer, EJ. Comparison of the Atkins, Ornish, Weight Watchers, and Zone diets for weight loss and heart disease risk reduction: a randomized trial. JAMA 2005; 293(1): 4353.Google Scholar
Johnston, BC, Kanters, S, Bandayrel, K, et al. Comparison of weight loss among named diet programs in overweight and obese adults: a meta-analysis. JAMA 2014; 312(9): 923933.CrossRefGoogle ScholarPubMed
Hjorth, MF, Ritz, C, Blaak, EE, et al. Pretreatment fasting plasma glucose and insulin modify dietary weight loss success: results from 3 randomized clinical trials. Am J Clin Nutr 2017; 106(2): 499505.Google Scholar
Anton, SD, Hida, A, Heekin, K et al. Effects of popular diets without specific calorie targets on weight loss outcomes: systematic review of findings from clinical trials. Nutrients 2017; 9(8). DOI:10.3390/nu9080822.Google Scholar
Mansoor, N, Vinknes, KJ, Veierød, MB, Retterstøl, K. Effects of low-carbohydrate diets v. low-fat diets on body weight and cardiovascular risk factors: a meta-analysis of randomised controlled trials. Br J Nutr 2016; 115(3): 466479.Google Scholar
Gardner, CD, Trepanowski, JF, Del Gobbo, LC, et al. Effect of low-fat vs low-carbohydrate diet on 12-month weight loss in overweight adults and the association with genotype pattern or insulin secretion: The DIETFITS randomized clinical trial. JAMA 2018; 319(7): 667679.Google Scholar
Shai, I, Schwarzfuchs, D, Henkin, Y, et al. Dietary Intervention Randomized Controlled Trial (DIRECT) Group: weight loss with a low-carbohydrate, Mediterranean, or low-fat diet. N Engl J Med 2008; 359(3): 229241.Google Scholar
Sacks, FM, Bray, GA, Carey, VJ, et al. Comparison of weight-loss diets with different compositions of fat, protein, and carbohydrates. N Engl J Med 2009; 360(9): 859873.Google Scholar
Veronese, N, Solmi, M, Caruso, MG, et al. Dietary fiber and health outcomes: an umbrella review of systematic reviews and meta-analyses. Am J Clin Nutr 2018; 107(3): 436444.Google Scholar

References

CRN. Consumer survey on dietary supplements. 2015. www.crnusa.org/CRN-consumersurvey-archives/2015 (accessed April 21, 2020).Google Scholar
Kalia, A. Textbook of Industrial Pharmacognosy. New Delhi, CBS Publishers & Distributors Pvt; 2011.Google Scholar
Das, L, Bhaumik, E, Raychaudhuri, U, Chakraborty, R. Role of nutraceuticals in human health. J Food Sci Technol 2011;49(2): 173183.Google Scholar
Canga, A, Martínez, N, Prieto, A, et al. Dietary fiber and its interaction with drugs. Nutrición Hospitalaria 2010; 25(4): 535539.Google Scholar
Lenoir-Wijnkoop, I, Sanders, M, Cabana, M, et al. Probiotic and prebiotic influence beyond the intestinal tract. Nutr Rev 2007; 65(11): 469489.Google Scholar
Doron, S, Snydman, D. Risk and safety of probiotics. Clin Infect Dis 2015; 60(suppl. 2): S129S134.Google Scholar
Liu, J. The effects and mechanisms of mitochondrial nutrient α-lipoic acid on improving age-associated mitochondrial and cognitive dysfunction: an overview. Neurochem Res 2007; 33(1): 194203.Google Scholar
Sarris, J, Murphy, J, Mischoulon, D, et al. Adjunctive nutraceuticals for depression: a systematic review and meta-analyses. Am J Psychiatr 2016; 173(6): 575587.Google Scholar
McCabe, D, Colbeck, M. The effectiveness of essential fatty acid, B vitamin, vitamin C, magnesium and zinc supplementation for managing stress in women: a systematic review protocol. JBI Database Syst Rev Implement Rep 2015; 13(7): 104118.Google Scholar
Duthie, G, Gardner, P, Kyle, J. Plant polyphenols: are they the new magic bullet? Proc Nutr Soc 2003; 62(03): 599603.Google Scholar
Allen, L, Covington, T, Berardi, R, Young, L Handbook of Nonprescription Drugs. Washington, DC, American Pharmaceutical Association; 1996.Google Scholar
Rosenblum, M Vitamin toxicity. 2017. https://emedicine.medscape.com/article/819426-overview (accessed April 21, 2020).Google Scholar
Rees, D, Kelsey, H, Richards, J. Acute haemolysis induced by high dose ascorbic acid in glucose-6-phosphate dehydrogenase deficiency. BMJ 1993; 306(6881): 841842.Google Scholar
Sulli, M, Ezzo, D. Drug interactions with vitamins and minerals. 2007. www.uspharmacist.com/article/drug-interactions-with-vitamins-and-minerals (accessed April 21, 2020).Google Scholar
Scalbert, A, Johnson, I, Saltmarsh, M. Polyphenols: antioxidants and beyond. Am J Clin Nutr 2005; 81(1): 215S217S.Google Scholar
Chen, S, Volle, D, Jalil, J, Wu, P, Small, G. Health-promoting strategies for the aging brain. Am J Geriatr Psychiatr 2019; 27(3): 213236.Google Scholar
Rodríguez-Fragoso, L, Martínez-Arismendi, J, Orozco-Bustos, D, et al. Potential risks resulting from fruit/vegetable–drug interactions: effects on drug-metabolizing enzymes and drug transporters. J Food Sci 2011; 76(4): 112124.Google Scholar
Panossian, A, Wikman, G. Effects of adaptogens on the central nervous system and the molecular mechanisms associated with their stress-protective activity. Pharmaceuticals 2010; 3(1): 188224.Google Scholar
Gupta, R, Srivastava, A, Lall, R. Toxicity potential of nutraceuticals. In: Nicolotti, O, ed., Computational Toxicology. New York, Humana Press; 2018; 367394.Google Scholar

References

World Health Organization. WHOQOL: measuring quality of life. 2019. www.who.int/healthinfo/survey/whoqol-qualityoflife/en (accessed April 7, 2019).Google Scholar
Health Affairs. Spending on prescription drugs in the US: where does all the money go? 2018. www.healthaffairs.org/do/10.1377/hblog20180726.670593/full (accessed April 7, 2019).Google Scholar
Council for Responsible Nutrition Foundation. Economic impact of the dietary supplement industry. 2016. www.crnusa.org/resources/economic-impact-dietary-supplement-industry (accessed April 7, 2019).Google Scholar
World Health Organization. Depression. 2018. www.who.int/news-room/factsheets/detail/depression (accessed April 8, 2019).Google Scholar
IsHak, WW, Bonifay, W, Collison, K, et al. The recovery index: a novel approach to measuring recovery and predicting remission in major depressive disorder. J Affect Disord 2017; 208: 369374.Google Scholar
Cipriani, A, Furukawa, T, Salanti, G, et al. Comparative efficacy and acceptability of 21 antidepressant drugs for the acute treatment of adults with major depressive disorder: a systematic review and network meta-analysis. Lancet 2018; 391: 13571366.Google Scholar
Apaydin, EA, Maher, AR, Shanman, R, et al. A systematic review of St. John’s wort for major depressive disorder. Syst Rev 2016; 5: 148.Google Scholar
Papakostas, GI, Mischoulon, D, Shyu, I, Alpert, JE, Fava, M. S-adenosyl methionine (SAMe) augmentation of serotonin reuptake inhibitors (SRIs) for SRI- non-responders with major depressive disorder: a double-blind, randomized clinical trial. Am J Psychiatr 2010; 167: 942948.Google Scholar
Mischoulon, D, Price, LH, Carpenter, LL, et al. A double-blind, randomized, placebo-controlled clinical trial of S-adenosyl-L-methionine (SAMe) versus escitalopram in major depressive disorder. J Clin Psychiatry 2014; 75: 370376.Google Scholar
Sarris, J, Papakostas, GI, Vitolo, O, Mischoulon, D. S-adenosyl methionine (SAMe) versus escitalopram and placebo in major depression RCT: efficacy and effects of histamine and carnitine as moderators of response. J Clin Psychiatr 2014; 75: 855863.Google Scholar
Bradley, M, McElhiney, M, Rabkin, J. DHEA and cognition in HIV-positive patients with non-major depression. Psychosomatics 2012; 53: 244249.Google Scholar
Ben Dor, R, Marx, CE, Shampine, LJ, Rubinow, DR, Schmidt, PJ. DHEA metabolism to the neurosteroid androsterone: a possible mechanism of DHEA’s antidepressant action. Psychopharmacology (Berl) 2015; 232: 33753383.Google Scholar
Russo, SJ, Murrough, JW, Han, MH, Charney, DS, Nestler, EJ. Neurobiology of resilience. Nat Neurosci 2012; 15: 14751484.Google Scholar
Jacobsen, JP, Krystal, AD, Krishnan, KR, Caron, MG. Adjunctive 5-hydroxytryptophan slow-release for treatment-resistant depression: clinical and preclinical rationale. Trends Pharmacol Sci 2016; 37: 933944.Google Scholar
Van Hiele, LJ. L-5-Hydroxytryptophan in depression: the first substitution therapy in psychiatry? The treatment of 99 out-patients with “therapy-resistant” depressions. Neuropsychobiology 1980; 6: 230240.Google Scholar
Turner, EH, Loftis, JM, Blackwell, AD. Serotonin a la carte: supplementation with the serotonin precursor 5-hydroxtryptophan. Pharmacol Ther 2006; 109: 325328.Google Scholar
Davis, JI, Senghas, A, Brandt, F, Ochsner, KN. The effects of BOTOX injections on emotional experience. Emotion 2010; 10: 433440.Google Scholar
Finzi, E, Rosenthal, NE. Treatment of depression with obotulinumtoxinA: a randomized, double-blinded, placebo controlled trial. J Psychiatr 2014; 52: 16.Google Scholar
Woller, MA, de Boer, C, Kalak, N, et al. Facing depression with botulinum toxin: a randomized controlled trial. J Psychiatr 2012; 45: 574581.Google Scholar
National Institute of Mental Health. Anxiety disorders. 2018. www.nimh.nih.gov/health/topics/anxiety-disorders/index.shtml (accessed April 25, 2019).Google Scholar
Baldwin, D, Woods, R, Lawson, R, et al. Efficacy of drug treatments for generalised anxiety disorder: systematic review and meta-analysis. BMJ 2011; 342: d1199.Google Scholar
Boerner, RJ, Sommer, H, Berger, W, et al. Kava-kava extract LI 150 is as effective as opipramol and buspirone in generalised anxiety disorder: an 8-week randomized, double-blind multi-centre clinical trial in 129 outpatients. Phytomedicine 2003; 10: 3849.Google Scholar
Sarris, J, Stough, C, Teschke, R, et al. Kava for the treatment of generalized anxiety disorder RCT: analysis of adverse reactions, liver function, addiction, and sexual effects. Phytother Res 2013; 27: 17231728.Google Scholar
Rowe, A, Zhang, LY, Ramzan, I. Toxicokinetics of kava. Adv Pharmacol Sci 2011; 2011: 326724.Google Scholar
Smith, K, Leiras, C. The effectiveness and safety of Kava Kava for treating anxiety symptoms: a systematic review and analysis of randomized clinical trials. Complement Ther Clin Pract 2018; 33:107117.Google Scholar
Blessing, EM, Steenkamp, MM, Manzanares, J, Marmar, CR. Cannabidiol as a potential treatment for anxiety disorders. Neurotherapeutics 2015; 12: 825836.Google Scholar
Shannon, S, Lewis, N, Lee, H, Hughes, S. Cannabidiol in anxiety and sleep: a large case series. Perm J 2019; 23: 18-041.Google Scholar
Jerome, S, Alexander, P, Isaac, S, Con, S, Andrew, S. Herbal medicine for depression, anxiety and insomnia: a review of psychopharmacology and clinical evidence. J Eur Coll Neuropsychol 2011; 21: 841860.Google Scholar
Bent, S, Padula, A, Moore, D, Patterson, M, Mehling, W. Valerian for sleep: a systematic review and meta-analysis. Am J Med 2006; 119: 10051012.Google Scholar
Miyasaka, LS, Natallah, ÁN, Soares, B. Valerian for anxiety disorders. Cochrane Database Syst Rev 2006; 4: CD004515.Google Scholar
Siegfried, K, Markus, G, Walter, EM, Hans-Peter, V, et al. Lavender oil preparation silexan is effective in generalized anxiety disorder: a randomized, double-blind comparison to placebo and paroxetine. Int J Neuropsychopharmacol 2014; 17: 859869.Google Scholar
Siegfried, K, Walter, EM, Hans-Peter, V, et al. Silexan in anxiety disorders: clinical data and pharmacological background. World J Biol Psychiatry 2018; 19: 412420.Google Scholar
Wilkinson, SM, Love, SB, Westcombe, AM, et al. Effectiveness of aromatherapy massage in the management of anxiety and depression in patients with cancer: a multicenter randomized controlled trial. J Clin Oncol 2007; 25: 532539.Google Scholar
Kennedy, DO, Scholey, AB, Wesnes, KA. The dose-dependent cognitive effects of acute administration of Ginkgo biloba to healthy young volunteers. Psychopharmacology (Berl) 2000; 4: 416423.Google Scholar
IsHak, WW, Bagot, K, Thomas, S, et al. Quality of life in patients suffering from insomnia. Innov Clin Neurosci 2012; 9: 1326.Google Scholar
Auld, F, Maschauer, EL, Morrison, I, et al. Evidence for the efficacy of melatonin in the treatment of primary adult sleep disorders. Sleep Med Rev 2017; 34: 1022.Google Scholar
National Center for Complementary and Integrative Health. NIH analysis shows Americans are in pain. 2015. https://nccih.nih.gov/news/press/08112015 (accessed April 1, 2019).Google Scholar
Katz, N. The impact of pain management on quality of life. J Pain Symptom Manage 2002; 1(Suppl.): S38S47.Google Scholar
Beaudart, C, Biver, E, Bruyére, O, et al. Quality of life assessment in musculo-skeletal health. Aging Clin Exp Res 2018; 5: 413418.Google Scholar
World Health Organization. Scientific Group on the Assessment of Osteoporosis at Primary Health Care Level: summary meeting report Brussels, Belgium. 2004. www.who.int/chp/topics/Osteoporosis.pdf (accessed April 2, 2019).Google Scholar
Moskowitz, RW. The burden of osteoarthritis: clinical and quality-of-life issues. Am J Manage Care 2009; 8(Suppl.): S223S229.Google Scholar
Neogi, T. The epidemiology and impact of pain in osteoarthritis. Osteoarthr Cartil 2013; 9: 11451153.Google Scholar
van Walsem, A, Pandhi, S, Nixon, RM, et al. Relative benefit–risk comparing diclofenac to other traditional non-steroidal anti-inflammatory drugs and cyclooxygenase-2 inhibitors in patients with osteoarthritis or rheumatoid arthritis: a network meta-analysis. Arthritis Res Ther 2015; 17: 66.Google Scholar
Daily, JW, Yang, M, Park, S. Efficacy of turmeric extracts and curcumin for alleviating the symptoms of joint arthritis: a systematic review and meta-analysis of randomized controlled clinical trials. J Med Food 2016; 8: 717729.Google Scholar

References

Watson, SL, Weeks, BK, Weis, LJ, et al. High-intensity resistance and impact training improves bone mineral density and physical function in postmenopausal women with osteopenia and osteoporosis: the LIFTMOR randomized controlled trial. J Bone Miner Res 2018; 33: 211220.Google Scholar
Fiatarone Singh, MA, Gates, N, Saigal, N, et al. The study of mental and resistance training (SMART) study-resistance training and/or cognitive training in mild cognitive impairment: a randomized, double-blind, double-sham controlled trial. J Am Med Dir Assoc 2014; 15: 873880.Google Scholar
Liu-Ambrose, T, Nagamatsu, LS, Graf, P, et al. Resistance training and executive functions: a 12-month randomized controlled trial. Arch Intern Med 2010: 170: 170178.Google Scholar
Fiatarone, MA, O’Neill, EF, Ryan, ND, et al. Exercise training and nutritional supplementation for physical frailty in very elderly people. N Engl J Med 1994; 330: 17691775.Google Scholar
Fiatarone, MA, Marks, EC, Ryan, ND, et al. High-intensity strength training in nonagenarians: effects on skeletal muscle. JAMA 1990; 263: 30293034.Google Scholar
Dos Santos Delabary, M, Komeroski, IG, Monteiro, EP, et al. Effects of dance practice on functional mobility, motor symptoms and quality of life in people with Parkinson’s disease: a systematic review with meta-analysis. Aging Clin Exp Res 2018; 30: 727735.Google Scholar
Lazarou, I, Parastatidis, T. Tsolaki, A, et al. International ballroom dancing against neurodegeneration: a randomized controlled trial in Greek community-dwelling elders with mild cognitive impairment. Am J Alzheimers Dis Other Demen 2017; 32: 489499.Google Scholar
Casilda-Lopez, J, Valenza, MC, Cabrera-Martos, I, et al. Effects of a dance-based aquatic exercise program in obese postmenopausal women with knee osteoarthritis: a randomized controlled trial. Menopause 2017; 24: 768773.Google Scholar
Gomes Neto, M, Menezes, MA, Oliveira Carvalho, V. Dance therapy in patients with chronic heart failure: a systematic review and a meta-analysis. Clin Rehabil 2014: 28: 11721179.Google Scholar
Pinniger, R, Brown, RF, Thorsteinsson, EB, et al. Argentine tango dance compared to mindfulness meditation and a waiting-list control: a randomised trial for treating depression. Complement Ther Med 2012; 20: 377384.Google Scholar
Wang, C, Schmid, CH, Fielding, RA, et al. Effect of tai chi versus aerobic exercise for fibromyalgia: comparative effectiveness randomized controlled trial. BMJ 2018; 360: k851.Google Scholar
Larkey, LK, James, D, Belyea, M, et al. Body composition outcomes of tai chi and qigong practice: a systematic review and meta-analysis of randomized controlled trials. Int J Behav Med 2018; 25: 487501.Google Scholar
Chan, AW, Lee, A, Lee, DT, et al. The sustaining effects of tai chi qigong on physiological health for COPD patients: a randomized controlled trial. Complement Ther Med 2013; 21: 585594.Google Scholar
Hall, M, Maher, CG, Lam, P, et al. Tai chi exercise for treatment of pain and disability in people with persistent low back pain: a randomized controlled trial. Arthritis Care Res (Hoboken) 2011; 63: 15761583.Google Scholar
Li, F, Harmer, P, Fisher, KJ, et al. Tai chi and fall reductions in older adults: a randomized controlled trial. J Gerontol A Biol Sci Med Sci 2005; 60: 187194.Google Scholar
Cruz-Diaz, D, Romeu, M, Velasco-Gonzalez, C, et al. The effectiveness of 12 weeks of Pilates intervention on disability, pain and kinesiophobia in patients with chronic low back pain: a randomized controlled trial. Clin Rehabil 2018; 32: 12491257.Google Scholar
de Araujo Cazotti, L, Jones, A, Roger-Silva, D, et al. Effectiveness of the Pilates method in the treatment of chronic mechanical neck pain: a randomized controlled trial. Arch Phys Med Rehabil 2018; 99: 17401746.Google Scholar
Miyamoto, GC, Franco, KFM, van Dongen, JM, et al. Different doses of Pilates-based exercise therapy for chronic low back pain: a randomised controlled trial with economic evaluation. Br J Sports Med 2018; 52: 859868.Google Scholar
da Luz, MA, Costa, LO, Fuhro, FF, et al. Effectiveness of mat Pilates or equipment based Pilates exercises in patients with chronic nonspecific low back pain: a randomized controlled trial. Phys Ther 2014; 94: 623631.CrossRefGoogle ScholarPubMed
Wajswelner, H, Metcalf, B, Bennell, K. Clinical Pilates versus general exercise for chronic low back pain: randomized trial. Med Sci Sports Exerc 2012; 44: 11971205.Google Scholar
Woodman, J, Ballard, K, Hewitt, C, et al. Self-efficacy and self-care-related outcomes following Alexander technique lessons for people with chronic neck pain in the ATLAS randomised, controlled trial. Eur J Integr Med 2018; 17: 6471.Google Scholar
Klein, SD, Bayard, C, Wolf, U. The Alexander technique and musicians: a systematic review of controlled trials. BMC Complement Altern Med 2014; 14: 414.Google Scholar
MacPherson, H, Tilbrook, H, Richmond, S, et al. Alexander technique lessons or acupuncture sessions for persons with chronic neck pain: a randomized trial. Ann Intern Med 2015; 163: 653662.Google Scholar
Hollinghurst, S, Sharp, D, Ballard, K, et al. Randomised controlled trial of Alexander technique lessons, exercise, and massage (ATEAM) for chronic and recurrent back pain: economic evaluation. BMJ 2008; 337: a2656.Google Scholar
Stallibrass, C, Sissons, P, Chalmers, C. Randomized controlled trial of the Alexander technique for idiopathic Parkinson’s disease. Clin Rehabil 2002; 16: 695708.Google Scholar

