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Section 2 - Newborn and Infant Anesthesia

Published online by Cambridge University Press:  09 February 2018

Mary Ellen McCann
Affiliation:
Harvard Medical School, Boston, MA, USA
Christine Greco
Affiliation:
Harvard Medical School, Boston, MA, USA
Kai Matthes
Affiliation:
Harvard Medical School, Boston, MA, USA
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Print publication year: 2018

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References

References

1.McCann, ME, Schouten, AN. Beyond survival: influences of blood pressure, cerebral perfusion and anesthesia on neurodevelopment. Paediatr Anaesth. 2014;24:6873.Google Scholar
2.Moynihan, R, Kurker, C. The perioperative environment and the pediatric patient. In: Ferrari, LR, editor. Anesthesia and Pain MAnagement for the Pediatrician. Baltimore, MD: Johns Hopkins University Press;1999; 6789.Google Scholar
3.Litman, RS, Berger, AA, Chhibber, A. An evaluation of preoperative anxiety in a population of parents of infants and children undergoing ambulatory surgery. Paediatr Anaesth. 1996;6:443–7.Google Scholar
4.Banchs, RJ, Lerman, J. Preoperative anxiety management, emergence delirium, and postoperative behavior. Anesthesiol Clin. 2014;32:123.Google Scholar
5.Weiser, G, Cohen, D, Krauss, B, Galbraith, R, Shavit, I. Premedication with midazolam for urethral catheterization of febrile infants. Eur J Emerg Med. 2013;21(4):314–18.Google Scholar
6.Wang, SS, Zhang, MZ, Sun, Y, et al. The sedative effects and the attenuation of cardiovascular and arousal responses during anesthesia induction and intubation in pediatric patients: a randomized comparison between two different doses of preoperative intranasal dexmedetomidine. Paediatr Anaesth. 2014;24:275–81.Google Scholar
7.Sun, Y, Lu, Y, Huang, Y, Jiang, H. Is dexmedetomidine superior to midazolam as a premedication in children? A meta-analysis of randomized controlled trials. Paediatr Anaesth. 2014;24(8):863–74.Google Scholar
8.Khatavkar, SS, Bakhshi, RG. Comparison of nasal midazolam with ketamine versus nasal midazolam as a premedication in children. Saudi J Anaesth. 2014;8:1721.Google Scholar
9.Ahmed, A, Ali, M, Khan, M, Khan, F. Perioperative cardiac arrests in children at a university teaching hospital of a developing country over 15 years. Paediatr Anaesth. 2009;19:581–6.Google Scholar
10.Flick, RP, Sprung, J, Harrison, TE, et al. Perioperative cardiac arrests in children between 1988 and 2005 at a tertiary referral center: a study of 92,881 patients. Anesthesiology. 2007;106:226–37; quiz 413–14.Google Scholar
11.Bhananker, SM, Ramamoorthy, C, Geiduschek, JM, et al. Anesthesia-related cardiac arrest in children: update from the Pediatric Perioperative Cardiac Arrest Registry. Anesth Analg. 2007;105:344–50.Google Scholar
12.Jimenez, N, Posner, KL, Cheney, FW, et al. An update on pediatric anesthesia liability: a closed claims analysis. Anesth Analg. 2007;104:147–53.Google Scholar
13.Allen, GD, Ward, RJ, Green, HD, Perrin, EB. Reversal of apnea following artificial ventilation under anesthesia. Anesth Analg. 1967;46:690–7.Google Scholar
14.Cote, CJ, Zaslavsky, A, Downes, JJ, et al. Postoperative apnea in former preterm infants after inguinal herniorrhaphy: a combined analysis. Anesthesiology. 1995;82:809–22.CrossRefGoogle ScholarPubMed
15.Walther-Larsen, S, Rasmussen, LS. The former preterm infant and risk of post-operative apnoea: recommendations for management. Acta Anaesthesiol Scand. 2006;50:888–93.Google Scholar
16.Morray, JP, Posner, K. Pediatric perioperative cardiac arrest: in search of definition(s). Anesthesiology. 2007;106:207–8.Google Scholar
17.Flick, RP, Sprung, J, Harrison, TE, et al. Perioperative cardiac arrests in children between 1988 and 2005 at a tertiary referral center: a study of 92,881 patients. Anesthesiology. 2007;106:226.Google Scholar
18.Skolnick, ET, Vomvolakis, MA, Buck, KA, Mannino, SF, Sun, LS. Exposure to environmental tobacco smoke and the risk of adverse respiratory events in children receiving general anesthesia. Anesthesiology. 1998;88:1144–53.Google Scholar
19.Holberg, CJ, Wright, AL, Martinez, FD, Morgan, WJ, Taussig, LM. Child day care, smoking by caregivers, and lower respiratory tract illness in the first 3 years of life: Group Health Medical Associates. Pediatrics. 1993;91:885–92.Google Scholar
20.Cote, CJ. NPO after midnight for children: a reappraisal. Anesthesiology. 1990;72:589–92.Google Scholar
21.Warner, MA, Warner, ME, Warner, DO, Warner, LO, Warner, EJ. Perioperative pulmonary aspiration in infants and children. Anesthesiology. 1999;90:6671.Google Scholar
22.ASA ATFoPF. Practice guidelines for preoperative fasting and the use of pharmacologic agents to reduce the risk of pulmonary aspiration: application to healthy patients undergoing elective procedures. Anesthesiology. 1999;90:896905.Google Scholar
23.Picciano, MF. Nutrient composition of human milk. Pediatr Clin North Am. 2001;48:5367.Google Scholar
24.Ferrari, LR, Rockoff, MA. Preoperative fasting practices in pediatrics. Anesthesiology. 1999;90:978–80.Google Scholar
25.Short, JA, van der Walt, JH, Zoanetti, DC. Immunization and anesthesia: an international survey. Paediatr Anaesth. 2006;16:514–22.Google Scholar
26.Siebert, JN, Posfay-Barbe, KM, Habre, W, Siegrist, CA. Influence of anesthesia on immune responses and its effect on vaccination in children: review of evidence. Paediatr Anaesth. 2007;17:410–20.Google Scholar
27.Raju, TN. Epidemiology of late preterm (near-term) births. Clin Perinatol. 2006;33:751–63; abstract vii.Google Scholar
28.Raju, TN. The problem of late-preterm (near-term) births: a workshop summary. Pediatr Res. 2006;60:775–6.Google Scholar
29.Tetzlaff, JE, Annand, DW, Pudimat, MA, Nicodemus, HF. Postoperative apnea in a full-term infant. Anesthesiology. 1988;69:426–8.Google Scholar