References

Consensus Conference Panel, Watson, NF, Badr, MS, et al. Joint consensus statement of the American Academy of Sleep Medicine and Sleep Research Society on the recommended amount of sleep for a healthy adult: methodology and discussion. Sleep 2015; 38(8): 11611183.Google Scholar
Helvig, A, Wade, S, Hunter-Eades, L. Rest and the associated benefits in restorative sleep: a concept analysis. J Adv Nurs 2016; 72(1): 6272.Google Scholar
Klainin-Yobas, P, Oo, WN, Suzanne Yew, PY, Lau, Y. Effects of relaxation interventions on depression and anxiety among older adults: a systematic review. Aging Mental Health 2015; 19(12): 10431055.Google Scholar
Loprinzi, PD, Joyner, C. Meeting sleep guidelines is associated with better health-related quality of life and reduced premature all-cause mortality risk. Am J Health Promot 2018; 32(1): 6871.Google Scholar
Magnavita, N, Garbarino, S. Sleep, health and wellness at work: a scoping review. Int J Environ Res Public Health 2017; 14(11): 1347.Google Scholar
Steptoe, A, O’Donnell, K, Marmot, M, Wardle, J. Positive affect, psychological well-being, and good sleep. J Psychosom Res 2008; 64: 409415.Google Scholar
Kroshus, E, Wagner, J, Wyrick, D, et al. Wake up call for collegiate athlete sleep: narrative review and consensus recommendations from the NCAA Interassociation Task Force on Sleep and Wellness. Br J Sports Med 2019; 53: 731736.Google Scholar
Kim, JH, Park, EC, Yoo, KB, Park, S. The association between short or long sleep times and quality of life (QOL): results of the Korea National Health and Nutrition Examination Survey (KNHANES IV-V). J Clin Sleep Med 2015; 11(6): 625634.Google Scholar
Mesas, AE, López‐García, E, León‐Muñoz, LM, Guallar‐Castillón, P, Rodríguez‐Artalejo, F. Sleep duration and mortality according to health status in older adults. J Am Geriatr Soc 2010; 58: 18701877.Google Scholar
Mansukhani, MP, Kolla, BP, Surani, S, Varon, J, Ramar, K. Sleep deprivation in resident physicians, work hour limitations, and related outcomes: a systematic review of the literature. Postgrad Med 2012; 124(4): 241249.Google Scholar
Poggiogalle, EL, Lubrano, C, Gnessi, L, et al. Reduced sleep duration affects body composition, dietary intake and quality of life in obese subjects. Eat Weight Disord 2016; 21: 501505.Google Scholar
Mailey, EL, Rosenkranz, SK, Ablah, E, Swank, A, Casey, K. Effects of an intervention to reduce sitting at work on arousal, fatigue, and mood among sedentary female employees: a parallel‐group randomized trial. J Occup Environ Med 2017; 59(12): 11661171.CrossRefGoogle ScholarPubMed
Michishita, R, Jiang, Y, Ariyoshi, D, et al. The practice of active rest by workplace units improves personal relationships, mental health, and physical activity among workers. J Occup Health 2017; 59(2): 122130.Google Scholar
Michishita, R, Jiang, Y, Ariyoshi, D, et al. The introduction of an active rest program by workplace units improved the workplace vigor and presenteeism among workers: a randomized controlled trial. J Occup Environ Med 2017; 59: 11401147.Google Scholar
Patterson, PD, Buysse, DJ, Weaver, MD, Callaway, CW, Yealy, DM. Recovery between work shifts among emergency medical services clinicians. Prehosp Emerg Care 2015; 19(3): 365375.Google Scholar
Ikeda, H, Kubo, T, Izawa, S, et al. Impact of daily rest period on resting blood pressure and fatigue: a one‐month observational study of daytime employees. J Occup Environ Med 2017; 59(4): 397401.Google Scholar
Cáceres-Muñoz, VS, Magallanes-Meneses, A, Torres-Coronel, D, et al. Efecto de un programa de pausa activa más folletos informativos en la disminución de molestias musculoesqueléticas en trabajadores administrativos. Rev Peru Med Exp Salud Publica 2017; 34(4): 611618.Google Scholar
Henning, RA, Jacques, P, Kissel, GV, Sullivan, AB, Alteras-Webb, SM. Frequent short rest breaks from computer work: effects on productivity and well-being at two field sites. Ergonomics 1997; 40(1): 7891.Google Scholar
Rahman, IA, Mohamad, N, Rohani, JM, Zein, RM. The impact of work rest scheduling for prolonged standing activity. Ind Health 2018; 56(6): 492499.Google Scholar
Chen, C, Xie, Y. The impacts of multiple rest-break periods on commercial truck driver’s crash risk. J Saf Res 2014; 48: 8793.Google Scholar
Reig-Ferrer, A, Ferrer-Cascales, R, Santos-Ruiz, A, et al. A relaxation technique enhances psychological well-being and immune parameters in elderly people from a nursing home: a randomized controlled study. BMC Complement Altern Med 2014; 14: 311.Google Scholar
Hassanpour-Dehkordi, A, Jalali, A. Effect of progressive muscle relaxation on the fatigue and quality of life among Iranian aging persons. Acta Med Iran 2016; 54(7): 430436.Google Scholar
Forbes, H, Fichera, E, Rogers, A, Sutton, M. The effects of exercise and relaxation on health and wellbeing. Health Econ 2017; 26(12): e67e80.Google Scholar
Merakou, K, Tsoukas, K, Stavrinos, G, et al. The effect of progressive muscle relaxation on emotional competence: depression–anxiety–stress–sense of coherence – health related quality of life and well being of unemployed people in Greece: an intervention study. Explore (NY) 2019; 15(1): 3846.Google Scholar
Parás-Bravo, P, Salvadores-Fuentes, P, Alonso-Blanco, C, et al. The impact of muscle relaxation techniques on the quality of life of cancer patients, as measured by the FACT-G questionnaire. PLoS One 2017; 12(10): e0184147.Google Scholar

References

Liu, H, Waite, LJ, Shen, S, Wang, DH. Is sex good for your health? National study on partnered sexuality and cardiovascular risk among older men and women. J Health Soc Behav 2016; 57(3): 276296.Google Scholar
Charnetski, CJ, Brennan, FX. Sexual frequency and salivary immunoglobulin A (IgA). Psychol Rep 2004; 94(3): 839844.Google Scholar
IsHak, WW. The Textbook of Clinical Sexual Medicine. Cham, Springer; 2017.Google Scholar
Maslow, AH. Toward a Psychology of Being, vol. 2. New York, Van Nostrand Reinhold; 1968.Google Scholar
Prager, K. The Psychology of Intimacy. New York, Guilford Press; 1995.Google Scholar
Whitbourne, SK. We all need some intimacy in our lives. Psychology Today 2012. www.psychologytoday.com/us/blog/fulfillment-any-age/201210/we-all-need-some-intimacy-in-our-lives (accessed August 31, 2019).Google Scholar
Sneed, JR, Whitbourne, S, Schwartz, SJ, Huang, S. The relationship between identity, intimacy, and midlife well-being: findings from the Rochester Adult Longitudinal Study. Psychol Aging 2012; 27: 318323.Google Scholar
Goliszek, A. The stress–sex connection. Psychology Today 2014. https://www.psychologytoday.com/us/blog/how-the-mind-heals-the-body/201412/the-stress-sex-connection (accessed August 31, 2019).Google Scholar
Tan, K, Tay, L. Relationships and well-being. In Biswas-Diener, R, Diener, E, eds., Psychology. Champaign, IL, DEF publishers; 2019.Google Scholar
Ditzen, B, Hoppmann, C, Klumb, P. Positive couple interactions and daily cortisol: on the stress-protecting role of intimacy. Psychosom Med 2008; 70(8): 883889.Google Scholar
LaFollette, H, Graham, G. Honesty and intimacy. J Soc Pers Relatsh 1986; 3(1): 318.Google Scholar
Abusaidi, E, Zahrakar, K, Mohsenzadeh, F. Effectiveness of solution-focused brief couple therapy in improvement of communication patterns and marital intimacy in women. J Res Health 2018; 6: 555.Google Scholar
Stephenson, KR, Meston, CM. The conditional importance of sex: exploring the association between sexual well-being and life satisfaction. J Sex Marital Ther 2015; 41: 2538.Google Scholar
Khera, M. Treatment of male sexual dysfunction. 2018. www.uptodate.com/contents/treatment-of-male-sexual-dysfunction (accessed August 1, 2019).Google Scholar
La, J, Roberts, NH, Yafi, FA. Diet and men’s sexual health. Sexual Med Rev 2018; 6(1): 5468.Google Scholar
Melnyk, J, Marcone, M. Aphrodisiacs from plant and animal sources: a review of current scientific literature. Food Res Int 2011; 44: 840.Google Scholar
Reid, K, Surridge, DH, Morales, A, et al. Double-blind trial of yohimbine in treatment of psychogenic impotence. Lancet 1987; 2(8556): 421423.Google Scholar
Jacobsen, FM. Fluoxetine-induced sexual dysfunction and an open trial of yohimbine. J Clin Psychiatry 1992; 53(4): 119122.Google Scholar
McManus, J, Kaherine, D. A practical guide to the Mediterranean diet. Harvard Health Blog, March 21, 2019. www.health.harvard.edu/blog/a-practical-guide-to-the-mediterranean-diet-2019032116194 (accessed September 2, 2019).Google Scholar
Stephenson, KR, Kerth, J. Effects of mindfulness-based therapies for female sexual dysfunction: a meta-analytic review. J Sex Res 2017; 54(7): 832849.Google Scholar
Ann, CC. A proposal for a radical new sex therapy technique for the management of vasocongestive and orgasmic dysfunction in women: the AFE zone stimulation technique. Sex Marital Ther 1997; 12(4): 357370.Google Scholar
Hurlbert, DF, Apt, C. The coital alignment technique and directed masturbation: a comparative study on female orgasm. J Sex Marital Ther 1995; 21(1): 2129.Google Scholar
Masters, WH, Johnson, VE. Human Sexual Inadequacy. Boston, MA, Little, Brown; 1970.Google Scholar
Cantor, CG, Tips for sexual wellness in 2018. Psychology Today 2018. www.psychologytoday.com/us/blog/modern-sex/201801/tips-sexual-wellness-in-2018 (accessed September 2, 2019).Google Scholar

References

Hanh, TN. The Miracle of Mindfulness. Boston, MA, Beacon Press; 1999.Google Scholar
Kabat-Zinn, J. Wherever You Go, There You Are. New York, Hyperion; 1994.Google Scholar
Khoury, B, Sharma, M, Rush, SE, et al. Mindfulness-based stress reduction for healthy individuals: a meta-analysis. J Psychosom Res 2015; 78(6): 519528.Google Scholar
Grossmand, P, Niemann, L, Schmidt, S, et al. Mindfulness-based stress reduction and health benefits: a meta-analsis. J Psychosom Res 2004; 57(1): 3543.Google Scholar
Septon, SE, Salmon, P, Weissbecker, I, et al. Mindfulness meditation alleviates depressive symptoms in women with fibromyalgia: results of a randomized clinical trial. Arthritis Rheum 2007; 57(1): 7785.Google Scholar
Lengacher, CA, Reich, RR, Kip, KE, et al. Influence of mindfulness-based stress reduction on telomerase activity in women with breast cancer. Biol Res Nurs 2014; 16(4): 438447.Google Scholar
Rouleau, CR, Garland, SN, Carlson, LE. The impact of mindfulness-based interventions on symptom burden, positive psychological outcomes, and biomarkers in cancer patients. Cancer Manag Res 2015; 7: 121131.Google Scholar
Guardino, CM, DunkelSchetter, C, Bower, JE, et al. Randomised controlled pilot trial of minfulness training for stress reduction during pregnancy. Psychol Health 2014; 29(3): 334349.Google Scholar
Woolhouse, H, Mercuri, K, Judd, F, et al. Antenatal mindfulness intervention to reduce depression, anxiety and stress: a randomized controlled trial of the mindbabybody program in an Australian tertiary maternity hospital. BMC Pregnancy Childbirth 2014; 14: 369.Google Scholar
Chen, KW, Berger, CC, Manheimer, E, et al. Meditative therapies for reducing anxiety: a systematic review and meta-analysis of randomized controlled trials. Depress Anxiety 2012; 29(7): 545562.Google Scholar
Goldberg, SB, Tucker, RP, Greene, PA, et al. Mindfulness-based interventions for psychiatric disorders: a systematic review and meta-analysis. Clin Psychol Rev 2018; 59: 5260.Google Scholar
Gu, Q, Hou, JC, Fang, XM. Mindfulness meditation for primary headache pain: a meta-analysis. Chin Med J 2018; 131(7): 829838.Google Scholar
Goyal, M, Singh, S, Sibinga, EM, et al. Meditation programs for psychological stress and well-being: a systematic review and meta-analysis. JAMA Intern Med 2014; 174(3): 357368.Google Scholar
Rusch, HL, Rosario, M, Olivera, A, et al. The effect of mindfulness meditation on sleep quality: a systematic review and meta-analysis of randomized controlled trials. Ann N Y Acad Sci 2018. www.ncbi.nlm.nih.gov/pubmed/30575050 (accessed April 8, 2019).Google Scholar
Hilton, L, Maher, AR, Colaiaco, B, et al. Meditation for posttraumatic stress: systematic review and meta-analysis. Psychol Trauma 2017; 9(4): 453460.Google Scholar
Gordon, JS, Staples, JK, Blyta, A, et al. Treatment of posttraumatic stress disorder in postwar Kosovar adolescents using mind–body skills groups: a randomized controlled trial. J Clin Psychiatry 2008; 69(9): 14691476.Google Scholar
Satchidananda, SS, transl., The Yoga Sutras of Patanjali. Yogaville, Integral Yoga Publications; 1987.Google Scholar
Cramer, H, Lauche, R, Langhorst, J, et al. Yoga for depression: a systematic review and metaanalysis. Depress Anxiety 2013; 11: 10681083.Google Scholar
Balasubramaniam, M, Telles, S, Doraiswamy, PM. Yoga on our minds: a systematic review of yoga for neuropsychiatric disorders. Front Psychiatry 2012; 3: 117.Google Scholar
Innes, KE, Selfe, TK. Yoga for adults with type 2 diabetes: a systematic review of controlled trials. J Diabetes Res 2016; 2016: 697370.Google Scholar
Angadi, P, Jagannathan, A, Thulasi, A, et al. Adherence to yoga and its resultant effects on blood glucose in type 2 diabetes: a community-based follow-up study. Int J Yoga 2017; 10(1): 2935.Google Scholar
Carson, JW, Carson, KM, Jones, KD, et al. A pilot randomized controlled trial of the yoga of awareness program in the management of fibromyalgia. Pain 2010; 151(2): 530539.Google Scholar
Sutar, R, Yadav, S, Deasi, G. Yoga intervention and functional pain syndromes: a selective review. Int Rev Psychiatry 2016; 3: 316322.Google Scholar
Salim, S. Oxidative stress and psychological disorders. Curr Neuropharmacol 2014; 12(2): 140147.Google Scholar
Hedge, SV, Adhikari, P, Pinto, VJ, et al. Effect of 3-month yoga on oxidative stress in type 2 diabetes with or without complications: a controlled clinical trial. Diabetes Care 2011; 34(10): 22082210.Google Scholar
Mitchell, S, transl., Bhavavad Gita. New York, Three Rivers Press; 2000.Google Scholar

References

Akhtar, S, Barlow, J. Forgiveness therapy for the promotion of mental well-being: a systematic review and meta-analysis. Trauma Violence Abuse 2016; 19: 107122.Google Scholar
Brush, BL, Mcgee, EM, Cavanagh, B, Woodward, M. Forgiveness. J Holistic Nurs 2001; 19: 2741.Google Scholar
Stewart, WC, Reynolds, KE, Jones, LJ, Stewart, JA, Nelson, LA. The source and impact of specific parameters that enhance well-being in daily life. 2015. https://inside.fammed.wisc.edu/files/webfm-uploads/documents/our-dept/whole-me/Stewart_forgiveness_gratitude_hope_empathy_2015.pdf (accessed May 22, 2019).Google Scholar
Toussaint, L, Overvold-Ronningen, M, Vincent, A, et al. Implications of forgiveness enhancement in patients with fibromyalgia and chronic fatigue syndrome. J Health Care Chaplain 2009; 16(3–4): 123139.Google Scholar
Davis, DE, Ho, MY, Griffin, BJ, et al. Forgiving the self and physical and mental health correlates: a meta-analytic review. J Couns Psychol 2015; 62: 329335.Google Scholar
Recine, AC. Designing forgiveness interventions: guidance from five meta-analyses. J Holistic Nurs 2014; 33: 161167.Google Scholar
Recine, AG, Recine, L, Paldon, T. How people forgive: a systematic review of nurse-authored qualitative research. J Holistic Nurs 2019. DOI:10.1177/0898010119828080.Google Scholar
Berry, JW, Worthington, EL, O’Connor, LE, Parrott, L, Wade, NG. Forgivingness, vengeful rumination, and affective traits. J Pers 2005; 73: 183225.Google Scholar
Karremans, JC, van Schie, HT, van Dongen, I, et al. Is mindfulness associated with interpersonal forgiveness? Emotion 2019. DOI:10.1037/emo0000552.Google Scholar
Li, D, Zhang, W, Li, X, Li, N, Ye, B. Gratitude and suicidal ideation and suicide attempts among Chinese adolescents: direct, mediated, and moderated effects. J Adolesc 2011; 35: 5566.Google Scholar
Wood, AM, Froh, JJ, Geraghty, AWA. Gratitude and well-being: a review and theoretical integration. Clin Psychol Rev 2010; 7: 890905.Google Scholar
Wood, AM, Maltby, J, Stewart, N, Linley, PA, Joseph, S. A social-cognitive model of trait and state levels of gratitude. Emotion 2008; 8: 281290.Google Scholar
American Psychological Association. PsycNET [database]. https://psycnet.apa.org/record/2014-57426-007 (accessed May 23, 2019).Google Scholar
Kaczmarek, LD, Kashdan, TB, Drążkowski, D, et al. Why do people prefer gratitude journaling over gratitude letters? The influence of individual differences in motivation and personality on web-based interventions. Pers Individ Differ 2015; 75: 16.Google Scholar
Miller, WR, Rollnick, S. Motivational Interviewing: Preparing People for Change (2nd ed.). New York, Guilford Press; 2002.Google Scholar
Watson, D, Naragon-Gainey, K. On the specificity of positive emotional dysfunction in psychopathology: evidence from the mood and anxiety disorders and schizophrenia/schizotypy. Clin Psychol Rev 2010; 7: 839848.Google Scholar
Kashdan, TB, Rottenberg, J. Psychological flexibility as a fundamental aspect of health. Clin Psychol Rev 2010; 30: 865878.Google Scholar
Koenig, H, King, D, Carson, V. Handbook of Religion and Health (2nd ed.). New York, Oxford University Press; 2012.Google Scholar
Puchalski, C, Vitillo, R, Hull, S, Reller, N. Improving the spiritual dimension of whole person care: reaching national and international consensus. J Palliat Med 2014; 17(6): 642656.Google Scholar
Pargament, KI. APA Handbook of Psychology, Religion, and Spirituality, Content, Theory, and Research. Washington, DC, American Psychological Association; 2013.Google Scholar
Cloninger, CR. Fostering spirituality and well-being in clinical practice. Psychiatr Ann 2006; 36(3). DOI:10.3928/00485713-20060301-07.Google Scholar
Cloninger, CR. Feeling Good: The Science of Well-Being. Oxford, Oxford University Press; 2004.Google Scholar
Cloninger, CR, Cloninger, KM. Person-centered therapeutics. Int J Pers Cent Med 2011; 1: 4352.Google Scholar
Gallup. Religion. 2019. www.gallup.com/poll/1690/religion.aspx (accessed June 26, 2019).Google Scholar
Pargament, KI, Mahoney, A, Shafranske, EP. APA Handbook of Psychology, Religion, and Spirituality, vol. 2. Washington, DC, American Psychological Association; 2013.Google Scholar
Koenig, HG, McCullough, ME, Larson, DB. Handbook of Religion and Health. New York, Oxford University Press; 2001.Google Scholar
Gall, T, Charbonneau, C, Clarke, N, et al. Understanding the nature and role of spirituality in relation to coping and health: a conceptual framework. Can Psychol 2005; 46: 88104.Google Scholar
Panzini, R, Mosqueiro, B, Zimpel, R, et al. Quality-of-life and spirituality. Int Rev Psychiatr 2017;29: 263282.Google Scholar
Counted, V, Possamai, A, Meade, T. Relational spirituality and quality of life 2007 to 2017: an integrative research review. Health Qual Life Outcomes 2018; 16: 75.Google Scholar
Koenig, H. Research on religion, spirituality, and mental health: a review. Can J Psychiatr 2009; 54: 283291.Google Scholar
Ironson, G, Stuetzle, R, Fletcher, MA. An increase in religiousness/spirituality occurs after HIV diagnosis and predicts slower disease progression over 4 years in people with HIV. J Gen Intern Med 2006; 21 (Suppl. 5): S62S68.Google Scholar
Koenig, HG, Larson, DB, Larson, SS. Religion and coping with serious medical illness. Ann Pharmacother 2001; 35: 352359.Google Scholar
Pargament, KI, Koenig, HG, Tarakeshwar, N, Hahn, J. Religious coping methods as predictors of psychological, physical and spiritual outcomes among medically ill elderly patients: a two-year longitudinal study. J Health Psychol 2004; 9: 713730.Google Scholar
Pargament, KI, Smith, BW, Koenig, HG, Perez, L. Patterns of positive and negative religious coping with major life stressors. J Sci Study Relig 1998; 37: 710.Google Scholar
Kier, F, Davenport, D. Unaddressed problems in the study of spirituality and health. Am Psychologist 2004; 59(1): 5354.Google Scholar
Sloan, RP, Bagiella, E, Powell, T. Religion, spirituality, and medicine. Lancet 1999; 9153: 664667.Google Scholar
Mccullough, ME, Hoyt, WT, Larson, DB, Koenig, HG, Thoresen, C. Religious involvement and mortality: a meta-analytic review. Health Psychol 2000; 19(3): 211222.Google Scholar
Li, S, Stampfer, M, Williams, D, VanderWeele, T. Association of religious service attendance with mortality among women. JAMA Int Med 2016; 176: 777.Google Scholar
Balboni, M, Sullivan, A, Amobi, A, et al. Why is spiritual care infrequent at the end of life? Spiritual care perceptions among patients, nurses, and physicians and the role of training. J Clin Oncol 2013; 31: 461467.Google Scholar
Curlin, F, Chin, M, Sellergren, S, Roach, C, Lantos, J. The association of physicians’ religious characteristics with their attitudes and self-reported behaviors regarding religion and spirituality in the clinical encounter. Med Care 2006; 44: 446453.Google Scholar
Kinnersley, P, Stott, N, Peters, TJ, Harvey, I. The patient-centeredness of consultations and outcome in primary care. Br J Gen Pract 1999; 49: 711716.Google Scholar
Kincheloe, DD, Welden, LMS, White, A. A spiritual care toolkit: an evidence-based solution to meet spiritual needs. J Clin Nurs 2018; 27: 16121620.Google Scholar

References

Pimental, PA. The brave new world of positive neuropsychology. Appl Neuropsychol Adult 2017; 24(2): 99.Google Scholar
Randolph, JJ. Positive neuropsychology: a framework for cognitive health. NAN Bull 2015; 29(2): 2526.Google Scholar
Pimental, PA, O’Hara, JB, Jandak, J. Neuropsychologists as primary care providers of cognitive health: a novel comprehensive cognitive wellness service delivery model. Appl Neuropsychol Adult 2018; 25(4): 318326.Google Scholar
Pillai, JA, Hall, CB, Dickson, DW, et al. Association of crossword puzzle participation with memory decline in persons who develop dementia. J Int Neuropsychol Soc 2011; 17(6): 10061013.Google Scholar
Bidelman, GM, Alain, C. Musical training orchestrates coordinated neuroplasticity in auditory brainstem and cortex to counteract age-related declines in categorical vowel perception. J Neurosci 2015; 35(3): 12401249.Google Scholar
Siever, D. Audio-visual entrainment: History and physiological mechanisms. Biofeedback 2003; 31(2): 2127.Google Scholar
Budzynski, T, Budzynski, HK, Tang, HY. Brain brightening: restoring the aging mind. In: Evans, JR, ed., Handbook of Neurofeedback: Dynamics and Clinical Applications. New York, Haworth Medical Press; 2007.Google Scholar
Waters, F, Bucks, RS. Neuropsychological effects of sleep loss: implications for neuropsychologists. J Int Neuropsychol Soc 2011,17(4): 571586.Google Scholar
Perlis, MI, Sharpe, M, Smith, MT Greenblatt, D, Giles, D. Behavioral treatment of insomnia: treatment outcome and the relevance of medical and psychiatric morbidity. J Behav Med 2011; 24(3): 281296.Google Scholar
Evans, S, Seidman, LC, Tsao, JC, et al. Heart rate variability as a biomarker for autonomic nervous system response differences between children with chronic pain and healthy control children. J Pain Res 2013; 6: 449457.Google Scholar
van de Zwan, JE, de Vente, W, Huizink, AC, Bogels, SM, deBruin, E. Physical activity, mindfulness meditation, or heart rate variability biofeedback for stress reduction: a randomized control trial. Appl Psychophysiol Biofeedback 2015; 40(4): 257268.Google Scholar
Ring, M. Integrative approaches to fibromyalgia. Pain Practitioner 2017; 27(1): 1315.Google Scholar
Belar, CD, Deardorff, WW. Clinical Health Psychology in Medical Settings: A Practitioner’s Guidebook (2nd ed.). Washington, DC, American Psychological Association; 2009.Google Scholar
Blaylock, RL. Food additive excitotoxins and degenerative brain disorders. Med Sentinel 1999; 4(6): 212215.Google Scholar
Pimental, P. The psychology of pain: diagnosis, treatment and multidisciplinary management with a focus on musculoskeletal factors. In: Schwab, C, ed., Musculoskeletal Pain. Philadelphia, PA, Hanley & Belfus; 1991.Google Scholar
Veyilmuthu, R Govindan, S, Venugopalan, M, Panicker, S. Effect of transcutaneous electrical nerve stimulation on labour pain relief among primigravida and multigravida mothers. Int J Reprod Contracept Obstet Gynecol 2017; 6(3): 980985.Google Scholar
Astokorki, AH, Mauger, AR. Transcutaneous electrical nerve stimulation reduces exercise induced perceived pain and improves endurance exercise performance. Eur J Appl Psychol 2016; 117(3): 483492.Google Scholar
DeSantana, JM, Walsh, DM, Vance, C, Rakel, BA, Sluka, KA. Effectiveness of transcutaneous electrical nerve stimulation for treatment of hyperalgesia and pain. Curr Rheumatol Rep 2008; 10(6): 492499.Google Scholar
Kivipelto, M, Solomon, A, Ahtiluoto, S, et al. The Finnish geriatric intervention study to prevent cognitive impairment and disability (FINGER): study design and progress. Alzheimers Dementia 2013; 9(6): 657665.Google Scholar
Sánchez-Villegas, A, Martínez-González, MA, Estruch, R, et al. Mediterranean dietary pattern and depression: the PREDIMED randomized trial. BMC Medicine 2013; 11: 111.Google Scholar
Morris, MC, Tangney, CC, Wang, Y, et al. MIND diet associated with reduced incidence of Alzheimer’s disease. Alzheimers Dementia 2015; 11(9): 10071014.Google Scholar
Lowry, CA, Smith, DG, Siebler, PH, et al. The microbiota, immunoregulation, and mental health: implications for public health. Curr Environ Health Rep 2016; 3(3): 270286.Google Scholar
Yano, JM, Yu, K, Donaldson, GP, et al. Indigenous bacteria from the gut microbiota regulate host serotonin biosynthesis. Cell 2015; 161(2): 264276.Google Scholar
Tillisch, K, Labus, J, Kilpatrick, L, et al. Consumption of fermented milk product with probiotic modulates brain activity. Gastroenterology 2013; 144(7): 13941401.Google Scholar
Farb, NA, Siegel, ZV, Mayberg, H, et al. Attending to the present: mindfulness meditation reveals distinct neural modes of self-reference. Soc Cogn Affect Neurosci 2017; 2(4): 313322.Google Scholar
Fox, KC, Dixon, ML, Nijeboer, S, Girn, M. Functional neuroanatomy of meditation: a review and meta-analysis of 78 functional neuroimaging investigations. J Neurosci Biobehav Rev 2016; 65: 208228.Google Scholar
Hawkins, HL, Kramer, AF, Capaldi, D. Aging, exercise, and attention. Psychol Aging 1999; 7(4): 643653.Google Scholar
Pereira, AC, Huddleston, DE, Brickman, AM, et al. An in vivo correlate of exercise-induced neurogenesis in the adult degenerate gyrus. PNAS 2007; 104(13): 56385643.Google Scholar
Smiley-Oyen, AL, Lowry, KA, Francois, SJ, Kohut, ML, Ekkekakis, P. Exercise, fitness, and neurocognitive function in older adults: the “selective improvement” and “cardiovascular fitness” hypothesis. Ann Behav Med 2008; 36(3): 280291.Google Scholar
Basmajian, J. Biofeedback: Principles and Practice for Clinicians. Baltimore, MD, Williams & Wilkins; 1989.Google Scholar
Krebs, DE, Fagerson, TL. Biofeedback in neuromuscular reeducation and gait training. In: Schwartz, MS, Andrasik, F Biofeedback: A Practitioner’s Guide. New York. Guilford Press; 2003.Google Scholar
Brody, GH, Yu, T, Shalev, I. Risky family processes prospectively forecast shorter telomere length mediated through negative emotions. Health Psychol 2017; 36(5): 438444.Google Scholar
deFrias, CM, Dixon, RA. Lifestyle engagement affects cognitive status differences and trajectories on executive functions in older adults. Arch Clin Neuropsychol 2014; 29(1): 1625.Google Scholar
Worthington, EL, Scherer, M. Forgiveness is an emotion-focused coping strategy that can reduce health risks and promote health resilience: theory, review, and hypothesis. Psychol Health 2004; 19(3): 385405.Google Scholar
Bremner, JD. Traumatic stress: effects on the brain. Dialog Clin Neuroscie 2006; 8(4): 445461.Google Scholar
Gomez, AM. EMDR Therapy and Adjunct Approaches with Children: Complex Trauma, Attachment and Dissociation. New York, Springer; 2013.Google Scholar
Shapiro, F. Eye Movement Desensitization and Reprocessing (EMDR) Therapy: Basic Principles, Protocols and Procedures (3rd ed.). New York, Guilford; 2008.Google Scholar
Gupta, MA, Gupta, AK. Use of eye movement desensitization and reprocessing (EMDR) in the treatment of dermatologic disorders. J Cutan Med Surg 2002; 6(5): 415421.Google Scholar
Haskins, EC, Cicerone, K, Dams-O’Connor, K, et al. Cognitive Rehabilitation Manual: Translating Evidence-Based Recommendations into Practice. Reston, VA, ACRM Publishing; 2012. https://acrm.org/wp-content/uploads/pdf/COG_Manual_020413_frontSection.pdf (accessed March 1, 2020).Google Scholar
Committee on Cognitive Rehabilitation Therapy for Traumatic Brain Injury. Defining cognitive rehabilitation therapy. In: Koehler, R, Wilhelm, EE, Shoulson, I, eds., Cognitive Rehabilitation Therapy for Traumatic Brain Injury: Evaluating the Evidence. Washington, DC, National Academies Press; 2011.Google Scholar
Prince, C, Bruhns, ME. Evaluation and treatment of mild traumatic brain injury: the role of neuropsychology. Brain Sci 2017; 7(8): 105.Google Scholar
Cicerone, KD. Cognitive rehabilitation. In: Zasler, ND, Katz, DI, Zafonte, RD, eds., Brain Injury Medicine (2nd ed.). New York, Demos Medical Publishing, LLC; 2013.Google Scholar
Gillen, G. Cognitive and Perceptual Rehabilitation: Optimizing Function. St. Louis, MO, Mosby Elsevier; 2009.Google Scholar
Cicerone, KD, Langenbahn, DM, Braden, C, et al. Evidence-based cognitive rehabilitation: updated review of the literature from 2003 through 2008. Arch Phys Med Rehab 2011; 92(4): 519530.Google Scholar
Sachdeva, A, Kumar, K, Anand, KS. Non-pharmacological cognitive enhancers: current perspectives. J Clin Diagn Res 2015; 9(7): 16.Google Scholar
Clark, VP, Parasuraman, R. Neuroenhancement: enhancing brain and mind in health and in disease. NeuroImage 2013; 85: 889894.Google Scholar
Filmer, HL, Dux, PE, Mattingley, JB. Applications of transcranial direct current stimulation for understanding brain function. Trends Neurosci 2014; 37(12): 742753.Google Scholar
Clark, VP, Coffman, BA, Trumbo, MC, Gasparovic, C. Transcranial direct current stimulation (tDCS) produces localized and specific alterations in neurochemistry: a 1 h magnetic resonance spectroscopy study. Neurosci Lett 2011; 500(1): 6771.Google Scholar
Luber, B, Lisanby, SH. Enhancement of human cognitive performance using trans- cranial magnetic stimulation (TMS). NeuroImage 2014; 85: 963972.Google Scholar
Ferrucci, R, Priori, A. Transcranial cerebellar direct current stimulation (tcDCS): motor control, cognition, learning and emotions. NeuroImage 2014; 85: 920925.Google Scholar
Smith, PJ, Blumenthal, JA, Hoffman, BM, et al. An aerobic exercise and neurocognitive performance: a meta-analytic review of randomized controlled trials. Psychosom Med 2010; 72(3): 239252.Google Scholar
Berchicci, M, Lucci, G, DiRusso, F. Benefits of physical exercise on the aging brain: the role of the prefrontal cortex. J Gerontol A Biol Sci Med Sci 2013; 68: 1337–41.Google Scholar
Gard, T, Hölzel, BK, Lazar, SW. The potential effects of meditation on age-related cognitive decline: a systematic review. Ann NY Acad Sci 2014; 1307: 89103.Google Scholar
Krisanaprakornkit, T, Sriraj, W, Piyavhatkul, N, Laopaiboon, M. Meditation therapy for anxiety disorders. Cochrane Database Syst Rev 2006; 1: 124.Google Scholar
Miller, L, Bansal, R, Wickramaratne, P, et al. Neuroanatomical correlates of religiosity and spirituality: a study in adults at high and low familial risk for depression. JAMA Psychiatr 2014; 71(2): 128135.Google Scholar
Prakash, R, Rastogi, P, Dubey, I, et al. Long-term concentrative meditation and cognitive performance among older adults. Neuropsychol Dev Cogn B Aging Neuropsychol Cogn 2012; 19: 479494.Google Scholar
Cooper, N, Suri, P, Litman, A, Morgenroth, DC. The effect of yoga on balance and mobility in populations with balance and mobility impairment: a systematic review with meta-analysis. Curr Phys Med Rehabil Rep 2018; 6(1): 114.Google Scholar
Cahn, BR, Goodman, MS, Peterson, CT, Maturi, R, Millis, PJ. Yoga, meditation and mind–body health: increased BDNF cortisol awakening response, and altered inflammatory marker expression after 3-month yoga and meditation. Front Hum Neurosci 2017; 11: 113.Google Scholar
Cramer, H, Lauche, R, Langhorst, J, Dobos, G. Yoga for depression: a systematic review and meta-analysis. Depress Anxiety 2013; 20: 1068–83.Google Scholar
Fang, R, Ye, S, Huangfu, J, Calimag, DP. Music therapy is a potential intervention for cognition of Alzheimer’s disease: a mini-review. Translational Neurodegeneration 2017; 6(2): 18.Google Scholar
Chanda, ML, Levitin, DJ. The neurochemistry of music. Trends Cogn Sci 2013; 17: 179193.Google Scholar