30.Cote, CJ, Kelly, DH. Postoperative apnea in a full-term infant with a demonstrable respiratory pattern abnormality. Anesthesiology. 1990;72:559–61.Google Scholar
31.Noseworthy, J, Duran, C, Khine, HH. Postoperative apnea in a full-term infant. Anesthesiology. 1989;70:879–80.Google Scholar
32.Kurth, CD, Spitzer, AR, Broennle, AM, Downes, JJ. Postoperative apnea in preterm infants. Anesthesiology. 1987;66:483–8.Google Scholar
33.Steward, DJ. Preterm infants are more prone to complications following minor surgery than are term infants. Anesthesiology. 1982;56:304–6.Google Scholar
34.Liu, LM, Cote, CJ, Goudsouzian, NG, et al. Life-threatening apnea in infants recovering from anesthesia. Anesthesiology. 1983;59:506–10.Google Scholar
35.Welborn, LG, Ramirez, N, Oh, TH, et al. Postanesthetic apnea and periodic breathing in infants. Anesthesiology. 1986;65:658–61.Google Scholar
36.Kurth, CD, LeBard, SE. Association of postoperative apnea, airway obstruction, and hypoxemia in former premature infants. Anesthesiology. 1991;75:22–6.Google Scholar
37.Welborn, LG, Hannallah, RS, Luban, NL, Fink, R, Ruttimann, UE. Anemia and postoperative apnea in former preterm infants. Anesthesiology. 1991;74:1003–6.Google Scholar
38.Lermann, VL, Fortes Filho, JB, Procianoy, RS. The prevalence of retinopathy of prematurity in very low birth weight newborn infants. J Pediatr (Rio J). 2006;82:2732.Google Scholar
39.Sapieha, P, Joyal, JS, Rivera, JC, et al. Retinopathy of prematurity: understanding ischemic retinal vasculopathies at an extreme of life. J Clin Invest. 2010;120:3022–32.Google Scholar
40.Askie, LM, Henderson-Smart, DJ, Ko, H. Restricted versus liberal oxygen exposure for preventing morbidity and mortality in preterm or low birth weight infants. Cochrane Database Syst Rev. 2009;21:CD001077.Google Scholar
41.Levesque, BM, Pollack, P, Griffin, BE, Nielsen, HC. Pulse oximetry: what’s normal in the newborn nursery? Pediatr Pulmonol. 2000;30:406–12.Google Scholar
42.Konduri, GG, Kim, UO. Advances in the diagnosis and management of persistent pulmonary hypertension of the newborn. Pediatr Clin North Am. 2009;56:579600.Google Scholar
43.Guglani, L, Lakshminrusimha, S, Ryan, RM. Transient tachypnea of the newborn. Pediatr Rev. 2008;29:e59–65.Google Scholar
44.Rolf, N, Cote, CJ. Frequency and severity of desaturation events during general anesthesia in children with and without upper respiratory infections. J Clin Anesth. 1992;4:200–3.Google Scholar
45.Tait, AR, Malviya, S, Voepel-Lewis, T, et al. Risk factors for perioperative adverse respiratory events in children with upper respiratory tract infections. Anesthesiology. 2001;95:299306.Google Scholar
46.Rodenstein, DO, Perlmutter, N, Stanescu, DC. Infants are not obligatory nasal breathers. Am Rev Respir Dis. 1985;131:343–7.Google Scholar
47.Cunningham, MJ, Ferrari, LR, Kearse, LA, McPeck, K. Intraoperative somatosensory evoked potential monitoring in achondroplasia. Paediatr Anaesth. 1994;4:129–32.Google Scholar
48.Wilson, W, Taubert, KA, Gewitz, M, et al. Prevention of infective endocarditis: guidelines from the American Heart Association – a guideline from the American Heart Association Rheumatic Fever, Endocarditis, and Kawasaki Disease Committee, Council on Cardiovascular Disease in the Young, and the Council on Clinical Cardiology, Council on Cardiovascular Surgery and Anesthesia, and the Quality of Care and Outcomes Research Interdisciplinary Working Group. Circulation. 2007;116:1736–54.Google Scholar
49.Steward, DJ. Screening tests before surgery in children. Can J Anaesth. 1991;38:693–5.Google Scholar
50.Burk, CD, Miller, L, Handler, SD, Cohen, AR. Preoperative history and coagulation screening in children undergoing tonsillectomy. Pediatrics. 1992;89:691–5.Google Scholar

References

1.Crawford, J, Terry, M, Rourke, G. Simplification of drug dosage calculation by application of the surface area principle. Pediatrics. 1950;5:783–90.Google Scholar
2.Holliday, M, Segar, W. The maintenance need for water in parenteral fluid therapy. Pediatrics. 1957;19:823–32.Google Scholar
3.Anderson, B, Holford, N. Tips and traps analyzing pediatric PK data. Pediatric Anesthesia. 2011;21:222–37.Google Scholar
4.Robiquet, T. Rapport sur un memoire adresse a l’Academie royale de medecine par MM Sarrus et Rameaux. Bull Acad R Med. 1839;3:1094.Google Scholar
5.Brody, S: Bioenergetics and Growth: With Special Reference to the Efficiency Complex. New York: Reinhold Publishing Corporation; 1945.Google Scholar
6.Rigby-Jones, AE, Sneyd, JR. Pharmacokinetics and pharmacodynamics-is there anything new? Anesthesia. 2012;67:111.Google Scholar
7.Anderson, B, Allegaert, K, Holford, N. Population clinical pharmacology of children: modelling covariate effects. Eur J Pediatr. 2006;165:819–29.Google Scholar
8.Edginton, A. Knowledge-driven approaches for the guidance of first-in-children dosing. Pediatric Anesthesia. 2011;21:206–13.Google Scholar
9.Rhodin, M, Anderson, B, Peters, A, et al. Human renal function maturation: a quantitative description using weight and postmenstrual age. Pediatr Nephrol. 2009;24:6776.Google Scholar
10.de Wildt, S, Kearns, G, Leeder, J, van den Anker, J. Cytochrome P450 3A: ontogeny and drug disposition. Clin Pharmacokinet. 1999;37:485505.Google Scholar
11.Cella, M, Knibbe, C, Danhof, M, Pascua, OD. What is the right dose for children? Br J Clin Pharmacol. 2010;70:597603.Google Scholar
12.Kearns, G, Abdel-Rahman, S, Alander, S, et al. Developmental pharmacology: drug disposition, action, and therapy in infants and children. N Engl J Med. 2003;349:1157–67.Google Scholar
13.Marsh, D, Hatch, D, Fitzgerald, M, et al. Opioid systems and the newborn. Br J Anaes. 1997;79:787–95.Google Scholar
14.Klitzner, T, Friedman, W. A diminished role for the sarcoplasmic reticulum in newborn myocardial contraction: effects of ryanodine. Ped Res. 1989;26:98101.Google Scholar
15.Johnson, T, Rostami-Hodjegan, A. Resurgence in the use of physiologically based pharmacokinetic models in pediatric clinical pharmacology: parallel shift in incorporating the knowledge of biological elements and increased applicability to drug development and clinical practice. Paediatr Anesth. 2011;21:291301.Google Scholar
16.Johnson, T, Rostami-Hodjegan, A, Tucker, G. Prediction of the clearance of eleven drugs and associated variability in neonates, infants and children. Clin Pharmacokinet. 2006;45:931–56.Google Scholar
17.Keys, T. The History of Surgical Anesthesia. New York: Dover Publications; 1963.Google Scholar
18.Coté, CJ. Pediatric anesthesia. In: Miller, RD, Eriksson, LI, Fleisher, LA, et al., editors. Miller’s Anesthesia, 7th edn. Philadelphia, PA: Churchill Livingstone; 2010.Google Scholar
19.Vlajkovic, G, Sindjelic, R. Emergence delirium in children: many questions, few answers. Anesth Analg. 2007;4:8491.Google Scholar
20.Friedman, W. The intrinsic physiologic properties of the developing heart. Prog Cardiovasc Dis. 1972;15:87111.Google Scholar
21.Blanco, C, Dawes, G, Hanson, M. Carotid baroreceptors in fetal and newborn sheep. Ped Res. 1988;24:342–6.Google Scholar
22.Friedman, W, George, B. Treatment of congestive heart failure by altering loading conditions of the heart. J Ped. 1985;106:697706.Google Scholar
23.Holden, K, Morgan, J, Krauss, A. Incomplete baroreceptor responses in newborn infants. Amer J Perinat. 1985;2:31–4.Google Scholar
24.Gournay, V, Drouin, E, Rozé, J. Development of baroreflex control of heart rate in preterm and full term infants. Arch Dis Child Fetal Neonatal Ed. 2002;86: F151–4.Google Scholar
25.Patton, D, Hanna, B. Postnatal maturation of baroreflex heart rate control in neonatal swine. Can J Cardiol. 1994;10:233–8.Google Scholar
26.Holzman, R, van der Velde, M, Kaus, S, et al. Sevoflurane depresses myocardial contractility less than halothane during induction of anesthesia in children. Anesthesiology. 1996;85:1260–7.Google Scholar
27.Steur, R, Perez, R, De Lange, J. Dosage scheme for propofol in children under 3 years of age. Paediatr Anaesth. 2004;14:462–7.Google Scholar
28.Jacqz-Aigrain, E, Burtin, P. Clinical pharmacokinetics of sedatives in neonates. Clin Pharmacokinet. 1996;31:423–43.Google Scholar
29.Anderson, B, Allegaert, K. The pharmacology of anaesthetics in the neonate. Best Pract Res Clin Anaesth. 2010;24:419–31.Google Scholar
30.Pacifici, G. Clinical pharmacology of midazolam in neonates and children: effect of disease – a review. Int J Pediatr., 2014. doi: 10.1155/2014/309342.Google Scholar
31.de Wildt, S, Kearns, G, Hop, W, et al. Pharmacokinetics and metabolism of intravenous midazolam in preterm infants. Clin Pharmacol Ther. 2001;70:525–31.Google Scholar
32.Burtin, P, Jacqz-Aigrain, E, Girard, P, et al. Population pharmacokinetics of midazolam in neonates. Clin Pharmacol Ther. 1994;56:615–25.Google Scholar
33.Wermeling, D, Miller, J, Archer, S, Manaligod, J, Rudy, A. Bioavailability and pharmacokinetics of lorazaepam after intranasal, intravenous and intramuscular administration. J Clin Pharmacol. 2001;41:1225–31.Google Scholar
34.McDermott, C, Kowalczyk, A, Schnitzler, E, et al. Pharmacokinetics of lorazepam in critically ill neonates with seizures. J Pediatr. 1992;120:479–83.Google Scholar
35.Chrysostomou, C, Zeballos, T. Use of dexmedetomidine in a pediatric heart transplant patient. Pediatr Cardiol. 2005;26:651–4.Google Scholar
36.Finkel, J, Johnson, Y, Quezado, Z. The use of dexmedetomidine to facilitate acute discontinuation of opioids after cardiac transplantation in children. Crit Care Med. 2005;33:2110–12.Google Scholar
37.Ard, J, Doyle, W, Bekker, A. Awake craniotomy with dexmedetomidine in pediatric patients. J Neurosurg Anesth. 2003;15:263–6.Google Scholar
38.Tobias, J, Berkenbosch, J. Sedation during mechanical ventilation in infants and children: dexmedetomidine versus midazolam. J Neurosurg Anesthesiol. 2003;15:263–6.Google Scholar
39.Berkenbosch, J, Tobias, J. Development of bradycardia during sedation with dexmedetomidine in an infant concurrently receiving digoxin. Pediatr Crit Care Med. 2003;4:203–5.Google Scholar
40.Chrysostomou, C, Schulman, S, Castellanos, M, et al. A phase II/III, multicenter, safety, efficacy, and pharmacokinetic study of dexmedetomidine in preterm and term neonates. J Pediatr. 2014;164:276–82.Google Scholar
41.Potts, A, Warman, G, Anderson, B. Dexmedetomidine disposition in children: a population analysis. Ped Anaesth. 2008;18:722–30.Google Scholar
42.Talke, P, Richardson, C, Scheinin, M, Fisher, D. Postoperative pharmacokinetics and sympatholytic effects of dexmedetomidine. Anesth Analg. 1997;85:1136–42.Google Scholar
43.Talke, P, Chen, R, Thomas, B, et al. The hemodynamic and adrenergic effects of perioperative dexmedetomidine infusion after vascular surgery. Anesth Analg. 2000;90:834–9.Google Scholar
44.Hsu, Y, Cortinez, L, Robertson, K, et al. Dexmedetomidine pharmacodynamics: part I. Anesthesiology. 2004;101:1066–76.Google Scholar
45.Cortinez, L, Hsu, Y, Sum-Ping, S, et al. Dexmedetomidine pharmacodynamics: part II. Anesthesiology. 2004;101:1077–83.Google Scholar
46.Petroz, G, Sikich, N, James, M, et al. A phase I, two-center study of the pharmacokinetics and pharmacodynamics of dexmedetomidine in children. Anesthesiology. 2006;105:1098–110.Google Scholar
47.Berkenbosch, J, Wankum, P, Tobias, J. Prospective evaluation of dexmedetomidine for noninvasive procedural sedation in children. Pedatr Crit Care Med. 2005;6:435–9.Google Scholar
48.Bouwmeester, N, van den Anker, J, Hop, W, Anand, K, Tibboel, D. Age- and therapy-related effects on morphine requirements and plasma concentrations of morphine and its metabolites in postoperative infants. Br J Anaesth. 2003;90:642–52.Google Scholar