References

Unschuld, PU. Traditional Chinese Medicine: Heritage and Adaptation. New York, Columbia University Press; 2018.Google Scholar
Leung, P. A Comprehensive Guide to Chinese Medicine (2nd ed.). Singapore, World Scientific; 2016.Google Scholar
Adams, JD, Lien, EJ. The traditional and scientific bases for traditional Chinese medicine: communications between traditional practitioners, physicians and scientists. In: Adams, J, Lien, E, eds., Traditional Chinese Medicine: Scientific Basis for Its Use. Cambridge, RSC Publishing; 2013; 110.Google Scholar
Chiaramonte, D, D’Adamo, C, Morrison, B. Integrative approaches to pain management. In: Benzon, H, Rathmell, J, eds. Practical Management of Pain (5th ed.). Philidelphia, PA, Mosby Inc.; 2014; 658668.Google Scholar
Hong, GG. Acupuncture: the historical basis and its US practitioners. Lab Med 1998; 3: 163166.Google Scholar
White, A, Ernst, E. A brief history of acupuncture. Rheumatology 2004; 5: 662663.Google Scholar
Langevin, HM, Schyner, RN. Reconnecting the body in Eastern and Western medicine. J Altern Complement Med 2017; 4: 238241.Google Scholar
Napadow, V, Ahn, A, Lao, L, et al. The status and future of acupuncture mechanism research. J Altern Complement Med 2008; 7: 861869.Google Scholar
Lim, T, Ma, Y, Berger, F, Litscher, G. Acupuncture and neural mechanism in the management of low back pain: an update. Medicines 2018; 3: 63.Google Scholar
Hui, KS, Napadow, V, Liu, J, et al. Monitoring acupuncture effects on human brain by fMRI. J Vis Exp 2010; 38: 1190.Google Scholar
Qaseem, A, Wilt, TJ, McLean, RM, Forciea, MA. Noninvasive treatment acute, subacute, and chronic low back pain: a clinical practice guideline from the American Colleges of Physicians. Ann Intern Med 2017; 7: 514530.Google Scholar
Zhang, X. Acupuncture: Review and Analysis of Controlled Clinical Trials. Geneva, World Health Organization; 2002.Google Scholar
Manheimer, E, White, A, Berman, B, Forys, K, Ernst, E. Meta-analysis: acupuncture for low back pain. Ann Intern Med 2005; 142: 651663.Google Scholar
Haake, M, Müller, HH, Schade-Brittinger, C, et al. German Acupuncture Trials (GERAC) for chronic low back pain: randomized, multicenter, blinded, parallel-group trial with 3 groups. Arch Intern Med 2007; 167: 18921898.Google Scholar
Karpatkin, HI, Napolione, D, Siminovich-Blok, B. Acupuncture and multiple sclerosis: a review of the evidence. Evid Based Complement Alternat Med 2014. DOI:10.1155/2014/972935.Google Scholar
Zhao, X, Hu, H, Li, J, et al. Is acupuncture effective for hypertension? A systematic review and meta-analysis. PLoS One 2015; 10. DOI:10.1371/journal.pone.0127019.Google Scholar
Zia, FZ, Olaku, O, Bao, T, et al. The National Cancer Institute’s Conference on acupuncture for symptoms management in oncology: state of the science, evidence and research gaps. JNCI Monogr 2017; 52; 6873.Google Scholar
Daily, JW, Yang, M, Park, S. Efficacy of tumeric extracts and curcumin for alleviating the symptoms of joint arthritis: a systematic review and meta-analysis of the randomized clinical trials. PLoS One 2013; 8. DOI:10.1089/jmf.2016.3705.Google Scholar
Song, Y, Xu, B. Diffusion profiles of health beneficial components from goji berry (Lyceum barbarum) marinated in alcohol and their antioxidant capacities as affected by alcohol concentration and steeping time. Foods 2013; 3: 3242.Google Scholar
Huang, Q, Wang, M, Chen, X, et al. Can active components of licorice, glycyrrhizin and glycyrrhetinic acid, lick rheumatoid arthritis? Oncotarget 2015, 7. DOI:10.18632/oncotarget.6200.Google Scholar
Choi, J, Choi, T, Lee, M, Kim, T. Ginseng for health care: a systematic review of randomised controlled trials in Korean literature. BMJ Quality Safety. 2013. DOI:10.1136/bmjqs-2013-002293.131.Google Scholar
Lee, N-H, Son, C-G. Systematic review of randomized controlled trials evaluating the efficacy and safety of ginseng. J Acupunct Meridian Stud 2011 4: 8597.Google Scholar
Wang, Z, Qi, F, Cui, Y, et al. An update on Chinese herbal medicines as adjuvant treatment of anticancer therapeutics. BioScience Trends 2018 12: 220239.Google Scholar
Standard International Media. Webster’s Dictonary & Thesaurus: 2014 Edition. Naples, FL, Standard Intl Media; 2017.Google Scholar
Halpen, M, Principles of Ayurvedic Medicine (11th ed). Independently published; 2018.Google Scholar
Simon, D, Chopra, D. The Wisdom of Healing: A Natural Mind Body Program for Optimal Wellness. New York, Harmony Books; 1997.Google Scholar
National Center for Complementary and Integrative Health. Ayurvedic medicine: in depth. http://nccih.nih.gov/health/ayurveda/introduction.htm (accessed January 14, 2019).Google Scholar
Mason, S, Tovey, P Long, AF. Evaluating complementary medicine: methodological challenges of randomised controlled trials. BMJ 2002; 325(7368): 832834.Google Scholar
Ader, R, Cohen, N. Behaviorally conditioned immunosuppression. Psychosomatic Medicine 1975; 37: 333340.Google Scholar
Pert, CB, Snyder, SH. Opiate receptor: demonstration in nervous tissue. Science 1973; 179: 10111014.Google Scholar
Pert, CB, Chopra, D. Molecules of Emotion: Why You Feel the Way You Feel. New York, Simon and Schuster; 1997.Google Scholar
Glaser, R, Kiecolt-Glaser, JK, Stout, JC, et al. Stress-related impairments in cellular immunity. Psychiatr Res 1985; 16(3): 233239.Google Scholar
Herbert, TB, Cohen, S. Stress and immunity in humans: a meta-analytic review. Psychosom Med 1993; 55: 364379.Google Scholar
Zorrilla, EP, Luborsky, L, McKay, JR, et al. The relationship of depression and stressors to immunological assays: a meta-analytic review. Brain Behav Immun 2001; 15(3): 199226.Google Scholar
Nelson, EL, Wenzel, LB, Osann, K, et al. Stress, immunity, and cervical cancer: biobehavioral outcomes of a randomized clinical trial [corrected]. Clin Cancer Res 2008; 14(7): 21112118.Google Scholar
Beary, JF, Benson, H. A simple psychophysiological technique which elicits the hypometabolic changes of the relaxation response. Psychosom Med 1974; 36(2): 115120.Google Scholar
Bormann, JE, Oman, D, Kemppainen, JK, et al. Mantram repetition for stress management in veterans and employees: a critical incident study. J Adv Nurs 2006; 53(5): 502512.Google Scholar
Seeman, TE, Dubin, LF, Seeman, M. Religiosity/spirituality and health: a critical review of the evidence for biological pathways. Am Psychologist 2003; 58: 5363.Google Scholar
Aggarwal, BB, Prasad, S, Reuter, S, et al. Identification of novel anti-inflammatory agents from Ayurvedic medicine for prevention of chronic diseases: “reverse pharmacology” and “bedside to bench” approach. Curr Drug Targets 2011; 12(11): 15951653.Google Scholar
Vayalil, PK, Kuttan, G, Kuttan, R. Rasayanas: evidence for the concept of prevention of diseases. Am J Chin Med 2002; 30: 155171.Google Scholar
Khan, S, Balick, MJ. Therapeutic plants of Ayurveda: a review of selected clinical and other studies for 166 species. J Altern Complement Med 2001; 7(5): 405515.Google Scholar
Chainani-Wu, N. Safety and anti-inflammatory activity of curcumin: a component of turmeric (Curcuma longa). J Altern Complement Med 2003; 9: 161168.Google Scholar
Gautam, M, Saha, S, Bani, S, et al. Immunomodulatory activity of Asparagus racemosus on systemic Th1/Th2 immunity: implications for immunoadjuvant potential. J Ethnopharmacol 2009; 121: 241247.Google Scholar
Santwani, K, Shukla, VD, Santwani, MA, Thaker, G. An assessment of Manasika Bhavas in menopausal syndrome and its management. Ayu 2010; 31(3): 311318.Google Scholar

References

Dunn., HL High Level Wellness. Arlington, VA, Beatty Press; 1961.Google Scholar
Boston University Center for Psychiatric Rehabilitation. Eight dimensions of wellness. 2019. https://cpr.bu.edu/living-well/eight-dimensions-of-wellness (accessed September 5, 2019).Google Scholar
Berscheid, E, Walster, E. Physical attractiveness. Adv. Exp. Social Psychol. 1974; 7: 157215.Google Scholar
Yarosh, DB. Perception and deception: human beauty and the brain. Behav Sci (Basel) 2019; 29: pii: E34.Google Scholar
American Society of Plastic Surgeons. Cosmetic Procedures. 2019. www.plasticsurgery.org/cosmetic-procedures (accessed September 5, 2019).Google Scholar
Zion Research. Global cosmetic products market share expected to reach $863 billion by 2024: ZMR. 2019. www.globenewswire.com/news-release/2019/01/31/1708263/0/en/Global-Cosmetic-Products-Market-Share-Expected-To-Reach-863-Billion-by-2024-ZMR.html (accessed September 5, 2019).Google Scholar
Hojjat, H, Raad, R, Lucas, J, et al. Public perception of facial fillers. Facial Plast Surg 2019; 35: 204209.Google Scholar
Bensoussan, JC, Bolton, MA, Pi, S, et al. Quality of life before and after cosmetic surgery. CNS Spectr 2014; 19: 282292.Google Scholar
von Soest, T, Kvalem, IL, Skolleborg, KC, Roald, HE. Psychosocial changes after cosmetic surgery: a 5-year follow-up study. Plast Reconstr Surg 2011; 128: 765772.Google Scholar
Ristow, B. Facial rejuvenation included maintaining all the patient’s natural fat (except under the chin), elevation of low eyebrows, eyelid operations and restoration of the natural fullness of the lips. 2019. https://commons.wikimedia.org/wiki/File:Face_Lift_01_Dr._Ristow.jpg (accessed September 1, 2019).Google Scholar
Scharschmidt, D, Mirastschijski, U, Preiss, S, et al. Body image, personality traits, and quality of life in botulinum toxin A and dermal filler patients. Aesthetic Plast Surg 2018; 42(4): 11191125.Google Scholar
Roche, A, Sedgwick, PM, Harland, CC. Laser treatment for female facial hirsutism: are quality‐of‐life benefits sustainable? Clin Exp Dermatol 2016; 41: 248252.Google Scholar
American Society of Plastic Surgeons. Rhytidectomy. 2019. www.plasticsurgery.org/cosmetic-procedures/facelift (accessed September 1, 2019).Google Scholar
American Society of Plastic Surgeons. Rhinoplasty. 2019. www.plasticsurgery.org/cosmetic-procedures/rhinoplasty (accessed September 1, 2019).Google Scholar
American Society of Plastic Surgeons. Tummy tuck, 2019. www.plasticsurgery.org/cosmetic-procedures/tummy-tuck (accessed September 1, 2019).Google Scholar
American Society of Plastic Surgeons. Liposuction. 2019. www.plasticsurgery.org/cosmetic-procedures/liposuction (accessed September 1, 2019).Google Scholar
American Society of Plastic Surgeons. Breast. 2019. www.plasticsurgery.org/cosmetic-procedures (accessed September 1, 2019).Google Scholar
Honigman, RJ, Phillips, KA, Castle, DJ. A review of psychosocial outcomes for patients seeking cosmetic surgery. Plast Reconstr Surg 2004; 113: 12291237.Google Scholar
Alves, MC, Abla, LE, Santos Rde, A, Ferreira, LM. Quality of life and self-esteem outcomes following rhytidoplasty. Ann Plast Surg 2005; 54: 511514.Google Scholar
Floyd, E, Perkins., SW The past, present and future of facial plastic and reconstructive surgery: facelift. Facial Plast Surg 2019; 35: 353357.Google Scholar
Alderman, AK, J Bauer, D Fardo, , et al. Understanding the effect of breast augmentation on quality of life: prospective analysis using the BREAST-Q. Plast Reconstr Surg 2014; 133: 787795.Google Scholar
Kececi, Y, Sir, E, Gungor, M. Patient-reported quality-of-life outcomes of breast reduction evaluated with generic questionnaires and the breast reduction assessed severity scale. Aesthet Surg J 2015; 35: 4854.Google Scholar
Bertozzi, N, Pesce, M, Santi, P, Raposio, E. One-stage immediate breast reconstruction: a concise review. BioMed Res Int 2017; 20: 50585066.Google Scholar
Sollie, M. Management of gynecomastia: changes in psychological aspects after surgery – a systematic review. Gland Surg 2018; 7: S70S76.Google Scholar
Rudolph, C, Hladik, C, Stroup, DF, et al. Are cosmetic procedures comparable to antidepressive medication for quality-of-life improvements? A systematic review and controlled meta-analysis. Facial Plast Surg 2019; 35: 549558.Google Scholar
Kraus, CN, Chapman, LW, Korta, DZ, Zachary, CB. Quality of life outcomes associated with treatment of human immunodeficiency virus (HIV) facial lipoatrophy. Int J Dermatol 2016; 55: 13111320.Google Scholar
Osaki, TH, Osaki, MH. Eyelid make-up to manage transient blepharoptosis after botulinum toxin injection. Aesthet Surg J 2018; 38(1): NP16–NP18.Google Scholar
Roche, N, Zory, R, Sauthier, A, et al. Effect of rehabilitation and botulinum toxin injection on gait in chronic stroke patients: a randomized controlled study. J Rehabil Med 2015; 47: 3137.Google Scholar
Kuroda, F, Urban, C, Zucca, G, et al. Evaluation of aesthetic and quality-of-life results after immediate breast reconstruction with definitive form-stable anatomical implants. Plast Reconstr Surg 2016; 137(2): 278e286e.Google Scholar
Zhong, T, Hu, J, Bagher, S, Vo, A, et al. A comparison of psychological response, body image, sexuality, and quality of life between immediate and delayed autologous tissue breast reconstruction: a prospective long-term outcome study. Plast Reconstr Surg 2016; 138: 772780.Google Scholar
Kim, MK, Kim, T, Moon, HG, et al. Effect of cosmetic outcome on quality of life after breast cancer surgery. Eur J Surg Oncol 2015; 41: 426432.Google Scholar
Azizzadeh, B. Photo gallery before and after undergoing facial paralysis surgery in with Babak Azizzadeh, MD, FACS. 2019. www.facialparalysisinstitute.com/photo-gallery (accessed September 5, 2019).Google Scholar
Quinzi, V, Scibetta, ET, Marchetti, E, et al. Analyze my face. J Biol Regul Homeost Agents 2018; 32: 149158.Google Scholar
Cash, TF, Dawson, K, Davis, P, Bowen, M, Galumbeck, C. Effects of cosmetics use on the physical attractiveness and body image of American college women. J Social Psychol 1989; 129(3): 349355.Google Scholar
Richetin, J, Croizet, J, Huguet, P. Facial make-up elicits positive attitudes at the implicit level: evidence from the implicit association test. Curr Res Social Psychol 2004; 9(11): 145–164.Google Scholar
Palumbo, R, Fairfield, B, Mammarella, N, Di Domenico, A. Does make-up make you feel smarter? The “lipstick effect” extended to academic achievement. Cogent Psychol 2017; 4(1): 1327635.Google Scholar
Fujiwara, K, Furuta, Y, Aoki, W, et al. Make-up therapy for patients with facial nerve palsy. Ann Otol Rhinol Laryngol 2019; 128(8): 721727.Google Scholar
Hoffman, K. Amazing results of feeling confident in what you wear – otherwise known as ensemble empowerment. 2015. www.bustle.com/articles/64781–6-amazing-results-of-feeling-confident-in-what-you-wear-otherwise-known-as-ensemble-empowerment (accessed September 5, 2019).Google Scholar
Leblanc, V. How what you’re wearing can affect your anxiety. 2018. www.calmclinic.com/anxiety/clothing-matters (accessed September 5, 2019).Google Scholar
Stich Fix. Home page. 2019. www.stitchfix.com (accessed September 5, 2019).Google Scholar
Mikhail, A. The Stīl Trust. 2019. www.thestiltrust.com (accessed September 5, 2019).Google Scholar