49.Bouwmeester, N, Anderson, B, Tibboel, D, Holford, N. Developmental pharmacokinetics of morphine and its metabolites in neonates, infants and young children. Br J Anaesth. 2004;92:208–17.Google Scholar
50.Tegeder, I, Lotsch, J, Geisslinger, G. Pharmacokinetics of opioids in liver disease. Clin Pharmacokinetics. 1999;37:1740.Google Scholar
51.Davis, P, Wilson, A, Siewers, R. The effects of cardiopulmonary bypass on remifentanil kinetics in children undergoing atrial septal defect repair. Anesth Analg. 1999;89:904–8.Google Scholar
52.Ross, A, Davis, P, Dear, G, et al. Pharmacokinetics of remifentanil in anesthetized pediatric patients undergoing elective surgery or diagnostic procedures. Anesth Analg. 2001;93:1393–401.Google Scholar
53.Welzing, L, Roth, B. Experience with remifentanil in neonates and infants. Drugs. 2006;66:1339–50.Google Scholar
54.Greeley, W, de Bruijn, N, Davis, D. Sufentanil pharmacokinetics in pediatric cardiovascular patients. Anesth Analg. 1987;66:1067–72.Google Scholar
55.Lundeberg, S, Roelofse, J. Aspects of pharmacokinetics and pharmacodynamics of sufentanil in pediatric practice. Paediatr Anaesth. 2011;21:274–9.Google Scholar
56.Pokela, M, Ryhanen, P, Koivisto, M, Olkkola, K, Saukkonen, A. Alfentanil-induced rigidity in newborn infants. Anesth Analg. 1992;75:252–7.Google Scholar
57.Anderson, B, van Lingen, R, Hansen, T, Lin, Y, Holford, N. Acetaminophen developmental pharmacokinetics in premature neonates and infants: a pooled population analysis. Anesthesiology. 2002;96:1336–45.Google Scholar
58.Allegaert, K, Naulaers, G, Vanhaesebrouck, S, Anderson, B. The paracetamol concentration-effect relation in neonates. Pediatric Anesthesia. 2013;23:4550.Google Scholar
59.Playfor, S, Jenkins, I, Boyles, C, et al. Consensus guidelines for sustained neuromuscular blockade in critically ill children. Pediatr Anesth. 2007;17:881–7.Google Scholar
60.Martin, L, Bratton, S, O’Rourke, P. Clinical uses and controversies of neuromuscular blocking agents in infants and children. Crit Care Med.. 1999;27:1358–68.Google Scholar
61.Martyn, J, White, D, Gronert, G, Jaffe, R, Ward, J. Up-and-down regulation of skeletal muscle acetylcholine receptors. Anesthesiology. 1992;76:822–43.Google Scholar
62.Meakin, G, McKiernan, E, Morris, P, Baker, R. Dose–reponse curves for suxamethonium in neonates, infants and children. Br J Anaesth. 1989;62:655–8.Google Scholar
63.Hospira Inc. Succinylcholine chloride IV injection [Package insert]. Lake Forest, IL, Hospira, Inc, 2005Google Scholar
64.Goudsouzian, N, Ryan, J, Savarese, J. The neuromuscular effects of pancuronium in infants and children. Anesthesiology. 1974;41:95–8.Google Scholar
65.Meretoja, O, Wirtavuori, K, Neuvonen, P. Age-dependence of the dose–response curve of vecuronium in pediatric patients during balanced anesthesia. Anesth Analg. 1988;67:21–6.Google Scholar
66.Fisher, D, Castagnoli, K, Miller, R. Vecuronium kinetics and dynamics in anesthetized infants and children. Clin Pharmacol Ther. 1985;37:402–6.Google Scholar
67.Foldes, F, Nagashima, H, Nguyen, H, et al. The neuromuscular effects of ORG9426 in patients receiving balanced anesthesia. Anesthesiology. 1991;75:191–6.Google Scholar
68.Woelfel, S, Brandom, B, Cook, D, Sarner, J. Effects of bolus administration of ORG-9426 in children during nitrous oxide–halothane anesthesia. Anesthesiology. 1992;76:939–42.Google Scholar

References

1.Bruce, IA, Rothera, MP. Upper airway obstruction in children. Pediatr Anesth. 2009;19:8899.Google Scholar
2.Stocks, J. Respiratory physiology during early life. Monaldi Arch Chest Dis. 1999;54:358–64.Google Scholar
3.Hammer, J, Eber, E. The peculiarities of infant respiratory physiology. In Hammer, J, Eber, E, editors, Paediatric Pulmonary Function Testing. Basel: Karger Books; 2005.Google Scholar
4.Mortensen, A, Lenz, K, Abildstrom, H, Lauritsen, TL. Anesthetizing the obese child. Paediatr Anaesth. 2011;21:623–9.Google Scholar
5.Harless, JRR, Bhananker, SM. Pediatric airway management. Int J Crit Illn Inj Sci. 2014;4:6570.Google Scholar
6.Adewale, L. Anatomy and assessment of the pediatric airway. Paediatr Anaesth. 2009;19(Suppl 1):18.Google Scholar
7.Sims, C, von Ungern-Sternberg, BS. The normal and the challenging pediatric airway. Paediatr Anaesth. 2012;22:521–6.Google Scholar
8.Carr, RJ, Beebe, DS, Belani, KG. The difficult pediatric airway. In Seminars in Anesthesia, Perioperative Medicine and Pain. New York: Elsevier; 2001; 219–27.Google Scholar
9.Abramson, Z, Susarla, S, Troulis, M, Kaban, L. Age-related changes of the upper airway assessed by 3-dimensional computed tomography. J Craniofac Surg. 2009;20(Suppl 1):657–63.Google Scholar
10.Dalal, PG, Murray, D, Messner, AH, et al. Pediatric laryngeal dimensions: an age-based analysis. Anesth Analg. 2009;108:1475–9.Google Scholar
11.Dalal, PGMD, Feng, A, Molter, D, McAllister, J. Upper airway dimensions in children using rigid videobronchoscopy and a computer software: description of a measurement technique. Pediatr Anesth. 2008;18:645–53.Google Scholar
12.Hudgins, PA, Siegel, J, Jacobs, I, Abramowsky, CR. The normal pediatric larynx on CT and MR. AJNR Am J Neuroradiol. 1997;18:239–45.Google Scholar
13.Litman, RS, McDonough, JM, Marcus, CL, Schwartz, AR, Ward, DS. Upper airway collapsibility in anesthetized children. Anesth Analg. 2006;102:750–4.Google Scholar
14.Litman, RS, Weissend, EE, Shibata, D, Westesson, PL. Developmental changes of laryngeal dimensions in unparalyzed, sedated children. Anesthesiology. 2003;98:41–5.Google Scholar
15.Brambrink, AM, Braun, U. Airway management in infants and children. Best Pract Res Clin Anaesthesiol. 2005;19:675–97.Google Scholar
16.Neuhaus, D, Schmitz, A, Gerber, A, Weiss, M. Controlled rapid sequence induction and intubation: an analysis of 1001 children. Paediatr Anaesth. 2013;23:734–40.Google Scholar
17.Gencorelli, FJ, Fields, RG, Litman, RS. Complications during rapid sequence induction of general anesthesia in children: a benchmark study. Paediatr Anaesth. 2010;20:421–4.Google Scholar
18.Chua, C, Schmölzer, GM, Davis, PG. Airway manoeuvres to achieve upper airway patency during mask ventilation in newborn infants: an historical perspective. Resuscitation. 2012;83:411–16.Google Scholar
19.Hagberg, C, Georgi, R, Krier, C. Complications of managing the airway. Best Pract Res Clin Anaesthesiol. 2005;19:641–59.Google Scholar
20.Ris, HB, Krueger, T. Video-assisted thoracoscopic surgery and open decortication for pleural empyema. Multimed Man Cardiothorac Surg. 2006. doi: mmcts.2004.000273Google Scholar
21.Campos, JH. Progress in lung separation. Thorac Surg Clin. 2005;15:7183.Google Scholar
22.Dimitriou, G, Greenough, A, Pink, L, et al. Effect of posture on oxygenation and respiratory muscle strength in convalescent infants. Arch Dis Child Fetal Neonatal Ed. 2002;86:F147–50.Google Scholar
23.Hammer, GB. Single-lung ventilation in infants and children. Paediatr Anaesth. 2004;14:98102.Google Scholar
24.Heaf, DP, Helms, P, Gordon, I, Turner, HM. Postural effects on gas exchange in infants. N Engl J Med. 1983;308:1505–8.Google Scholar
25.Rowe, R, Andropoulos, D, Heard, M, et al. Anesthetic management of pediatric patients undergoing thoracoscopy. J Cardiothorac Vasc Anesth. 1994;8:563–6.Google Scholar
26.Hammer, GB, Fitzmaurice, BG, Brodsky, JB. Methods for single-lung ventilation in pediatric patients. Anesth Analg. 1999;89:1426–9.Google Scholar
27.Tan, GM, Tan-Kendrick, AP. Bronchial diameters in children: use of the Fogarty catheter for lung isolation in children. Anaesth Intensive Care. 2002;30:615–18.Google Scholar
28.Mansell, A, Bryan, C, Levison, H. Airway closure in children. J Appl Physiol. 1972;33:711–14.Google Scholar
29.Brodsky, JB. Lung separation and the difficult airway. Br J Anaesth. 2009;103(Suppl 1): i66–75.Google Scholar
30.Baraka, A, Dajani, A, Maktabi, M. Selective contralateral bronchial intubation in children with pneumothorax or bronchopleural fistula. Br J Anaesth. 1983;55:901–4.Google Scholar
31.Bastien, JL, O’Brien, JG, Frantz, FW. Extraluminal use of the Arndt pediatric endobronchial blocker in an infant: a case report. Can J Anaesth. 2006;53:159–61.Google Scholar
32.Hammer, GB, Manos, SJ, Smith, BM, Skarsgard, ED, Brodsky, JB. Single-lung ventilation in pediatric patients. Anesthesiology. 1996;84:1503–6.Google Scholar
33.Borchardt, RA, LaQuaglia, MP, McDowall, RH, Wilson, RS. Bronchial injury during lung isolation in a pediatric patient. Anesth Analg. 1998;87:324–5.Google Scholar
34.Sutton, CJ, Naguib, A, Puri, S, Sprenker, CJ, Camporesi, EM. One-lung ventilation in infants and small children: blood gas values. J Anesth. 2012;26:670–4.Google Scholar
35.Kamaya, H, Krishna, PR. New endotracheal tube (Univent tube) for selective blockade of one lung. Anesthesiology. 1985;63:342–3.Google Scholar
36.Marciniak, B, Fayoux, P, Hebrard, A, et al. Fluoroscopic guidance of Arndt endobronchial blocker placement for single-lung ventilation in small children. Acta Anaesthesiol Scand. 2008;52:1003–5.Google Scholar
37.Yoneda, KY, Louie, S, Shelton, DK. Mediastinal tumors. Curr Opin Pulm Med. 2001;7:226–33.Google Scholar
38.Lee, EY. Evaluation of non-vascular mediastinal masses in infants and children: an evidence-based practical approach. Pediatr Radiol. 2009;39(Suppl 2):S184–90.Google Scholar
39.Merten, DF. Diagnostic imaging of mediastinal masses in children. AJR Am J Roentgenol. 1992;158:825–32.Google Scholar
40.King, RM, Telander, RL, Smithson, WA, Banks, PM, Han, MT. Primary mediastinal tumors in children. J Pediatr Surg. 1982;17:512–20.Google Scholar
41.Ravitch, M. Mediastinal cysts and tumors. In Pediatric Surgery. Chicago, IL: Year Book Medical Publishers;1986; 602–18.Google Scholar
42.Azarow, KS, Pearl, RH, Zurcher, R, Edwards, FH, Cohen, AJ. Primary mediastinal masses: a comparison of adult and pediatric populations. J Thorac Cardiovasc Surg. 1993;106:6772.Google Scholar
43.Sannoh, S, Quezada, E, Merer, DM, Moscatello, A, Golombek, SG. Cystic hygroma and potential airway obstruction in a newborn: a case report and review of the literature. Cases J. 2009;2:48.Google Scholar
44.Seibert, JJ, Marvin, WJ, Rose, EF, Schieken, RM. Mediastinal teratoma: a rare cause of severe respiratory distress in the newborn. J Pediatr Surg. 1976;11:253–5.Google Scholar
45.Song, TB, Kim, CH, Kim, SM, et al. Fetal axillary cystic hygroma detected by prenatal ultrasonography: a case report. J Korean Med Sci. 2002;17:400–2.Google Scholar
46.Hammer, GB. Anaesthetic management for the child with a mediastinal mass. Paediatr Anaesth. 2004;14:95–7.Google Scholar
47.Pullerits, J, Holzman, R. Anaesthesia for patients with mediastinal masses. Can J Anaesth. 1989;36:681–8.Google Scholar
48.Slinger, P, Karsli, C. Management of the patient with a large anterior mediastinal mass: recurring myths. Curr Opin Anaesthesiol. 2007;20:13.Google Scholar
49.Neuman, GG, Weingarten, AE, Abramowitz, RM, et al. The anesthetic management of the patient with an anterior mediastinal mass. Anesthesiology. 1984;60:144–7.Google Scholar
50.Anghelescu, DL, Burgoyne, LL, Liu, T, et al. Clinical and diagnostic imaging findings predict anesthetic complications in children presenting with malignant mediastinal masses. Paediatr Anaesth. 2007;17:1090–8.Google Scholar
51.Gautam, PL, Kaur, M, Singh, RJ, Gupta, S. Large mediastinal tumor in a neonate: an anesthetic challenge. J Anesth. 2012;26:124–7.Google Scholar
52.Robie, DK, Gursoy, MH, Pokorny, WJ. Mediastinal tumors: airway obstruction and management. Semin Pediatr Surg. 1994;3:259–66.Google Scholar
53.Yamashita, M, Chin, I, Horigome, H, Umesato, Y, Tsuchida, M. Sudden fatal cardiac arrest in a child with an unrecognized anterior mediastinal mass. Resuscitation. 1990;19:175–7.Google Scholar
54.Viswanathan, S, Campbell, CE, Cork, RC. Asymptomatic undetected mediastinal mass: a death during ambulatory anesthesia. J Clin Anesth. 1995;7:151–5.Google Scholar