References

Kennedy, AB, Cambron, JA, Sharpe, PA, Travillian, RS, Saunders, RP. Clarifying definitions for the massage therapy profession: the results of the best practices symposium. Int J Ther Massage Bodyw Res Educ Pract 2016; 9(3): 1526.Google Scholar
Benjamin, PJ. Historical overview. In: Dryden, T, Moyer, CA, eds., Massage Therapy: Integrating Research and Practice. Champaign, IL, Human Kinetics; 2012; 313.Google Scholar
Harris, PE, Cooper, KL, Relton, C, Thomas, KJ. Prevalence of visits to massage therapists by the general population: a systematic review. Complement Ther Clin Pract 2014; 20(1): 1620.Google Scholar
Sundberg, T, Cramer, H, Sibbritt, D, Adams, J, Lauche, R. Prevalence, patterns, and predictors of massage practitioner utilization: results of a US nationally representative survey. Musculoskelet Sci Pract 2017; 32: 3137.Google Scholar
Moraska, A, Pollini, RA, Boulanger, K, Brooks, MZ, Teitlebaum, L. Physiological adjustments to stress measures following massage therapy: a review of the literature. Evidence-Based Complement Altern Med 2010; 7(4): 409418.Google Scholar
Field, T, Hernandez-Reif, M, Diego, M, Schanberg, S, Kuhn, C. Cortisol decreases and serotonin and dopamine increase following massage therapy. Int J Neurosci 2005; 115(10): 13971413.Google Scholar
Goats, GC. Massage: the scientific basis of an ancient art: Part 2. Physiological and therapeutic effects. Br J Sports Med 1994; 28(3): 153156.Google Scholar
Bialosky, JE, Bishop, MD, Price, DD, Robinson, ME, George, SZ. The mechanisms of manual therapy in the treatment of musculoskeletal pain: a comprehensive model. Man Ther 2009; 14(5): 531538.Google Scholar
Waters-Banker, C, Dupont-Versteegden, EE, Kitzman, PH, Butterfield, TA. Investigating the mechanisms of massage efficacy: the role of mechanical immunomodulation. J Athl Train 2014; 49(2): 266273.Google Scholar
Field, T. Massage therapy research review. Complement Ther Clin Pract 2016; 24: 1931.Google Scholar
Kulkarni, A, Kaushik, JS, Gupta, P, Sharma, H, Agrawal, RK. Massage and touch therapy in neonates: the current evidence. Indian Pediatr 2010; 47(9): 771776.Google Scholar
Rodríguez-Mansilla, J, González-Sánchez, B, Torres-Piles, S, et al. Effects of the application of therapeutic massage in children with cancer: a systematic review. Rev Lat Am Enfermagem 2017 8(25): e2903.Google Scholar
Shipwright, S. Pediatrics. In: Dryden, T Moyer, CA, eds., Massage Therapy: Integrating Research and Practice. Champaign, IL, Human Kinetics; 2012; 90101.Google Scholar
Field, T. Pregnancy and labor massage. Expert Rev Obstet Gynecol 2010; 5(2): 177181.Google Scholar
Thompson, DL. Massage and older adults. In: Dryden, T, Moyer, CA, eds., Massage Therapy: Integrating Research and Practice. Champaign, IL, Human Kinetics; 2012. 130143.Google Scholar
Brummitt, J. The role of massage in sports performance and rehabilitation: current evidence and future direction. N Am J Sports Phys Ther 2008; 3(1): 721.Google Scholar
Crawford, C, Boyd, C, Paat, CF, et al. The impact of massage therapy on function in pain populations: a systematic review and meta-analysis of randomized controlled trials. Part I, patients experiencing pain in the general population. Pain Med 2016; 17(7): 13531375.Google Scholar
Cowen, VS, Tafuto, B. Integration of massage therapy in outpatient cancer care. Int J Ther Massage Bodywork 2018; 11(1): 410.Google Scholar
Russell, NC, Sumler, S-S, Beinhorn, CM, Frenkel, MA. Role of massage therapy in cancer care. J Altern Complement Med 2008; 14(2): 209214.Google Scholar
Polimeni, R. The first joke: exploring the evolutionary origins of humor. Evol Psychol 2006; 4: 347366.Google Scholar
Cousins, N. Anatomy of an illness (as perceived by the patient). N Engl J Med 1976; 295(26): 14581463.Google Scholar
Boscarelli, A. Clown therapy: not only a pediatric matter. Transl Pediatr 2017; 6(2): 111112.Google Scholar
Woodbury-Fariña, MA, Rodríguez Schwabe, MM. Laughter yoga: benefits of mixing laughter and yoga. J Yoga Phys Ther 2015; 5(4). DOI:10.4172/2157-7595.1000209.Google Scholar
Martin, RA. Humor, laughter, and physical health: methodological issues and research findings. Psychol Bull 2001; 127: 504519.Google Scholar
Bennett, MP, Lengacher, C. Humor and laughter may influence health: III. Laughter and health outcomes. Evidence-based Complement Altern Med 2008; 5(1): 3740.Google Scholar
Mccreaddie, M, Payne, S. Humour in health-care interactions: a risk worth taking. Heal Expect 2014; 17(3): 332344.Google Scholar
Phillips, KA, Singh Ospina, N, Rodriguez-Gutierrez, R, et al. Humor during clinical practice: analysis of recorded clinical encounters. J Am Board Fam Med 2018; 31(2): 270278.Google Scholar
Strean, WB, Chaplin, C. Laughter prescription. Can Fam Physician 2009; 55: 965967.Google Scholar
Sridharan, K, Sivaramakrishnan, G. Therapeutic clowns in pediatrics: a systematic review and meta-analysis of randomized controlled trials. Eur J Pediatr 2016; 175(10): 13531360.Google Scholar
Sánchez, JC, Echeverri, LF, Londoño, MJ, et al. Effects of a humor therapy program on stress levels in pediatric inpatients. Hosp Pediatr 2017; 7(1): 4653.Google Scholar
Gonot-Schoupinsky, FN, Garip, G. Laughter and humour interventions for well-being in older adults: a systematic review and intervention classification. Complement Ther Med 2018; 38: 8591.Google Scholar
Hayashi, K, Kawachi, I, Ohira, T, et al. Laughter is the best medicine? A cross-sectional study of cardiovascular disease among older Japanese adults. J Epidemiol 2016; 26(10): 546552.Google Scholar
Pinna, C, Mahtani-chugani, V. The use of humor in palliative care: a systematic literature review. Am J Hosp Palliat Med 2018; 35(10): 13421354.Google Scholar
Bressington, D, Yu, C, Wong, W, Ng, TC, Chien, WT. The effects of group-based laughter yoga interventions on mental health in adults: a systematic review. J Psychiatr Mental Health Nurs 2018; 25(8): 517527.Google Scholar
Gelkopf, M. The use of humor in serious mental illness: a review. Evidence-based Complement Altern Med 2011. DOI:10.1093/ecam/nep106.Google Scholar
Demir, M. Effects of laughter therapy on anxiety, stress, depression and quality of life in cancer patients. J Cancer Sci Ther 2015; 7(9): 272273.Google Scholar
Vuilleumier, P, Trost, W. Music and emotions: from enchantment to entrainment. Ann N Y Acad Sci 2015; 13371(1): 212222.Google Scholar
Montinari, MR, Giardina, S, Minelli, P, Minelli, S. History of music therapy and its contemporary applications in cardiovascular diseases. South Med J 2018; 111(2): 98102.Google Scholar
Palmer, MD. Music therapy in a comprehensive program of treatment and rehabilitation for the geriatric resident. J Music Ther 1977; 14(4): 190197.Google Scholar
Panteleeva, Y, Ceschi, G, Glowinski, D, Courvoisier, DS, Grandjean, D. Music for anxiety? Meta-analysis of anxiety reduction in non-clinical samples. Psychol Music 2018; 46(4): 473487.Google Scholar
Lee, K-C, Chao, Y-H, Yiin, J-J, et al. Evidence that music listening reduces preoperative patients’ anxiety. Biol Res Nurs 2012; 14(1): 7884.Google Scholar
Li, J, Zhou, L, Wang, Y. The effects of music intervention on burn patients during treatment procedures: a systematic review and meta-analysis of randomized controlled trials. BMC Complement Altern Med 2017; 17(1): 158.Google Scholar
Rahimi, R, Ghaderi, M, Azarbayjani, MA. The effect of motivational and relaxation music on aerobic performance, rating perceived exertion and salivary cortisol in athlete males. South African J Res Sport Phys Educ Recreat 2009; 31(2): 2938.Google Scholar
Jarraya, M, Chtourou, H, Aloui, A, et al. The effects of music on high-intensity short-term exercise in well trained athletes. Asian J Sport Med 2012; 3(4): 233238.Google Scholar
Luciano, B, Cesare, P, Gaia, C, Rossella, B, et al. Dynamic interactions between musical, cardiovascular, and cerebral rhythms in humans. Circulation 2009; 119(25): 31713180.Google Scholar
Tsoi, KKF, Chan, JYC, Ng, Y-M, et al. Receptive music therapy is more effective than interactive music therapy to relieve behavioral and psychological symptoms of dementia: a systematic review and meta-analysis. J Am Med Dir Assoc 2018; 19(7): 568576.e3.Google Scholar
Aalbers, S, Fusar-Poli, L, Freeman, RE, et al. Music therapy for depression. Cochrane Database Syst Rev 2017. DOI:10.1002/14651858.CD004517.pub3.Google Scholar
García-Casares, N, Moreno-Leiva, RM, García-Arnés, JA. Music therapy as a non-pharmacological treatment in Alzheimer’s disease: a systematic review. Rev Neurol 2017; 65(12): 529538.Google Scholar
Rio, R. A community-based music therapy support group for people with Alzheimer’s disease and their caregivers: a sustainable partnership model. Front Med 2018. DOI:10.3389/fmed.2018.00293.Google Scholar
García-Casares, N, Martín-Colom, JE, García-Arnés, JA. Music therapy in Parkinson’s disease. J Am Med Dir Assoc 2018; 19(12): 10541062.Google Scholar
de Dreu, MJ, van der Wilk, ASD, Poppe, E, Kwakkel, G, van Wegen, EEH. Rehabilitation, exercise therapy and music in patients with Parkinson’s disease: a meta-analysis of the effects of music-based movement therapy on walking ability, balance and quality of life. Parkinsonism Relat Disord 2012; 18: S114S119.Google Scholar
He, H, Yang, M, Duan, M, et al. Music intervention leads to increased insular connectivity and improved clinical symptoms in schizophrenia. Front Neurosci 2018; 23(11): 744.Google Scholar
Alcântara-Silva, TR, de Freitas-Junior, R, Freitas, NMA, et al. Music therapy reduces radiotherapy-induced fatigue in patients with breast or gynecological cancer: a randomized trial. Integr Cancer Ther 2018; 17(3): 628635.Google Scholar
Alparslan, G, Babadağ, B, Özkaraman, A, et al. Effects of music on pain in patients with fibromyalgia. Clin Rheumatol 2016; 35(5): 13171321.Google Scholar
Espí-López, GV, Inglés, M, Ruescas-Nicolau, M-A, Moreno-Segura, N. Effect of low-impact aerobic exercise combined with music therapy on patients with fibromyalgia: a pilot study. Complement Ther Med 2016; 28: 17.Google Scholar
Torres, E, Pedersen, IN, Pérez-Fernández, JI. Randomized trial of a group music and imagery method (GrpMI) for women with fibromyalgia. J Music Ther 2018; 55(2): 186220.Google Scholar

References

Brymer, E, Cuddihy, TF, Sharma-Brymer, V. The role of nature-based experiences in the development and maintenance of wellness. Asia-Pacific J Health Sport Phys Educ 2010; 1(2): 2128.Google Scholar
Reese, RF, Lewis, TF, Myers, JE, Wahesh, E, Iversen, R. Relationship between nature relatedness and holistic wellness: an exploratory study. J Humanist Couns 2014; 53: 6379.Google Scholar
Reese, RF, Myers, JE. EcoWellness: the missing factor in holistic wellness models. J Counsel Dev 2012; 90: 400406.Google Scholar
American Public Health Association. Improving health and wellness through access to nature: policy number: 20137. 2013. www.apha.org/policies-and-advocacy/public-health-policy-statements/policy-database/2014/07/08/09/18/improving-health-and-wellness-through-access-to-nature (accessed January 22, 2019).Google Scholar
D Trau, KA Keenan, Goforth, M, et al. Nature contacts: employee wellness in healthcare. HERD 2016; 9(3): 4762.Google Scholar
Martyn, P, Brymer, E. The relationship between nature relatedness and anxiety. J Health Psychol 2016; 21(7): 14361445.Google Scholar
Nisbet, EK, Zelenski, JM, Murphy, SA. Happiness is in our nature: exploring nature relatedness as a contributor to subjective well-being. J Happiness Stud 2011; 12: 303322.Google Scholar
Chawla, L. Benefits of nature contact for children. J Plan Lit 2015; 30(4): 433452.Google Scholar
Ward, T, Goldingay, S, Parson, J. Evaluating a supported nature play programme, parents’ perspectives. Early Child Dev Care 2019; 189(2): 270283.Google Scholar
Russell, R, Guerry, AD, Balvanera, P, et al. Humans and nature: how knowing and experiencing nature affect well-being. Annu Rev Environ Resour 2013; 38(1): 473502.Google Scholar
Fiskum, A, Jacobsen, K. Outdoor education gives fewer demands for action regulation and an increased variability of affordances. JAEOL 2013; 13(1): 7699.Google Scholar
Sandseter, EBH. Affordances for risky play in preschool: the importance of features in the play environment. Early Child Educ J 2009; 36: 439446.Google Scholar
Araujo, D, Brymer, E, Withagen, R, Brito, H, Davids, K. The empowering variability of affordances of nature: why do exercisers feel better after performing the same exercise in natural environments than in indoor environments? Psychol Sport Exerc 2019; 42: 138145.Google Scholar
Heinsch, M. Getting down to earth: finding a place for nature in social work practice. Int J Soc Welfare 2012; 21: 309318.Google Scholar
Gratani, M, Sutton, SG, Butler, J, Bohensky, E, Foale, S. Indigenous environmental values as human values. Cogent Soc Sci 2016; 2. DOI:10.1080/23311886.2016.1185811.Google Scholar
O’Haire, M. Companion animals and human health: benefits, challenges, and the road ahead. J Vet Behav 2010; 5(5): 226234.Google Scholar
Herzog, H. The impact of pets on human health and psychological well-being: fact, fiction, or hypothesis? Curr Dir Psychol Sci 2011; 20(4): 236239.Google Scholar
Charles, N, Davies, CA. My family and other animals: pets as kin. Sociol Res Online 2008; 13(5). DOI:10.5153/sro.1798.Google Scholar
Sanders, CR. The animal “other”: self-definition, social identity and companion animals. Adv Consum Res 1990; 17: 662668.Google Scholar
Charles, N. Animals just love you as you are: experiencing kinship across the species barrier. Sociology 2014; 48(4): 715730.Google Scholar
Fletcher, T, Platt, L. (Just) a walk with the dog? Animal geographies and negotiating walking spaces. Soc Cultur Geogr 2018; 19(2): 211229.Google Scholar
Dashper, K. Human–Animal Relationships in Equestrian Sport and Leisure. Abingdon, Routledge; 2017.Google Scholar
Pets as Therapy. About pets as therapy. 2019. https://petsastherapy.org/about-us (accessed March 11, 2019).Google Scholar
Fox, R. Animal behaviours, post-human lives: everyday negotiations of the animal–human divide in pet-keeping. Soc Cultur Geogr 2006; 7(4): 525537.Google Scholar
Arluke, A, Irvine, L. Physical cruelty of companion animals. In: Maher, J Pierpoint, H, Beirne, P, eds., The Palgrave International Handbook of Animal Abuse Studies. London, Palgrave Macmillan; 2017; 3957.Google Scholar

References

LeGates, TA, Fernandez, DC, Hattar, S. Light as a central modulator of circadian rhythms, sleep and affect. Nat Rev Neurosci 2014; 15(7): 443454.Google Scholar
Fisk, AS, Tam, SKE, Brown, LA, et al. Light and cognition: roles for circadian rhythms, sleep, and arousal. Front Neurol 2018; 9: 56.Google Scholar
Tosini, G, Ferguson, I, Tsubota, K. Effects of blue light on the circadian system and eye physiology. Mol Vis 2016; 22: 6172.Google Scholar
Shechter, A, Kim, EW, St-Onge, MP, Westwood, AJ. Blocking nocturnal blue light for insomnia: a randomized controlled trial. J Psychiatr Res 2018; 96: 196202.Google Scholar
Esaki, Y, Kitajima, T, Ito, Y, et al. Wearing blue light-blocking glasses in the evening advances circadian rhythms in the patients with delayed sleep phase disorder: an open-label trial. Chronobiol Int 2016; 33(8): 10371044.Google Scholar
Potter, GDME, Cade, JE, Grant, PJ, Hardie, LJ. Nutrition and the circadian system. Br J Nutr 2016; 116(3): 434442.Google Scholar
Potter, GDME, Skene, DJ, Arendt, J, et al. Circadian rhythm and sleep disruption: causes, metabolic consequences, and countermeasures. Endocr Rev 2016; 37(6): 584608.Google Scholar
Nikitakis, NG, Papaioannou, W, Sakkas, LI, Kousvelari, E. The autoimmunity–oral microbiome connection. Oral Dis 2017; 23(7): 828839.Google Scholar
Collado, MC, Engen, PA, Bandín, C, et al. Timing of food intake impacts daily rhythms of human salivary microbiota: a randomized, crossover study. FASEB J 2018; 32(4): 20602072.Google Scholar
Pot, GK. Sleep and dietary habits in the urban environment: the role of chrono-nutrition. Proc Nutr Soc 2018; 77(3): 189198.Google Scholar
Lopez-Minguez, J, Gómez-Abellán, P, Garaulet, M. Circadian rhythms, food timing and obesity. Proc Nutr Soc 2016; 75(4): 501511.Google Scholar
Gabel, K, Hoddy, KK, Haggerty, N, et al. Effects of 8-hour time restricted feeding on body weight and metabolic disease risk factors in obese adults: a pilot study. Nutr Healthy Aging 2018; 4(4): 345353.Google Scholar
Hutchison, AT, Regmi, P, Manoogian, ENC, et al. Time-restricted feeding improves glucose tolerance in men at risk for type 2 diabetes: a randomized crossover trial. Obesity (Silver Spring) 2019; 27(5): 724732.Google Scholar
Thosar, SS, Butler, MP, Shea, SA. Role of the circadian system in cardiovascular disease J Clin Invest 2018; 128(6): 21572167.Google Scholar
Zohar, AH, Cloninger, CR, McCraty, R. Personality and heart rate variability: exploring pathways from personality to cardiac coherence and health. Open J Soc Sci 2013; 1(6): 3239.Google Scholar
Dunster, C. Treatment of anxiety and stress with biofeedback. Global Adv Health Med 2012; 1(4): 7683.Google Scholar
Nidich, SI, Rainforth, MV, Haaga, DA, et al. A randomized controlled trial on effects of the Transcendental Meditation program on blood pressure, psychological distress, and coping in young adults. Am J Hypertens 2009; 22(12): 13261331.Google Scholar
Iron, MR. Why sleep is important for health: psychoneuroimmunology perspective. Annu Rev Psychol 2015; 66: 143172.Google Scholar
Labrecque, N, Cermakian, N. Circadian clocks in the immune system. J Biol Rhythms 2015; 30(4): 277290.Google Scholar
Spiegel, K, Sheridan, JF, Van Cauter, E. Effect of sleep deprivation on response to immunization. JAMA 2002; 288(12): 14711472.Google Scholar
Besedovsky, L, Lange, T, Born, J. Sleep and immune function. Pflugers Arch 2012; 463(1): 121137.Google Scholar
Roenneberg, T, Merrow, M. The circadian clock and human health. Curr Biol 2016; 26(10): R432-43.Google Scholar
Maukonen, M, Kanerva, N, Partonen, T, et al. The associations between chronotype, a healthy diet and obesity. Chronobiol Int 2016; 33(8): 972981.Google Scholar
Panev, AS, Tserne, TA, Polugrudov, AS, et al. Association of chronotype and social jetlag with human non-verbal intelligence. Chronobiol Int 2017; 34(7): 977980.Google Scholar
Muñoz, JSG, Cañavate, R, Hernández, CM, Cara-Salmerón, V, Morante, JJH. The association among chronotype, timing of food intake and food preferences depends on body mass status. Eur J Clin Nutr 2017; 71(6): 736742.Google Scholar
Vitale, JA, Roveda, E, Montaruli, A, et al. Chronotype influences activity circadian rhythm and sleep: differences in sleep quality between weekdays and weekend. Chronobiol Int 2015; 32(3): 405415.Google Scholar
Juda, M, Vetter, C, Roenneberg, T. Chronotype modulates sleep duration, sleep quality, and social jet lag in shift-workers. J Biol Rhythms 2013; 28(2): 141–51.Google Scholar
Schroeder, AM, Colwell, CS. How to fix a broken clock. Trends Pharmacol Sci 2013; 34(11): 605619.Google Scholar