55.Toda, N, Murakami, N, Ando, T, et al. [Anesthetic management in two infants undergoing hemilaminectomy for giant mediastinal neuroblastoma]. Masui. 2007;56:158–62.Google Scholar
56.Ferrari, LR, Bedford, RF. Anterior mediastinal mass in a pregnant patient: anesthetic management and considerations. J Clin Anesth. 1989;1:460–3.Google Scholar
57.Sibert, KS, Biondi, JW, Hirsch, NP. Spontaneous respiration during thoracotomy in a patient with a mediastinal mass. Anesth Analg. 1987;66:904–7.Google Scholar
58.Piro, AJ, Weiss, DR, Hellman, S. Mediastinal Hodgkin’s disease: a possible danger for intubation anesthesia. Intubation danger in Hodgkin’s disease. Int J Radiat Oncol Biol Phys. 1976;1:415–19.Google Scholar
59.Polaner, DM. The use of heliox and the laryngeal mask airway in a child with an anterior mediastinal mass. Anesth Analg. 1996;82:208–10.Google Scholar
60.Barnett, TB. Effects of helium and oxygen mixtures on pulmonary mechanics during airway constriction. J Appl Physiol. 1967;22:707–13.Google Scholar
61.Ferrari, LR, Bedford, RF. General anesthesia prior to treatment of anterior mediastinal masses in pediatric cancer patients. Anesthesiology. 1990;72:991–5.Google Scholar
62.Heinrich, S, Birkholz, T, Ihmsen, H, et al. Incidence and predictors of difficult laryngoscopy in 11,219 pediatric anesthesia procedures. Pediatr Anesth. 2012;22:729–36.Google Scholar
63.de Beer, D, Bingham, R. The child with facial abnormalities. Curr Opin Anaesthesiol. 2011; 24:282–8.Google Scholar
64.Jagannathan, N, Sequera-Ramos, L, Sohn, L, et al. Elective use of supraglottic airway devices for primary airway management in children with difficult airways. Br J Anaesth. 2014;112:742–8.Google Scholar
65.Morris, GP, Cooper, MG. Difficult tracheal intubation following midface distraction surgery. Paediatr Anaesth. 2000;10:99102.Google Scholar
66.Barnett, S, Moloney, C, Bingham, R. Perioperative complications in children with Apert syndrome: a review of 509 anesthetics. Paediatr Anaesth. 2011;21:72–7.Google Scholar
67.Roce, J, Frawley, G, Heggie, A. Difficult tracheal intubation induced by maxillary distraction devices in craniosynostosis syndromes. Paediatr Anaesth. 2002;12:227–34.Google Scholar
68.Duggan, L, Jagannathan, N. Unique airway issues in the pediatric population. In Hung, O, Murphy, M., editors. Management of the Difficult and Failed Airway, 2nd edn. New York: McGraw-Hill; 2012.Google Scholar
69.Pean, D, Desdoits, A, Asehnoune, K, Lejus, C. Airtraq laryngoscope for intubation in Treacher Collins syndrome. Paediatr Anaesth. 2009;19:698–9.Google Scholar
70.Milne, AD, Dower, AM, Hackmann, T. Airway management using the pediatric GlideScope in a child with Goldenhar syndrome and atypical plasma cholinesterase. Paediatr Anaesth. 2007;17:484–7.Google Scholar
71.Xue, FS, Yang, QY, Liao, X, He, N, Liu, HP. Lightwand guided intubation in paediatric patients with a known difficult airway: a report of four cases. Anaesthesia. 2008;63:520–5.Google Scholar
72.Shukry, M, Hanson, RD, Koveleskie, JR, Ramadhyani, U. Management of the difficult pediatric airway with Shikani Optical Stylet. Paediatr Anaesth. 2005;15:342–5.Google Scholar
73.Johnson, CM, Sims, C. Awake fibreoptic intubation via a laryngeal mask in an infant with Goldenhar’s syndrome. Anaesth Intensive Care. 1994;22:194–7.Google Scholar
74.Khan, FA, Khan, FH. Use of the laryngeal mask airway in mucopolysaccharidoses. Paediatr Anaesth. 2002;12:468.Google Scholar
75.Walker, RW, Allen, DL, Rothera, MR. A fibreoptic intubation technique for children with mucopolysaccharidoses using the laryngeal mask airway. Paediatr Anaesth. 1997;7:421–6.Google Scholar
76.Diaz, JH, Belani, KG. Perioperative management of children with mucopolysaccharidoses. Anesth Analg. 1993;77:1261–70.Google Scholar
77.Osthaus, WA, Harendza, T, Witt, LH, et al. Paediatric airway management in mucopolysaccharidosis 1: a retrospective case review. Eur J Anaesthesiol. 2012;29:204–7.Google Scholar
78.Chin, CJ, Khami, MM, Husein, M. A general review of the otolaryngologic manifestations of Down syndrome. Int J Pediatr Otorhinolaryngol. 2014;78:899904.Google Scholar
79.Shott, SR. Down syndrome: analysis of airway size and a guide for appropriate intubation. Laryngoscope. 2000;110:585–92.Google Scholar
80.Infosino, A. Pediatric upper airway and congenital anomalies. Anesthesiol Clin North Am. 2002;20:747–66.Google Scholar
81.Malik, P, Choudhry, DK. Larsen syndrome and its anaesthetic considerations. Paediatr Anaesth. 2002;12:632–6.Google Scholar
82.Stevenson, GW, Hall, SC, Palmieri, J. Anesthetic considerations for patients with Larsen’s syndrome. Anesthesiology. 1991;75:142–4.Google Scholar
83.Sunder, RA, Haile, DT, Farrell, PT, Sharma, A. Pediatric airway management: current practices and future directions. Paediatr Anaesth. 2012;22:1008–15.Google Scholar
84.Weiss, M, Engelhardt, T. Cannot ventilate – paralyze! Pediatr Anesth. 2012;22:1147–9.Google Scholar
85.Jagannathan, N, Sohn, LE, Suresh, S. Glossopharyngeal nerve blocks for awake laryngeal mask airway insertion in an infant with Pierre-Robin syndrome: can a glidescope come to the rescue? Paediatr Anaesth. 2009;19:189–90.Google Scholar
86.Asai, T, Nagata, A, Shingu, K. Awake tracheal intubation through the laryngeal mask in neonates with upper airway obstruction. Paediatr Anaesth. 2008;18:7780.Google Scholar
87.de Blic, J, Delacourt, C, Scheinmann, P. Ultrathin flexible bronchoscopy in neonatal intensive care units. Arch Dis Child. 1991;66:1383–5.Google Scholar
88.Foucher-Lezla, A, Lehousse, T, Monrigal, JP, Granry, JC, Beydon, L. Fibreoptic assessment of laryngeal positioning of the paediatric supraglottic airway device I-Gel. Eur J Anaesthesiol. 2013;30:441–2.Google Scholar