References

Pike, AW, Hoffmann, DL, Garcia-Diez, M, et al. U-series dating of Paleolithic art in 11 caves in Spain. Science 2012; 336(6087): 14091413.Google Scholar
Samuels, M, Samuels, N. Seeing with the Mind’s Eye: The History, Techniques, and Uses of Visualization. New York, Random House; 1975.Google Scholar
Bednarik, RG, Kumar, G, Watchman, RG, Roberts, A. Preliminary results of the EIP project. 2004. https://ro.uow.edu.au/scipapers/3611 (accessed April 21, 2020).Google Scholar
Sonke-Henderson., J History of the arts and health across cultures. In Sonke-Henderson, J, Brandman, R, Serlin, I, Graham-Pole, J, eds., Whole Person Health Care, Volume 3: The Arts and Health. Westport, CT, Praeger; 2007; 2342.Google Scholar
Dissanayake, E. What Is Art For? Seattle, WA, University of Washington; 1998.Google Scholar
Fancourt, D. Arts in Health: Designing and Researching Interventions. Oxford, Oxford University Press; 2017.Google Scholar
Belfiore, E. The arts and healing: the power of an idea. In: Clift, S, Camic, P, eds., Oxford Text of Creative Arts, Health, and Wellbeing. Oxford, Oxford University Press; 2016; 1117.Google Scholar
Browne, R. Medicina Musica: Or, A Mechanical Essay on the Effects of Singing, Musick, and Dancing, on Human Bodies. Revis’d and Corrected. To which is Annex’d a New Essay on the Nature and Cure of the Spleen and Vapours Vapours. J. Cooke; 1729.Google Scholar
Gouk, P. Raising spirits and restoring souls: early modern medical explanations for music’s effects. Hearing Cultures 2004; 3: 87.Google Scholar
Ouzts, DT. The emergence of bibliotherapy as a discipline. Reading Horizons 1991;31(3): 3.Google Scholar
American Society of Group Psychotherapy and Psychodrama. About. 2014. https://asgpp.org/about-asgpp.php (accessed April 21, 2020).Google Scholar
Junge, M. History of art therapy. In Gussak, D, Rosal, M, eds., The Wiley Handbook of Art Therapy. Chichester, Wiley Blackwell; 2016; 716.Google Scholar
Adachi, T. Medical humanities. In: ten Have, H, ed., Encyclopedia of Global Bioethics. New York, Springer; 2015.Google Scholar
Brandman, R. The development of the contemporary international arts in healthcare field. In: Serline, I, ed., Whole Person Healthcare. Westport, CT, Prager; 2007; 4365.Google Scholar
NOAH (National Organization for Arts in Health). Code of ethics for arts in health professionals and standards of practice for arts in health professionals. https://thenoah.net/wp-content/uploads/2018/10/NOAH-Code-of-Ethics-and-Standards-for-Arts-in-Health-Professionals.pdf (accessed April 21, 2020).Google Scholar
Sonke, J, Lee, JB, Helgemo Rollins, M, et al. Arts in health: considering language from an educational perspective in the United States. Arts Health 2018; 10:2, 151164.Google Scholar
Sonke, J, Rollins, R, Brandman, R, Graham-Pole, J. The state of the arts in healthcare in the United States. Arts Health 2009; 1: 107135.Google Scholar
Sonke, J, Brandman, R. The hospital artist in residence program: narratives of healing. In: Serlin, I, ed., Whole Person Healthcare: The Arts in Health. Westport, CT, Prager; 2007; 6786.Google Scholar
Byrne, E, Elliott, E, Saltus, R, Angharad, J. The creative turn in evidence for public health: community and arts-based methodologies. J Publ Health 2018; 40(suppl. 1): i24i30.Google Scholar
Stanford Center for Bioethics. Other health humanities programs. https://med.stanford.edu/medicineandthemuse/ProgramLinks/OtherPrograms.html (accessed April 21, 2020).Google Scholar
Malchiodi, C. Expressive therapies: history, theory, and practice. In: Malchiodi, C, ed., Expressive Therapies. New York, Guilford Press; 2005.Google Scholar
National Coalition of Creative Arts Therapies Associations. April 2019 About. www.nccata.org/aboutnccata.Google Scholar
Sonke, J, Rollins, J, Graham-Pole, J. Arts in healthcare settings in the United States. In: Oxford Textbook of Creative Arts, Health, and Wellbeing: International Perspectives on Practice, Policy, and Research. Oxford, Oxford University Press; 2016: 113121.Google Scholar
Dileo, C, Bradt, J. On creating the discipline, profession, and evidence in the field of arts and healthcare. Arts Health 2009; 1(2): 168182.Google Scholar
Kaimal, G, Ray, K, Muniz, J. Reduction of cortisol levels and participants’ responses following art making. Art Ther 2016; 33(2): 7480.Google Scholar
Van Lith, T, Spooner, H. Art therapy and arts in health: identifying shared values but different goals using a framework analysis. Art Ther 2018; 35(2): 8893.Google Scholar
Bucciarelli, A. Art therapy: a transdisciplinary approach. Art Ther 2016; 33(3): 151155.Google Scholar
Tyndall, J, Kerrigan, M, Baker Chowdhury, MA, et al. Music in emergent settings: a randomized controlled trial. Ann Emerg Med 2017; 70(4): S167.Google Scholar
Ellison., G Reflective writing: providing a useful tool to medical students. San Francisco Med 2008; July–August: 2627.Google Scholar
McRae, C, Leventhal, D, Westheimer, O, et al. Long-term effects of dance for PD on self-efficacy among persons with Parkinson’s disease. Arts Health 2018; 10(1): 8596.Google Scholar
Berberian, M, Walker, MS, Kaimal, G “Master my demons”: art therapy montage paintings by active-duty military service members with traumatic brain injury and post-traumatic stress. Medical Humanities 2018; 45(4): 353360.Google Scholar
Gramaglia, C, Gambaro, E, Vecchi, C, et al. Outcomes of music therapy interventions in cancer patients: a review of the literature. Crit Rev Oncol Hematol 2019; 138: 251254.Google Scholar
Castora-Binkley, M, Noelker, L, Prohaska, T, Satariano, W. Impact of arts participation on health outcomes for older adults. J Aging Humanities Arts 2010; 4(4): 352367.Google Scholar
Clift, S. Creative arts as a public health resource: moving from practice-based research to evidence-based practice. Perspect Publ Health 2012; 132(3): 120127.Google Scholar
Ünalan, PC, Uzuner, A, Çifçili, S, et al. Using theatre in education in a traditional lecture oriented medical curriculum. BMC Med Educ 2009; 9(1): 73.Google Scholar
Shapiro, J, Hunt, L. All the world’s a stage: the use of theatrical performance in medical education. Med Educ 2003; 37(10): 922927.Google Scholar
Milota, MM, van Thiel, GJ, van Delden, JJ. Narrative medicine as a medical education tool: a systematic review. Med Teacher 2019; 9: 19.Google Scholar
Arntfield, SL, Slesar, K, Dickson, J, Charon, R. Narrative medicine as a means of training medical students toward residency competencies. Patient Educ Couns 2013; 91(3): 280286.Google Scholar
Haidet, P, Jarecke, J, Adams, NE, et al. A guiding framework to maximise the power of the arts in medical education: a systematic review and metasynthesis. Med Educ 2016; 50(3): 320331.Google Scholar
Naghshineh, S, Hafler, JP, Miller, AR, et al. Formal art observation training improves medical students’ visual diagnostic skills. J Gen Intern Med 2008; 23(7): 991997.Google Scholar
Kaimal, G, Jones, J, Dieterich-Hartwell, R, Acharya, B, Wang, X. Evaluation of long-and short-term art therapy interventions in an integrative care setting for military service members with post-traumatic stress and traumatic brain injury. Arts Psychother 2019; 62: 2836.Google Scholar
Kaimal, G, Walker, MS, Herres, J, French, LM, DeGraba, TJ. Observational study of associations between visual imagery and measures of depression, anxiety and post-traumatic stress among active-duty military service members with traumatic brain injury at the Walter Reed National Military Medical Center. BMJ Open 2018; 8(6): e021448.Google Scholar
Maujean, A, Pepping, CA, Kendall, E. A systematic review of randomized controlled studies of art therapy. Art Ther 2014; 31(1): 3744.Google Scholar
Beard, RL. Art therapies and dementia care: a systematic review. Dementia 2012; 11(5): 633656.Google Scholar
Clapp, LA, Taylor, EP, Di Folco, S, Mackinnon, VL. Effectiveness of art therapy with pediatric populations affected by medical health conditions: a systematic review. Arts Health 2018; 4: 19.Google Scholar
Regev, D, Cohen-Yatziv, L. Effectiveness of art therapy with adult clients in 2018: what progress has been made? A systematic review. Front Psychol 2018; 9: 1531.Google Scholar
Wood, MJ, Molassiotis, A, Payne, S. What research evidence is there for the use of art therapy in the management of symptoms in adults with cancer? A systematic review. Psycho‐Oncology 2011; 20(2): 135145.Google Scholar
Thrash, T, Elliot, A. Inspiration as psychological construct. J Pers Soc Psychol 2003; 84(4): 871889.Google Scholar
Klempner, D. Music and art have impact in hospital. 2017, February17. Gainesville Sun. www.gainesville.com/opinion/20170217/dylan-klempner-music-and-art-have-impact-in-hospital (accessed April 21, 2020).Google Scholar
Archer, J, Stevenson, L, Coulter, A, Breen, AM. Connecting patient experience, leadership, and the importance of involvement, information, and empathy in the care process. Healthcare Manage Forum 2018; 31(6): 252255.Google Scholar
Roumie, CL, Greevy, R, Wallston, KA, et al. Patient centered primary care is associated with patient hypertension medication adherence. J Behav Med 2011; 34(4): 244253.Google Scholar
Parkin, S, Swift, J. Utilizing patient hope and outcome expectations to facilitate treatment gains. Med Res Arch 2017; 5(6): 19.Google Scholar
Kortte, K, Stevenson, J, Hosey, R, Castillo, R, Wegener, S. Hope predicts positive functional role outcomes in acute rehabilitation populations. Rehabil Psychol 2012; 57(3): 248255.Google Scholar
Berg, C, Rapoff, M, Snyder, C, Belmont, J. The relationship of children’s hope to pediatric asthma treatment adherence. J Posit Psychol 2007; 2: 176184.Google Scholar
Van Allen, J, Steele, R, Nelson, M. A longitudinal examination of hope and optimism and their role in type 1 diabetes in youths. J Pediatr Psychol 2016; 41: 741749.Google Scholar
Stuckey, HL, Nobel, J. The connection between art, healing, and public health: a review of current literature. Am J Publ Health 2010; 100(2): 254263.Google Scholar
Accreditation Council for Graduate Medical Education (ACGME). Common Program Requirements. www.acgme.org/What-We-Do/Accreditation/Common-Program-Requirements (accessed April 21, 2020).Google Scholar
Association of American Medical Colleges. Contemporary Issues in Medicine: Communication in Medicine. Washington, DC, AAMC; 1999.Google Scholar
Ellison, GK. Reflective writing: providing a useful tool to medical students. San Francisco Med 2008; 81(6).Google Scholar
Mukunda, N, Moghbeli, N, Rizzo, A, et al. Visual art instruction in medical education: a narrative review. Med Educ Online 2019; 24(1). DOI:10.1080/10872981.2018.1558657.Google Scholar
Pennebaker, JW. Telling stories: the health benefits of narrative. Lit Med 2000; 19(1): 318.Google Scholar
Charon, R. Narrative Medicine: Honoring the Stories of Illness. Oxford, Oxford University Press; 2008.Google Scholar
Ellison, GK. Evaluation of the UF College of Medicine reflective writing elective, supported by a grant from the Arnold P. Gold Foundation. Unpublished manuscript.Google Scholar
Gaudet, T, Kligler, B. Whole health in the whole system of the Veterans Administration: how will we know we have reached this future state? J Altern Complement Med 2019; 25(S1): S7S11.Google Scholar
Ghetti, C, Whitehead-Pleaux, A. Sounds of strength: music therapy for hospitalized children at risk for traumatization. In: Malchiodi, C, ed., Creative Interventions with Traumatized Children (2nd ed.) New York, Guilford Press; 2015.Google Scholar
American Art Therapy Association. About art therapy. 2017. https://arttherapy.org/about-art-therapy (accessed April 21, 2020).Google Scholar
Anand, SA. Dimensions of art therapy in medical illness. In: Gussak, DE, Rosal, ML, eds., The Wiley Handbook of Art Therapy. New York: Wiley; 2016.Google Scholar
Councill, T. Medical art therapy with children. In: Malchiodi, C, ed. Handbook of Art Therapy. New York, Guildford Press; 2003.Google Scholar
Spooner, H, Lee, JB, Langston, DG, et al. Using distance technology to deliver the creative arts therapies to veterans: case studies in art, dance/movement and music therapy. Arts Psychother 2019; 62: 1218.Google Scholar
Bourne, C, Mackay, CE, Holmes, EA. The neural basis of flashback formation: the impact of viewing trauma. Psychol Med 2012; 43(7): 15211532.Google Scholar
Coleman, K, Macintosh, HB. Art and evidence: balancing the discussion on arts- and evidence- based practices with traumatized children. Journ Child Adol Trauma 2015; 8(21). DOI:10.1007/s40653-015-0036.Google Scholar
Reynolds, F. Art therapy after stroke: evidence and a need for further research. Arts Psychother 2012; 39(4): 239244.Google Scholar

References

Student Health and Counseling Services. What is wellness? 2019. https://shcs.ucdavis.edu/wellness/what-is-wellness (accessed April 21, 2020).Google Scholar
World Health Organization. Constitution of the World Health Organization. Am J Publ Health 1946; 36(11): 13151323.Google Scholar
Herz, R. Birth of a neurogastronomy nation: the inaugural symposium of the International Society of Neurogastronomy. Chem Senses 2015; 41: 101103.Google Scholar
Bushdid, C, Magnasco, M, Vosshall, L, Keller, A. Humans can discriminate more than 1 trillion olfactory stimuli. Science 2014; 343(6177): 13701372.Google Scholar
Caves, E, Brandley, N, Johnsen, S. Visual acuity and the evolution of signals. Trends Ecol Evol 2018; 33(5): 358372.Google Scholar
Science Daily. Humans have more distinctive hearing than animals, study shows. 2008. www.sciencedaily.com/releases/2008/04/080401095216.htm (accessed April 21, 2020).Google Scholar
Schaefer, H. Music-evoked emotions: current studies. Front Neurosci 2017; 11: 600.Google Scholar
Stack, S, Krysinska, K, Lester., D Gloomy Sunday: did the “Hungarian Suicide Song” really create a suicide epidemic?. OMEGA J Death Dying 2008; 56(4): 349358.Google Scholar
Takada, H, Aso, K, Watanabe, K, et al. Epileptic seizures induced by animated cartoon, “pocket monster.Epilepsia 1999; 40(7): 9971002.Google Scholar
Yang, X, Fu, Y, Zhan, Q, et al. Clinical features of patients with game-induced seizures in the Chinese population. Seizure 2016; 41: 5155.Google Scholar
Correll, MDC, Stetka, MDB, Harsinay, MDA. Rare and unusual psychiatric syndromes: a primer. 2018. www.medscape.com/viewarticle/899520 (accessed April 21, 2020).Google Scholar
Bamforth, I. Stendhal’s syndrome. Br J Gen Pract 2010; 60(581): 945946.Google Scholar
Bijland, L, Bomers, M, Smulders, Y. Smelling the diagnosis: a review on the use of scent in diagnosing disease. Netherlands J Med 2013; 71(6); 300308.Google Scholar
Reed, DR, Knaapila, A. Genetics of taste and smell: poisons and pleasures. Prog Mol Bio Transl Sci 2012; 94; 213240.Google Scholar
Kumbargere Nagraj, S, Naresh, S, Srinivas, K, et al. Interventions for the management of taste disturbances. Cochrane Database Syst Rev 2014; 12: CD010470.Google Scholar
Silva, C, Dias, V, Almeida, J, et al. Effect of heavy consumption of alcoholic beverages on the perception of sweet and salty taste. Alcohol Alcoholism 2015; 51(3): 302306.Google Scholar
Glennon, S, Huedo-Medina, T, Rawal, S, et al. Chronic cigarette smoking associates directly and indirectly with self-reported olfactory alterations: analysis of the 2011–2014 National Health and Nutrition Examination Survey. Nicotine Tob Res 2017; 21: 818827.Google Scholar
Herz, R. The role of odor-evoked memory in psychological and physiological health. Brain Sci 2016; 6(3): 22.Google Scholar
Koo, M. A bibliometric analysis of two decades of aromatherapy research. BMC Res Notes 2017; 10(1): 19.Google Scholar
Pekala, K, Chandra, R, Turner, J. Efficacy of olfactory training in patients with olfactory loss: a systematic review and meta-analysis. Int Forum Allerg Rhinol 2015; 6(3): 299307.Google Scholar
Dai, Q, Pang, Z, Yu, H. Recovery of olfactory function in postviral olfactory dysfunction patients after acupuncture treatment. Evidence-Based Complement Altern Med 2016; 2016: 16.Google Scholar
Henkin, RM, Schecter, P, Friedewald, W, Demets, D, Raff, M. A double blind study of the effects of zinc sulfate on taste and smell dysfunction. Am J Med Sci 1976; 272(3): 285299.Google Scholar
Welge-Lüssen, A. Re-establishment of olfactory and taste functions. GMS Curr Top Otorhinolaryngol Head Neck Surg 2005; 4: Doc06.Google Scholar
Maurage, P, Rombaux, P, de Timary, P. Olfaction in alcohol dependence: a neglected yet promising research field. Front Psychol 2014; 4: 1007.Google Scholar
Katotomichelakis, M, Balatsouras, D, Tripsianis, G, et al. The effect of smoking on the olfactory function. Rhinology 2007; 45(4): 273280.Google Scholar
Mizera, L, Gossrau, G, Hummel, T, Haehner, A. Effects of analgesics on olfactory function and the perception of intranasal trigeminal stimuli. Eur J Pain 2016; 21(1): 92100.Google Scholar
Schubert, C, Cruickshanks, K, Nondahl, D, et al. Association of exercise with lower long-term risk of olfactory impairment in older adults. JAMA Otolaryngol Head Neck Surg 2013; 139(10): 1061.Google Scholar
Rosenfeldt, A, Dey, T, Alberts, J. Aerobic exercise preserves olfaction function in individuals with Parkinson’s disease. Parkinson’s Dis 2016; 2016: 16.Google Scholar
Sells, S, Fixott, R. Evaluation of research on effects of visual training on visual functions. Am J Ophthalmol 1957; 44(2): 230236.Google Scholar
Sehic, A, Guo, S, Cho, K, et al. Electrical stimulation as a means for improving vision. Am J Pathol 2016; 186(11): 27832797.Google Scholar
Behrens, J, Kraft, A, Irlbacher, K, et al. Long-lasting enhancement of visual perception with repetitive noninvasive transcranial direct current stimulation. Front Cell Neurosci 2017; 11(238): 110.Google Scholar
Maurice, P, Ron, K. Transcranial magnetic stimulation of the visual cortex in congenital blindness. Front Neurosci 2016; 10(13).Google Scholar
Mulckhuyse, M, Kelley, T, Theeuwes, J, Walsh, V, Lavie, N. Enhanced visual perception with occipital transcranial magnetic stimulation. Eur J Neurosci 2011; 34(8): 13201325.Google Scholar
Voelker, R. Gene therapy for vision loss. JAMA 2018; 319(5): 434.Google Scholar
Wang, S, Cunnusamy, K. Traditional Chinese medicine (TCM) for the treatment of age-related macular degeneration – evaluation of WO2012079419. Expert Opin Ther Pat 2013; 3(2): 269272.Google Scholar
Yang, Y, Ma, Q, Yang, Y, et al. Evidence-based practice guideline of Chinese herbal medicine for primary open-angle glaucoma (qingfeng-neizhang). Medicine 2018; 97(13): e0126.Google Scholar
Blechschmidt, T, Krumsiek, M, Todorova, M. The effect of acupuncture on visual function in patients with congenital and acquired nystagmus. Medicines 2017; 4(2): 33.Google Scholar
Kim, B, Kim, M, Kang, S, Nam, H. Optimizing acupuncture treatment for dry eye syndrome: a systematic review. BMC Complement Altern Med 2018; 18(1): 145.Google Scholar
Gilmartin, B, Gray, L, Winni, B. The amelioration of myopia using biofeedback of accommodation: a review. Ophthalmic Physiol Opt 1991; 11(4): 304313.Google Scholar
Legge, GE. Reading digital with low vision. Visible Lang 2016; 50(2): 102125.Google Scholar
Bowers, A. Community-based trial of a peripheral prism visual field expansion device for hemianopia. Arch Ophthalmol 2008; 126(5): 657.Google Scholar
Bloch, E, Luo, Y, da Cruz, L. Advances in retinal prosthesis systems. Ther Adv Ophthalmol 2019; 11: 251584141881750.Google Scholar
Richer, S, Newman, S. Diet & nutrition. 2019 www.aoa.org/patients-and-public/caring-for-your-vision/diet-and-nutrition (accessed April 21, 2020).Google Scholar
Bates, W. Perfect Sight Without Glasses. The Central Fixation Publishing Company; 1920.Google Scholar
Kim, S. Effects of yogic eye exercises on eye fatigue in undergraduate nursing students. J Phys Ther Sci 2016; 28(6): 18131815.Google Scholar
Bansal, C. Comparative study on the effect of Saptamrita Lauha and Yoga therapy in myopia. AYU 2014; 35(1): 22.Google Scholar
NIDCD. Assistive devices for people with hearing, voice, speech, or language disorders. 2011. www.nidcd.nih.gov/health/assistive-devices-people-hearing-voice-speech-or-language-disorders (accessed April 21, 2020).Google Scholar
Mayo Clinic. Tinnitus: diagnosis and treatment. 2019. www.mayoclinic.org/diseases-conditions/tinnitus/diagnosis-treatment/drc-20350162 (accessed April 21, 2020).Google Scholar
Columbia University Irving Medical Center. World’s first gene therapy trial for hearing loss. www.entcolumbia.org/world-s-first-gene-therapy-trial-hearing-loss (accessed April 21, 2020).Google Scholar
Zhao, ZQ, Lei, GX, Li, YL, et al. Neurofeedback therapy in the treatment of tinnitus. Lin Chuang er bi yan hou tou hing wai ke za zhi [Journal of Clinical Otorhinolaryngology, Head, and Neck Surgery] 2018; 32(3): 233236.Google Scholar
Castañeda, R, Natarajan, S, Jeong, S, Hong, B, Kang, T. Traditional oriental medicine for sensorineural hearing loss: can ethnopharmacology contribute to potential drug discovery? J Ethnopharmacol 2019; 231: 409428.Google Scholar
Puga, A, Pajares, M, Varela-Moreiras, G, Partearroyo, T. Interplay between nutrition and hearing loss: state of art. Nutrients 2018; 11(1): 35.Google Scholar
Auld, M, Russo, R, Moseley, G, Johnston, L. Determination of interventions for upper extremity tactile impairment in children with cerebral palsy: a systematic review. Dev Med Child Neurol 2014; 56(9): 815832.Google Scholar
de Lafuente, V. Regaining the senses of touch and movement. eLife 2018; 7: e32904.Google Scholar