89.Jagannathan, N, Kozlowski, RJ, Sohn, LE, et al. A clinical evaluation of the intubating laryngeal airway as a conduit for tracheal intubation in children. Anesth Analg. 2011;112:176–82.Google Scholar
90.Bandla, HP, Smith, DE, Kiernan, MP. Laryngeal mask airway facilitated fibreoptic bronchoscopy in infants. Can J Anaesth. 1997;44:1242–7.Google Scholar
91.Lesmes, C, Siplovich, L, Katz, Y. Fiberoptic bronchoscopy in children using the laryngeal mask airway. Pediatr Surg Int. 2000;16:179–81.Google Scholar
92.Vijayasekaran, D, Gowrishankar, NC, Kalpana, S, et al. Lower airway anomalies in infants with laryngomalacia. Indian J Pediatr. 2010;77:403–6.Google Scholar
93.Neustein, SM. The use of bronchial blockers for providing one-lung ventilation. J Cardiothorac Vasc Anesth. 2009;23:860–8.Google Scholar
94.Ramesh, S. Fiberoptic airway management in adults and children. Indian J Anaesth. 2005;49:293–9.Google Scholar
95.Bhardwaj, N, Jain, K, Rao, M, Mandal, AK. Assessment of cervical spine movement during laryngoscopy with Macintosh and Truview laryngoscopes. J Anaesthesiol Clin Pharmacol. 2013;29:308–12.Google Scholar
96.Griesdale, DE, Chau, A, Isac, G, et al. Video-laryngoscopy versus direct laryngoscopy in critically ill patients: a pilot randomized trial. Can J Anaesth. 2012;59:1032–9.Google Scholar
97.Aziz, MF, Healy, D, Kheterpal, S, et al. Routine clinical practice effectiveness of the Glidescope in difficult airway management: an analysis of 2,004 Glidescope intubations, complications, and failures from two institutions. Anesthesiology. 2011;114:3441.Google Scholar
98.Paolini, JB, Donati, F, Drolet, P. Review article: video-laryngoscopy: another tool for difficult intubation or a new paradigm in airway management? Can J Anaesth. 2013;60:184–91.Google Scholar
99.Cheyne, DR, Doyle, P. Advances in laryngoscopy: rigid indirect laryngoscopy. F1000 Med Rep. 2010;2:61.Google Scholar
100.Pott, LM, Murray, WB. Review of video laryngoscopy and rigid fiberoptic laryngoscopy. Curr Opin Anaesthesiol. 2008;21:750–8.Google Scholar
101.Serocki, G, Bein, B, Scholz, J, Dorges, V. Management of the predicted difficult airway: a comparison of conventional blade laryngoscopy with video-assisted blade laryngoscopy and the GlideScope. Eur J Anaesthesiol. 2010;27:2430.Google Scholar
102.Ciccozzi, A, Angeletti, C, Guetti, C, et al. GlideScope and Frova Introducer for difficult airway management. Case Rep Anesthesiol. 2013;2013:717928.Google Scholar
103.Holm-Knudsen, R. The difficult pediatric airway: a review of new devices for indirect laryngoscopy in children younger than two years of age. Paediatr Anaesth. 2011;21:98103.Google Scholar
104.Savoldelli, GL, Schiffer, E, Abegg, C, et al. Learning curves of the Glidescope, the McGrath and the Airtraq laryngoscopes: a manikin study. Eur J Anaesthesiol. 2009;26:554–8.Google Scholar
105.Scheller, B, Schalk, R, Byhahn, C, et al. Laryngeal tube suction II for difficult airway management in neonates and small infants. Resuscitation. 2009;80:805–10.Google Scholar
106.Whyte, SD, Cooke, E, Malherbe, S. Usability and performance characteristics of the pediatric air-Q(R) intubating laryngeal airway. Can J Anaesth. 2013;60:557–63.Google Scholar
107.Wong, DT, Yang, JJ, Mak, HY, Jagannathan, N. Use of intubation introducers through a supraglottic airway to facilitate tracheal intubation: a brief review. Can J Anaesth. 2012;59:704–15.Google Scholar
108.Jagannathan, N, Roth, AG, Sohn, LE, et al. The new air-Q intubating laryngeal airway for tracheal intubation in children with anticipated difficult airway: a case series. Paediatr Anaesth. 2009;19:618–22.Google Scholar
109.Jagannathan, N, Sommers, K, Sohn, LE, et al. A randomized equivalence trial comparing the i-gel and laryngeal mask airway Supreme in children. Paediatr Anaesth. 2013;23:127–33.Google Scholar
110.Jagannathan, N, Fiadjoe, JE. Supraglottic airways for pediatric patients: an overview. Anesthesiology News. 2013Google Scholar
111.Cook, TM, Gatward, JJ, Handel, J, et al. Evaluation of the LMA Supreme in 100 non-paralysed patients. Anaesthesia. 2009;64:555–62.Google Scholar
112.Patel, B, Bingham, R. Laryngeal mask airway and other supraglottic airway devices in paediatric practice. Continuing Education in Anaesthesia, Critical Care & Pain. 2009;9:69.Google Scholar
113.Apfelbaum, JL, Hagberg, CA, Caplan, RA, et al. Practice guidelines for management of the difficult airway: an updated report by the American Society of Anesthesiologists Task Force on Management of the Difficult Airway. Anesthesiology. 2013;118:251–70.Google Scholar
114.Cote, CJ, Hartnick, CJ. Pediatric transtracheal and cricothyrotomy airway devices for emergency use: which are appropriate for infants and children? Paediatr Anaesth. 2009;19(Suppl 1):6676.Google Scholar
115.Cook, T, Woodall, N, Harper, J, Benger, J. Major complications of airway management in the UK: results of the Fourth National Audit Project of the Royal College of Anaesthetists and the Difficult Airway Society. Part 2: intensive care and emergency departments. Br J Anaes. 2011;106:632–42.Google Scholar
116.Navsa, N, Tossel, G, Boon, J. Dimensions of the neonatal cricothyroid membrane: how feasible is a surgical cricothyroidotomy? Pediatr Anesth. 2005;15:402–6.Google Scholar
117.Stacey, J, Heard, A, Chapman, G, et al. The “Can’t Intubate Can’t Oxygenate” scenario in pediatric anesthesia: a comparison of different devices for needle cricothyroidotomy. Pediatr Anesth. 2012;22:1155–8.Google Scholar
118.Cook, TM, Bigwood, B, Cranshaw, J. A complication of transtracheal jet ventilation and use of the Aintree intubation catheter during airway resuscitation. Anaesthesia. 2006;61:692–7.Google Scholar
119.Ahmad, Y, Turner, M. Transtracheal jet ventilation in patients with severe airway compromise and stridor. Br J Anaesth. 2011;106:602.Google Scholar
120.Holm-Knudsen, R, Eriksen, K, Rasmussen, LS. Using a nasopharyngeal airway during fiberoptic intubation in small children with a difficult airway. Pediatr Anesth. 2005;15:839–45.Google Scholar