References

Boyatzis, R. The Competent Manager: A Model for Effective Performance. New York, Wiley; 1982.Google Scholar
Spencer, L, Spencer, S. Competence at Work. New York, Wiley; 1993.Google Scholar
Goleman, D. What makes a leader? Harvard Business Review. 1998.Google Scholar
Goleman, D. Emotional Intelligence. New York, Bantam Books; 1995.Google Scholar
Mayer, JD, Caruso, D, Salovey, P. Emotional intelligence meets traditional standards for intelligence. Intelligence 2000; 27: 267298.Google Scholar
Taylor, GJ, Parker, JD, Bagby, RM. Emotional intelligence and the emotional brain: points of convergence and implications for psychoanalysis. J Am Acad Psychoanal 1999; 27: 339354.Google Scholar
Ambady, N, LaPlante, M Nguyen, D, et al. Surgeons’ tone of voice: a clue to malpractice history. Surgery 2002; 132: 59.Google Scholar
Gladwell, M. The Tipping Point: How Little Things Can Make a Big Difference. New York, Little Brown and Company; 2002.Google Scholar
Seligman, M. Flourish: A Visionary New Understanding of Happiness and Well-Being. New York, Simon and Schuster; 2011.Google Scholar
Maren, S, Quirk, GJ. Neuronal signaling of fear memory. Nat Rev Neurosci 2004; 5: 844852.Google Scholar
Lenroot, RK, Giedd, JN. Brain development in children and adolescents: insights from anatomical magnetic resonance imaging. Neurosci Biobehav Rev 2006; 30: 718729.Google Scholar
Liston, C, Watts, R, Tottenham, N, et al. Frontostriatal microstructure modulates efficient recruitment of cognitive control. Cereb Cortex 2006; 16: 553560.Google Scholar
Kreifelts, B, Ethofer, T, Huberle, E, Grodd, W, Wildgruber, D. Association of trait emotional intelligence and individual fMRI-activation patterns during the perception of social signals from voice and face. Hum Brain Mapp 2010; 31: 979991.Google Scholar
Schwartz, JM, Begley, S. The Mind and the Brain: Neuroplasticity and the Power of Mental Force. New York, Regan Books/Harper Collins Publishers; 2002.Google Scholar
Cisler, JM, James, GA, Tripath, S, et al. Differential functional connectivity within and emotion regulation neural network among individuals resilient and susceptible to the depressogenic effects of early life stress. Psychological Med 2013; 43: 507518.Google Scholar
Schindler, BA, Novack, DH, Cohen, DG et al. The impact of the changing health care environment on the health and well-being of faculty at four medical schools. Acad Med 2006; 81: 2734.Google Scholar
Chew, BH, Zain, AM, Hassan, F. Emotional intelligence and academic performance in first and final year medical students: a cross-sectional study. BMC Med Educ 2013; 13: 4450.Google Scholar
Artino, AR, LaRochelle, JS, Durning, SJ. Second year medical students’ motivational beliefs, emotions, and achievement. Med Educ 2010; 13: 12031212.Google Scholar
Papadakis, MA, Teherani, A, Banach, MA, et al. Disciplinary action by medical boards and prior behavior in medical school. NEJM 2005; 353: 26732682.Google Scholar
Beauvais, AM, Stewart, JG, Denisco, S, Beauvais, JE. Factors related to academic success among nursing students: a descriptive correlational research study. Nursing Educ Today. DOI:10.1016/j.nedt.2013.12.005.Google Scholar
Stanton, C, Sethi, FN, Dale, O, et al. Comparison of emotional intelligence between psychiatrists and surgeons. Psychiatrist 2011; 35: 125129.Google Scholar
Bennis, WG, Thomas, RJ. Crucibles of leadership. Harvard Business Review 2002: 3945.Google Scholar
Lee, TH, Duckworth, AL. Organizational grit. Harvard Business Review September/October 2018: 99105.Google Scholar
McChrystal, S. Team of Teams: New Rules of Engagement for a Complex World. New York, Penguin Publishing; 2015.Google Scholar
Bradberry, T, Greaves, J. Emotional Intelligence 2.0. San Diego, CA, Talent Smart Press; 2009.Google Scholar
Thomas, KW, Kilmann, RH. Thomas–Kilmann Conflict Mode Instrument.Mountain View, CA, Xicom, a subsidiary of CPP, Inc; 1974.Google Scholar
Peiperl, MA. Getting 360 degree feedback right. Harvard Business Review 2001; 79: 142147.Google Scholar
Souba, WW. The inward journey of leadership. J Surg Research 2006; 131: 159167.Google Scholar
Grant, H. To succeed, forget self-esteem. 2012, September 20. https://hbr.org/2012/09/to-succeed-forget-self-esteem. (accessed April 21, 2020)Google Scholar
Neff, KD, Rude, SS, Kirkpatrick, K. An examination of self-compassion in relationship to positive psychological functioning and personality traits. J Res Pers 2007; 4: 908916.Google Scholar
Taylor, P, Funk, C, Craighill, P. Are We Happy Yet? Washington, DC, Pew Research Center; 2006.Google Scholar
Csikszentmihalyi, M. Flow: The Psychology of Optimal Experience. New York, Harper & Row; 1990.Google Scholar

References

Isen, AM. Positive affect, cognitive processes, and social behavior. Adv Exp Soc Psychol 1987; 20: 203253.Google Scholar
Isen, AM. Positive affect and decision making. In: Lewis, M, Haviland-Jones, JM, eds., Handbook of Emotions (2nd ed.) New York, Guilford Press; 2000; 417435.Google Scholar
Isen, AM. Positive affect, systematic cognitive processing, and behavior: toward integration of affect, cognition, and motivation. In: Dansereau, F, Yammarino, FJ, eds., Multi-Level Issues in Organizational Behavior and Strategy. Bingley, Emerald International Publishing; 2003; 5562.Google Scholar
Ashby, FG, Isen, AM, Turken, AU. A neuropsychological theory of positive affect and its influence on cognition. Psychol Rev 1999; 106(3): 529550.Google Scholar
Isen, AM. Positive affect as a source of human strength. In: Staudinger, UM, Aspinwall, LG, eds., A Psychology of Human Strengths: Fundamental Questions and Future Directions for a Positive Psychology. Washington, DC, American Psychological Association; 2003; 179195.Google Scholar
Fredrickson, BL. What good are positive emotions? Rev Gen Psychol 1998; 2(3): 300319.Google Scholar
Fredrickson, BL. The role of positive emotions in positive psychology: the broaden-and-build theory of positive emotions. Am Psychol 2001; 56(3): 218226.Google Scholar
Snyder, CR, López, SJ. Handbook of Positive Psychology. New York, Oxford University Press; 2002.Google Scholar
Seligman, MEP, Csikszentmihalyi, M. Positive psychology: an introduction. Am Psychol 2000; 55(1): 514.Google Scholar
Seligman, MEP, Rashid, T, Parks, AC. Positive psychotherapy. Am Psychol 2006; 61(8): 774788.Google Scholar
Rashid, T, Seligman, MEP. Positive Psychotherapy: Clinician Manual. New York, Oxford University Press; 2018.Google Scholar
Frisch, MB. Quality of Life Therapy. Hoboken, NJ, Wiley; 2006.Google Scholar
Parks, AC, Schueller, S, eds. The Wiley Blackwell Handbook of Positive Psychological Interventions. Oxford, Wiley; 2014.Google Scholar
Mooney, KA, Padesky, CA. Applying client creativity to recurrent problems: constructing possibilities and tolerating doubt. J Cogn Psychother 2000; 14(2): 149161.Google Scholar
Padesky, CA, Mooney, KA. Strengths-based cognitive-behavioural therapy: a four-step model to build resilience. Clin Psychol Psychother 2012; 19(4): 283290.Google Scholar
Victor, PP, Teismann, T, Willutzki, U. A pilot evaluation of a strengths-based CBT intervention module with college students. Behav Cogn Psychother 2017; 45(4): 427431.Google Scholar
Fava, GA. Well-Being Therapy: Treatment Manual and Clinical Applications. Basel, Karger; 2016.Google Scholar
Seligman, MEP. Positive psychology: a personal history. Annu Rev Clin Psychol 2018; 15(1): 123.Google Scholar
Peterson, C, Seligman, MEP. Character Strengths and Virtues: A Handbook and Classification. New York, Oxford University Press; 2004.Google Scholar
Sin, NL, Lyubomirsky, S. Enhancing well-being and alleviating depressive symptoms with positive psychology interventions: a practice-friendly meta-analysis. J Clin Psychol 2009; 65(5): 467487.Google Scholar
Bolier, L, Haverman, M, Westerhof, GJ, et al. Positive psychology interventions: a meta-analysis of randomized controlled studies. BMC Publ Health 2013; 13(119): 120.Google Scholar
Walsh, S, Cassidy, M, Priebe, S. The application of positive psychotherapy in mental health care: a systematic review. J Clin Psychol 2017; 73(6): 638651.Google Scholar
Rashid, T. Positive psychotherapy: a strength-based approach. J Posit Psychol 2015; 10(1): 2540.Google Scholar
Frisch, MB. Quality of life therapy. In: Wood, AM, Johnson, J, eds., The Wiley Handbook of Positive Clinical Psychology. Oxford, Wiley; 2016; 409425.Google Scholar
Rodrigue, JR, Baz, MA, Widows, MR, et al. A randomized evaluation of quality-of-life therapy with patients awaiting lung transplantation. Am J Transplant 2005; 5(10): 24252432.Google Scholar
Rodrigue, JR, Mandelbrot, DA, Pavlakis, M. A psychological intervention to improve quality of life and reduce psychological distress in adults awaiting kidney transplantation. Nephrol Dia Transplant 2010; 26(2): 709715.Google Scholar
Serber, ER, Fava, JL, Christon, LM, et al. Positive psychotherapy to improve autonomic function and mood in ICD patients (PAM-ICD): rationale and design of an RCT currently underway. Pacing Clin Electrophysiol 2016; 39(5): 458470.Google Scholar
Grant, GM, Salcedo, V, Hynan, LS, et al. Effectiveness of quality of life therapy for depression. Psychol Rep 1995; 76(3 p. 2): 12031208.Google Scholar
Abedi, MR, Vostanis, P. Evaluation of quality of life therapy for parents of children with obsessive-compulsive disorders in Iran. Eur Child Adolesc Psychiatry 2010; 19(7): 605613.Google Scholar
Rodrigue, JR, Widows, MR, Baz, MA. Caregivers of lung transplant candidates: do they benefit when the patient is receiving psychological services? Prog Transplant 2006; 16(4): 336342.Google Scholar
Guidi, J, Rafanelli, C, Fava, GA. The clinical role of well-being therapy. Nord J Psychiatry 2018; 72(6): 447453.Google Scholar
Fava, GA. Well-being therapy. In: Wood, AM, Johnson, J, eds., The Wiley Handbook of Positive Clinical Psychology. Oxford, Wiley; 2016; 409425.Google Scholar
Jahoda, M. Current Concepts of Positive Mental Health. New York, Basic Books; 1958.Google Scholar
Ryff, CD. Psychological well-being revisited: advances in the science and practice of eudaimonia. Psychother Psychosom 2014, 83(1): 1028.Google Scholar
Fava, GA, Bech, P. The concept of euthymia. Psychother Psychosom 2015; 85(1): 15.Google Scholar
Fava, GA, Rafanelli, C, Grandi, S, et al. Prevention of recurrent depression with cognitive behavioral therapy: preliminary findings. Arch Gen Psychiatry; 1998; 55(9): 816820.Google Scholar
Stangier, U, Hilling, C, Heidenreich, T, et al. Maintenance cognitive-behavioral therapy and manualized psychoeducation in the treatment of recurrent depression. Am J Psychiatry 2013; 170(6): 624632.Google Scholar
Kennard, BD, Emslie, GJ, Mayes, TL, et al. Sequential treatment with fluoxetine and relapse-prevention CBT to improve outcomes in pediatric depression. Am J Psychiatry 2014; 171(10): 10831090.Google Scholar
Moeenizadeh, M, Salagame, KKK. The impact of well-being therapy on symptoms of depression. Int J Psychol Stud 2010; 2(2): 223230.Google Scholar
Fava, GA, Ruini, C, Rafanelli, C, et al. Well-being therapy of generalized anxiety disorder. Psychother Psychosom 2005; 74(1): 2630.Google Scholar
Fava, GA, Rafanelli, C, Tomba, E, et al. The sequential combination of cognitive behavioral treatment and well-being therapy in cyclothymic disorder. Psychother Psychosom 2011; 80(3): 136143.Google Scholar
Fava, GA, Rafanelli, C, Cazzaro, M et al. Well-being therapy: a novel psychotherapeutic approach for residual symptoms of affective disorders. Psychol Med 1998; 28(2): 475480.Google Scholar
Ruini, C, Ottolini, F, Tomba, E, et al. School intervention for promoting psychological well-being in adolescence. J Behav Ther Exp Psychiatry 2009; 40(4): 522532.Google Scholar
Ruini, C, Belaise, C, Brombin, C, et al. Well-being therapy in school settings. Psychother Psychosom 2006; 75(6): 331336.Google Scholar
Tomba, E, Belaise, C, Ottolini, F, et al. Differential effects of well-being promoting and anxiety-management strategies in a non-clinical school setting. J Anxiety Disord 2010; 24(3): 326–324.Google Scholar
Engel, GL. A unified concept of health and disease. Perspect Biol Med 1960; 3: 459485.Google Scholar
Fava, GA, Carrozzino, D, Lindberg, L, et al. The clinimetric approach to psychological assessment: a tribute to Per Bech, MD (1942–2018). Psychother Psychosom 2018; 87(6): 321326.Google Scholar

References

Norris, FH, Sloane, LB. The epidemiology of trauma and PTSD. In: Friedman, MJ, Keane, TM, Resick, PA, eds., Handbook of PTSD. New York, Guilford Press; 2007; 7898.Google Scholar
Cretney, R. Resilience for whom? Emerging critical geographies of socio-ecological resilience. Geogr Compass 2014; 8 (9); 627640.Google Scholar
American Psychological Association. Help center. www.apa.org/helpcenter/road-resilience (accessed June 21, 2019).Google Scholar
Southwick, SM, Litz, B, Charney, DS, Friedman, MJ, eds., Resilience and Mental Health: Challenges Across the Lifespan. Cambridge, Cambridge University Press; 2011.Google Scholar
Wulff, K, Donato, D, Lurie, N, et al. What is health resilience and how can we build it?. Annu Rev Publ Health 2015; 36: 361374.Google Scholar
Russo, SJ, Murrough, JW, Han, MH, Charney, DS, Nestler, EJ. Neurobiology of resilience. Nat Neurosci 2012; 15: 14751484.Google Scholar
Elbau, IG, Cruceanu, C, Binder, EB. Genetics of resilience: gene-by-environment interaction studies as a tool to dissect mechanisms of resilience. Biol Psychiatry 2019. DOI:10.1016/j.biopsych.2019.04.025.Google Scholar
Assary, E, Vincent, JP, Keers, R, Pluess, M. Gene–enviroment interaction and psychiatric disorders: review and future directions. Semin Cell Dev Biol 2018; 77: 133143.Google Scholar
Halldorsdottir, T, Binder, EB. Gene × enviroment interactions: from molecular mechanisms to behavior. Annu Rev Psychol 2017; 68: 215241.Google Scholar
Feder, A, Nestler, EJ, Charney, D. Psychobiology and molecular genetics of resilience. Nature Rev 2009; 10: 446466.Google Scholar
Southwick, SM, Charney, DS. Resilience: The Science of Mastering Life’s Greatest Challenges. Cambridge, Cambridge University Press; 2012.Google Scholar
Cramer, SC, Sur, M, Dobkin, BH, et al. Harnessing neuroplasticity for clinical applications. Brain 2011; 134(6): 15911601.Google Scholar
Arnsten, AFT. Stress signaling pathways that impair prefrontal cortex structure and function. Nature 2009; 10: 410422.Google Scholar
Rozanski, A, Blumenthal, JA, Kaplan, J. Impact of psychological factors on the pathogenesis of cardiovascular disease and implications for therapy. Circulation 1999; 99: 21922217.Google Scholar
Bandura, A. Social Learning Theory. Englewood Cliffs, NJ, Prentice-Hall; 1977.Google Scholar
Pascual-Leone, A. The brain that plays music and is changed by it. Ann NY Acad Sci 2001; 930: 315329.Google Scholar
White, J. I Will Not be Broken: Five Steps to Overcoming a Life Crisis. New York, St. Martin’s Press; 2008.Google Scholar
Windle, G, Bennett, KM, Noyes, J. A methodological review of resilience measurement scales. Health Qual Life Outcomes 2011; 9: 8.Google Scholar
MacLeod, S, Musich, S, Hawkins, K, et al. The impact of resilience among older adults. Geriatr Nurs 2016; 37: 266272.Google Scholar
Cadell, S, Karabanow, J, Sanchez, M. Community, empowerment, and resilience: paths to wellness. Can J Community Mental Health 2001; 20(1): 2135.Google Scholar
Strout, KA, Dyer, DJ, Gray, RC, Robnett, RH, Howard, EP. Behavioral interventions in six dimensions of wellness that protect the cognitive health of community-dwelling older adults: a systematic review. J Am Geriatr Soc 2016; 64: 944958.Google Scholar
Rath, T, Harter, J. Wellbeing: The Five Essential Elements. New York, Gallup Press; 2010.Google Scholar
Fullen, MC, Granello, DH. Holistic wellness in older adulthood: group differences based on age and mental health. J Holistic Nurs 2018; 36(4): 395407.Google Scholar
Cosco, TD, Howse, K, Brayne, C. Healthy ageing, resilience and wellbeing. Epidemiol Psychiatr Sci 2017; 26: 579583.Google Scholar
Saeed, S, Quock, R, Lott, J, Kashani, N, Woodall, W. Building resilience for wellness: a faculty development resource. Med Ed Portal 2017; 13: 10629.Google Scholar

References

Damon, W, Menon, J, Bronk, KC. The development of purpose during adolescence. Appl Dev Sci 2003; 7: 119128.Google Scholar
Fishbach, A. The motivational self is more than the sum of its goals. Behav Brain Sci 2014; 37: 143144.Google Scholar
Friedman, R, Leserman, J, Caudill, M, Zuttermeister, PC, Benson, H. An inventory of positive psychological attitudes with potential relevance to health outcomes: validation and preliminary testing. Behav Med 1991; 17: 121129.Google Scholar
Steger, MF, Frazier, P. Meaning in life: one link in the chain from religiousness to well-being. J Couns Psychol 2005; 52(4): 574582.Google Scholar
Bronk, KC, Hill, P, Lapsley, D, Talib, T, Finch, WH. Purpose, hope and life satisfaction in three age groups. J Posit Psychol 2009; 4: 500510.Google Scholar
Bigler, M, Neimeyer, GJ, Brown, E. The divided self revisited: effects of self-concept clarity and self-concept differentiation on psychological adjustment. J Soc Clin Psychol 2001; 20: 396415.Google Scholar
Bronk, K. C., Hill, P., Lapsley, D., Talib, T., & Finch, W. H. (2009). Purpose, hope, and life satisfaction in three age groups. Journal of Positive Psychology 4(6),500510. well-being. Journal of Counseling Psychology, 52, 574.Google Scholar
Harlow, LL, Newcomb, MD, Bentler, PM. Depression, self-derogation, substance use, and suicide ideation: lack of purpose in life as a mediational factor. J Clin Psychol 1986; 42: 521.Google Scholar
Nicholson, T, Higgins, W, Turner, P, et al. The relation between meaning in life and occurrence of drug abuse: a retrospective study. Psychol Addict Behav 1994; 8: 2428.Google Scholar
Roos, CR, Kirouac, M, Pearson, MR, Fink, BC, Witkiewitz, K. Examining temptation to drink from an existential perspective: associations among temptation, purpose in life, and drinking outcomes. Psychol Addict Behav 2015; 29: 716724.Google Scholar
Bronk, KC. Purpose in Life: A Component of Optimal Youth Development. New York, Springer; 2013.Google Scholar
Hill, PL, Burrow, AL, Bronk, KC. Persevering with positivity and purpose: an examination of purpose commitment and positive affect as predictors of grit. J Happiness Stud 2014; 17: 257269.Google Scholar
Damon, W. The Path to Purpose: Helping Our Children Find Their Calling in Life. New York, Free Press; 2008.Google Scholar
Hughes, M. Affect, meaning, and quality of life. Social Forces 2006; 85: 611629.Google Scholar
Berg, JM, Wrzesniewski, A, Dutton, JE. Perceiving and responding to challenges in job crafting at different ranks: when proactivity requires adaptivity. J Org Behav 2010; 31: 158186.Google Scholar
Laufer, WS, Laufer, EA, Laufer, LS. Purpose in life and occupational interest in a gerontological sheltered workshop. J Clin Psychol 1981; 37(4): 424426.Google Scholar
Pinquart, M. Creating and maintaining purpose in life in old age: a meta-analysis. Ageing Int 2002; 27(2): 90114.Google Scholar
Ameli, M, Dattilio, FM. Enhancing cognitive behavior therapy with logotherapy: techniques for clinical practice. Psychotherapy 2013; 50(3): 387391.Google Scholar
Frankl, VE. On logotherapy and existential analysis. Am J Psychoanal 1958; 18(1): 2837.Google Scholar
Faramarzi, S, Bavali, F. The effectiveness of group logotherapy to improve psychological well-being of mothers with intellectually disabled children. Int J Dev Disabil 2017; 63(1): 45–41.Google Scholar
Wong, PTP. Towards an integrative model of meaning-centered counselling and therapy. Int Forum Logother 1999; 22(1): 4755.Google Scholar
Wong, PTP. From logotherapy to meaning-centered counseling and therapy. In Wong, PTP, ed., The Human Quest for Meaning: Theories, Research, and Applications (2nd ed.). New York, Routledge; 2012; 619–647.Google Scholar
Wong, PTP. Meaning therapy: assessments and interventions. Existential Analysis 2015; 26(1): 154167.Google Scholar
Snyder, CR: The Psychology of Hope. New York, Free Press; 1994.Google Scholar
Weis, R, Speridakos, E. A Meta-analysis of hope enhancement strategies in clinical and community settings. Psychol Well-Being 2011: 5. DOI:10.1186/2211-1522-1-5.Google Scholar
Vilhauer, J (2014). Think Forward to Thrive: How to Use the Mind’s Power of Anticipation to Transcend Your Past and Transform Your Life. Novato, CA, New World Library.Google Scholar
Vilhauer, J, Young, S, Kealoha, C, et al. Treating major depression by creating positive expectations for the future: a pilot study for the effectiveness of Future Directed Therapy (FDT) on symptom severity and quality of life. CNS Neurosci Ther 2012; 18: 102109.Google Scholar
Vilhauer, J, Cortes, J, Chung, S, et al. Improving quality of life for patients with major depressive disorder by increasing hope and positive expectations with Future Directed Therapy (FDT). Innov Clin Neurosci 2013; 10: 3.Google Scholar

References

Levin, J. What is healing? Reflections on diagnostic criteria, nosology and etiology. 2017. Explore; 13: 244256.Google Scholar
Stuart, B, Danaher, T, Awdish, R, Berry, L. Finding hope and healing when cure is not possible. Mayo Clin Proc 2019: 19: 30039-4.Google Scholar
Saad, M, De Medeiros, R, Mosini, AC. Are we ready for a true biopsychosocial-spiritual model? Medicines (Basel); 2017; 4: e79.Google Scholar
Linton, MJ, Dieppe, P, Medina-Lara, A. Review of 99 self-report measures of assessing well-being in adults: exploring dimensions of well-being and developments over time. BMJ Open 2016; 6: e010641.Google Scholar
Cohen, MH. Healing at the Borderland of Medicine and Religion. Chapel Hill, NC, University of North Carolina Press; 2007.Google Scholar
Goldingay, S, Dieppe, P, Farias, M. And the pain just disappeared into insignificance; the healing response in Lourdes. Int Rev Psychiatry 2014; 26: 315323.Google Scholar
Kaptchuk, TJ. The placebo effect in alternative medicine: can the performance of a healing ritual have clinical significance? Ann Intern Med 2002; 136: 817825.Google Scholar
Greville-Harris, M, Dieppe, P. Bad is more powerful than good: the nocebo response in medical consultations. Am J Med 2015; 128: 126129.Google Scholar
Watson, J. Caring science and human caring theory: transforming personal and professional practices of nursing and health care. J Health Hum Serv Adm 2009; 31: 466482.Google Scholar
Cassell, EJ Nature of Healing: The Modern Practice of Medicine. Oxford, Oxford University Press; 2012.Google Scholar
Churchill, LR, Schenk, D. Healing skills in medical practice. Ann Intern Med 2008; 149: 720724.Google Scholar
Scott, JG, Cohen, D, Dicicco-Bloom, B, et al. Understanding healing relationships in primary care. Ann Fam Med 2008; 6: 315322.Google Scholar
Egnew, TR. The meaning of healing: transcending suffering. Ann Fam Med 2005; 3: 255262.Google Scholar
Warber, SL, Bruyere, RL, Weintrub, K, Dieppe, P. A consideration of the perspectives of healing practitioners on research into energy healing. Global Adv Health Med 2015; 4 (Suppl.): 7278.Google Scholar
Rhatz, E, Bonell, S, Goldingay, S, Warber, S, Dieppe, P. Transformational changes in health status: a qualitative exploration of healing moments. Explore 2017: 13: 298305.Google Scholar
Rahtz, E, Child, S, Knight, S, Warber, S, Dieppe, P. Clients of UK healers: a mixed methods survey of their demography, health problems, and experiences of healing. Complement Ther Clin Pract 2019: 35; 7277.Google Scholar
Dieppe, P, Roe, C. Is healing an option to aid sustainable healthcare futures? J Holistic Healthc 2015; 12(1): 2225.Google Scholar
Roe, CA, Sonnex, C, Roxburgh, EC. Two meta-analyses of noncontact healing studies. Explore 2015; 11: 1123.Google Scholar
Paterson, C, Dieppe, P. Characteristic and incidental (placebo) effects in complex interventions such as acupuncture. BMJ 2005; 330: 12021205.Google Scholar
Kristoffersen, AE, Stub, T, Knudsen-Baas, O, Udal, AH, Musial, F. Self-reported effects of energy healing: a prospective observational study with pre-post design. Explore 2019; 15: 115125.Google Scholar
Warber, SL, Cornello, D, Straughn, J, Kile, G Biofield energy healing from the inside. J Altern Complement Med 2004; 10(6): 11071113.Google Scholar
Scott, JG, Warber, SL, Dieppe, P, Jones, D, Stange, KC. Healing journey: a qualitative analysis of the healing experience of Americans suffering from trauma and illness. BMJ Open 2017; 7: e016771.Google Scholar
Cornelio, D, Warber, S. Social construction of CAM. Mol Interv 2003; 3(4): 182185.Google Scholar
James, W. The Varieties of Religious Experience. New York, Longmans Green and Co., 1922.Google Scholar
Miller, WR. The phenomenon of quantum change. J Clin Psychol 2004; 60: 453460.Google Scholar
Dieppe, P, Roe, C, Warber, S. Caring and healing in health care: the evidence base. Int J Nurs Studies 2015; 52: 15391541.Google Scholar
Rogers, C. Client Centred Therapy. London, Constable and Robinson; 2003.Google Scholar
De Conciliis, AJ. Reciprocal healing in healthcare. Ochner J 2014: 14: 310311.Google Scholar
Radin, D. Real Magic. New York, Harmony Books; 2018.Google Scholar
Schwartz, GE, Woollacott, M, Schwartz, A, et al. The Academy for the Advancement of Post Materialist Sciences: integrating consciousness into mainstream science. Explore 2018; 14: 111113.Google Scholar

References

Seppala, E, Rossomando, T, Doty, JR. Social connection and compassion: important predictors of health and well-being. Social Res 2013; 80(2): 411430.Google Scholar
Leaviss, J, Uttley, L. Psychotherapeutic benefits of compassion-focused therapy: an early systematic review. Psychol Med 2015; 45(5): 927945.Google Scholar
Walsh, R. Lifestyle and mental health. Am Psychol 2011; 66(7): 579592.Google Scholar
Holt-Lunstad, J. Why social relationships are important for physical health: a systems approach to understanding and modifying risk and protection. Annu Rev Psychol 2018; 69: 437458.Google Scholar
Siegel, D. Interpersonal connection, compassion, and well-being. In: Loizzo, J, Neale, M, Wolf, E, eds., Advances in Contemplative Psychotherapy: Accelerating Healing and Transformation. New York, Routledge; 2017; 118130.Google Scholar
Buettner, D. The Blue Zones of Happiness: Lessons from the World’s Happiest People. Washington, DC, National Geographic; 2017.Google Scholar
Marchant, J. Cure: A Journey into the Science of Mind over Body. New York, Crown Publishers; 2016.Google Scholar
Masi, C, Chen, H, Hawkley, L, Cacioppo, J. A meta-analysis of interventions to reduce loneliness. Pers Soc Psychol Rev 2011; 15(3): 219266.Google Scholar
Cookingham, LM, Ryan, GL. The impact of social media on the sexual and social wellness of adolescents. J Pediatr Adolesc Gynecol 2015; 28(1): 25.Google Scholar
Bögels, SM, Emerson, LM. The mindful family: a systemic approach to mindfulness, relational functioning, and somatic and mental health. Curr Opin Psychol 2019; 28: 138142.Google Scholar
Uchino, B. Understanding the links between social support and physical health: a life-span perspective with emphasis on the separability of perceived and received support. Perspect Psychol Sci 2009; 4(3): 236255.Google Scholar
Linehan, M. Cognitive-Behavioral Treatment of Borderline Personality. New York, Guilford Press; 1993.Google Scholar
Shonin, E, Van Gordon, W, Compare, A, Zangeneh, M, Griffiths, MD. Buddhist-derived loving-kindness and compassion meditation for the treatment of psychopathology: a systematic review. Mindfulness 2014; 6(5): 11611180.Google Scholar
Neff, KD, Germer, CK. A pilot study and randomized controlled trial of the mindful self-compassion program. J Clin Psychol 2013; 69: 2844.Google Scholar
Zessin, U, Dickhäuser, O, Garbade, S. The relationship between self-compassion and well-being: a meta-analysis. Appl Psychol Health Well Being 2015; 7(3): 340364.Google Scholar
Sirois, EM, Molnar, DS, Hirsch, JK. Self-compassion, stress, and coping in the context of chronic illness. Self Identity 2015; 14(3): 334347.Google Scholar
Friis, AM, Johnson, MH, Cutfield, RG, Consedine, NS. Kindness matters: a randomized controlled trial of a mindful self-compassion intervention improves depression, distress, and HbA1c among patients with diabetes. Diabetes Care 2016; 39(11): 19631971.Google Scholar
Inwood, E, Ferrari, M. Mechanisms of change in the relationship between self-compassion, emotion regulation, and mental health: a systematic review. Appl Psychol Health Well Being 2018; 10(2): 215235.Google Scholar
Kirby, JN, Tellegen, CL, Steindl, SR. A meta-analysis of compassion-based interventions: current state of knowledge and future directions. Behav Ther 2017; 48(6): 778792.Google Scholar
Eriksson, T, Germundsjö, L, Åström, E, Rönnlund, M. Mindful self-compassion training reduces stress and burnout symptoms among practicing psychologists: a randomized controlled trial of a brief web-based intervention. Front Psychol 2018; 9: 2340.Google Scholar
Gilbert, P, Irons, C. Focused therapies and compassionate mind training for shame and self-attacking. In: Gilbert, P, ed., Compassion: Conceptualisations, Research and Use in Psychotherapy. London, Routledge; 2005; 263–325.Google Scholar
Chodron, P. Awakening Loving-kindness. Boulder, CO, Shambhala Publications; 2017.Google Scholar
Song, Z, Baicker, K. Effect of a workplace wellness program on employee health and economic outcomes: a randomized clinical trial. JAMA 2019; 321(15): 14911501.Google Scholar
Bartlett, L, Martin, A, Neil, AL, et al. A systematic review and meta-analysis of workplace mindfulness training randomized controlled trials. J Occup Health Psychol 2019; 24(1): 108126.Google Scholar
Rinzler, L. The Buddha Walks into the Office: A Guide to Livelihood for a New Generation. Boulder, CO, Shambhala Publications; 2004.Google Scholar
Zhu, X, Smith, RA, Parrott, RL. Living with a rare health condition: the influence of a support community and public stigma on communication, stress, and available support. J Appl Commun Res 2017; 45(2): 179198.Google Scholar

References

World Health Organization. Global Status Report on Noncommunicable Diseases 2014. Washington, DC, World Health Organization; 2014.Google Scholar
Charmaz, K. Experiencing chronic illness. In: Albrecht, GL, Fitzpatrick, R, Scrimshaw, SC, eds., Handbook of Social Studies in Health and Medicine. New York, Sage; 2000; 277292.Google Scholar
Tucker, BP. Deaf culture, cochlear implants, and elective disability. Hastings Center Rep 1998; 28(4): 614.Google Scholar
Gordon, PA, Feldman, D, Crose, R. The meaning of disability: how women with chronic illness view their experiences. J Rehabil 1998; 64(3): 5.Google Scholar
Livneh, H, Antonak, RF. Psychosocial adaptation to chronic illness and disability: a primer for counselors. J Counsel Dev 2005; 83(1): 1220.Google Scholar
Pederson, CL, Gorman-Ezell, K, Hochstetler-Mayer, G. Invisible illness increases risk of suicidal ideation: the role of social workers in preventing suicide. Health Soc Work 2017; 42(3): 183186.Google Scholar
Gignac, MA, Cott, C, Badley, EM. Adaptation to chronic illness and disability and its relationship to perceptions of independence and dependence. J Gerontol B Psychol Sci Soc Sci 2000; 55(6): P362P372.Google Scholar
Baltes, MM, Carstensen, LL. The process of successful ageing. Ageing Soc 1996; 16(4): 397422.Google Scholar
Gureje, O, Von Korff, M, Simon, GE, Gater, R. Persistent pain and well-being: a World Health Organization study in primary care. JAMA 1998; 280(2): 147151.Google Scholar
Howell, RT, Kern, ML, Lyubomirsky, S. Health benefits: meta-analytically determining the impact of well-being on objective health outcomes. Health Psychol Rev 2007; 1(1): 83136.Google Scholar
Dusek, JA, Finch, M, Plotnikoff, G, Knutson, L. The impact of integrative medicine on pain management in a tertiary care hospital. J Patient Safet 2010; 6(1): 4851.Google Scholar
Rybarczyk, B, Gallagher-Thompson, D, Rodman, J, et al. Applying cognitive-behavioral psychotherapy to the chronically ill elderly: treatment issues and case illustration. Int Psychogeriatr 1992; 4(1): 127140.Google Scholar
Imes, SA, Clance, PR, Gailis, AT, Atkeson, E. Mind’s response to the body’s betrayal: Gestalt/existential therapy for clients with chronic or life‐threatening illnesses. J Clin Psychol 2002; 58(11): 13611373.Google Scholar
Fredrickson, BL, Cohn, MA, Coffey, KA, Pek, J, Finkel, SM. Open hearts build lives: positive emotions, induced through loving-kindness meditation, build consequential personal resources. J Pers Soc Psychol 2008; 95(5): 1045.Google Scholar
Richman, LS, Kubzansky, L, Maselko, J, et al. Positive emotion and health: going beyond the negative. Health Psychol 2005; 24(4): 422.Google Scholar
Schussel, L. The Best Self Visualization Method: Clinical Implications and Physiological Correlates. 2018. Doctoral dissertation, Columbia University.Google Scholar
Brennan, KA, Creaven, AM. Living with invisible illness: social support experiences of individuals with systemic lupus erythematosus. Qual Life Res 2016; 25(5): 12271235.Google Scholar
Koenig, HG. Religion, spirituality, and health: The research and clinical implications. ISRN Psychiatry 2012. DOI:10.5402/2012/278730.Google Scholar
Frank, JD. Psychotherapy: the restoration of morale. Am J Psychiatry 1974; 131(3): 271274.Google Scholar
Robinson, S, Kissane, DW, Brooker, J, Burney, S. A systematic review of the demoralization syndrome in individuals with progressive disease and cancer: a decade of research. J Pain Symptom Manage 2015; 49(3): 595610.Google Scholar
Griffith, JL, Gaby, L. Brief psychotherapy at the bedside: countering demoralization from medical illness. Psychosomatics 2005; 46(2): 109116.Google Scholar
Kissane, DW, Clarke, DM, Street, AF. Demoralization syndrome: a relevant psychiatric diagnosis for palliative care. J Palliat Care 2001; 17(1): 12.Google Scholar
Kissane, DW, Bobevski, I, Gaitanis, P, et al. Exploratory examination of the utility of demoralization as a diagnostic specifier for adjustment disorder and major depression. Gen Hospit Psychiatr 2017; 46: 2024.Google Scholar
Beck, AT. Hopelessness as a predictor of eventual suicide. Ann NY Acad Sci 1986; 487(1): 9096.Google Scholar
Fang, CK, Chang, MC, Chen, PJ, et al. A correlational study of suicidal ideation with psychological distress, depression, and demoralization in patients with cancer. Support Care Cancer 2014; 22(12): 31653174.Google Scholar
Chochinov, HM, Kristjanson, LJ, Breitbart, W, et al. Effect of dignity therapy on distress and end-of-life experience in terminally ill patients: a randomised controlled trial. Lancet Oncol 2011; 12(8): 753762.Google Scholar

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