121.Kleeman, P-P, Jantzen, J-PH, Bonfils, P. The ultra-thin bronchoscope in management of the difficult paediatric airway. Can J Anaesth. 1987;34:606–8.Google Scholar
122.Howardy-Hansen, P, Berthelsen, P. Fibreoptic bronchoscopic nasotracheal intubation of a neonate with Pierre Robin syndrome. Anaesthesia. 1988;43:121–2.Google Scholar
123.Smallman, B, Ball, R, Tatum, S. A novel technique of retrograde nasal intubation for the Pierre Robin sequence infant with a known difficult airway. Paediatr Anaesth. 2009;19:919–21.Google Scholar
124.Portnoy, JE, Tatum, S. Retrograde nasal intubation via the cleft in Pierre-Robin sequence neonates: a case series. Int J Pediatr Otorhinolaryngol. 2009;73:1828–32.Google Scholar

References

1.Friis-Hansen, B. Body water compartments in children: changes during growth and related changes in body composition. Pediatrics. 1961;28:169–81.Google Scholar
2.Hawkes, CP, Hourihane, JO, Kenny, LC, et al. Gender- and gestational age-specific body fat percentage at birth. Pediatrics. 2011;128(3):e645–51.Google Scholar
3.Morgenstern, BZ, Mahoney, DW, Warady, BA. Estimating total body water in children on the basis of height and weight: a reevaluation of the formulas of Mellits and Cheek. J Am Soc Nephrol. 2002. 13(7):1884–8.Google Scholar
4.Linderkamp, O, Versmold, HT, Riegel, KP, Betke, K. Estimation and prediction of blood volume in infants and children. Eur J Pediatr. 1977;125(4):227–34.Google Scholar
5.Cassady, G. Plasma volume studies in low birth weight infants. Pediatrics. 1966;38(6):1020–7.Google Scholar
6.Feldschuh, J, Enson, Y. Prediction of the normal blood volume: relation of blood volume to body habitus. Circulation. 1977;56(4 Pt 1):605–12.Google Scholar
7.Schlondorff, D, Weber, H, Trizna, W, Fine, LG. Vasopressin responsiveness of renal adenylate cyclase in newborn rats and rabbits. Am J Physiol. 1978;234(1):F16–21.Google Scholar
8.Chawla, D, Agarwal, R, Deorari, AK, Paul, VK. Fluid and electrolyte management in term and preterm neonates. Indian J Pediatr. 2008;75(3):255–9.Google Scholar
9.Aperia, A, Zetterstrom, R. Renal control of fluid homeostasis in the newborn infant. Clin Perinatol. 1982;9(3):523–33.Google Scholar
10.Holliday, MA, Segar, WE. The maintenance need for water in parenteral fluid therapy. Pediatrics. 1957;19(5):823–32.Google Scholar
11.Holliday, MA, Friedman, AL, Segar, WE, Chesney, R, Finberg, L. Acute hospital-induced hyponatremia in children: a physiologic approach. J Pediatr. 2004;145(5):584–7.Google Scholar
12.Furman, EB, Roman, DG, Lemmer, LA, et al. Specific therapy in water, electrolyte and blood-volume replacement during pediatric surgery. Anesthesiology. 1975;42(2):187–93.Google Scholar
13.Berry, F. Practical aspects of fluid and electrolyte therapy. In Berry, F, editor. Anesthetic Management of Difficult and Routine Pediatric Patients. New York: Churchill Livingstone; 1986; 10735.Google Scholar
14.American Society of Anesthesiologists. Practice guidelines for preoperative fasting and the use of pharmacologic agents to reduce the risk of pulmonary aspiration: application to healthy patients undergoing elective procedures: an updated report by the American Society of Anesthesiologists Committee on Standards and Practice Parameters. Anesthesiology. 2011;114(3):495511.Google Scholar
15.Jacob, M, Chappell, D, Conzen, P, Finsterer, U, Rehm, M. Blood volume is normal after pre-operative overnight fasting. Acta Anaesthesiol Scand. 2008;52(4):522–9.Google Scholar
16.Friedman, AL. Pediatric hydration therapy: historical review and a new approach. Kidney Int. 2005;67(1):380–8.Google Scholar
17.Bell, EF, Warburton, D, Stonestreet, BS, Oh, W. Effect of fluid administration on the development of symptomatic patent ductus arteriosus and congestive heart failure in premature infants. N Engl J Med. 1980;302(11):598604.Google Scholar
18.Srinivasan, G, Jain, R, Pildes, RS, Kannan, CR. Glucose homeostasis during anesthesia and surgery in infants. J Pediatr Surg. 1986;21(8):718–21.Google Scholar
19.Shires, T, Williams, J, Brown, F. Acute change in extracellular fluids associated with major surgical procedures. Ann Surg. 1961;154:803–10.Google Scholar
20.Liumbruno, GM, Bennardello, F, Lattanzio, A, et al. Recommendations for the transfusion management of patients in the peri-operative period: II. The intra-operative period. Blood Transfus. 2011;9(2):189217.Google Scholar
21.Mollitt, DL, Ballantine, TV, Grosfeld, JL, Quinter, P. A critical assessment of fluid requirements in gastroschisis. J Pediatr Surg. 1978;13(3):217–19.Google Scholar
22.Murat, I Dubois, MC. Perioperative fluid therapy in pediatrics. Paediatr Anaesth. 2008;18(5):363–70.Google Scholar
23.Campbell, IT, Baxter, J, Tweedie, I, et al. IV fluids during surgery. Br J Anaesth. 1990;65(5):726–9.Google Scholar
24.de Jonge, E Levi, M. Effects of different plasma substitutes on blood coagulation: a comparative review. Crit Care Med. 2001. 29(6):1261–7.Google Scholar
25.Nearman, HS Herman, ML. Toxic effects of colloids in the intensive care unit. Crit Care Clin. 1991;7(3):713–23.Google Scholar
26.De Gaudio, AR. Therapeutic use of albumin. Int J Artif Organs. 1995;18(4):216–24.Google Scholar
27.Schwarz, U. Intraoperative fluid therapy in infants and young children. Anaesthesist. 1999;48(1):4150.Google Scholar
28.Soderlind, M, Salvignol, G, Izard, P, Lönnqvist, PA. Use of albumin, blood transfusion and intraoperative glucose by APA and ADARPEF members: a postal survey. Paediatr Anaesth. 2001;11(6):685–9.Google Scholar
29.Tobias, MD, Wambold, D, Pilla, MA, Greer, F. Differential effects of serial hemodilution with hydroxyethyl starch, albumin, and 0.9% saline on whole blood coagulation. J Clin Anesth. 1998;10(5):366–71.Google Scholar
30.McClelland, DB. Safety of human albumin as a constituent of biologic therapeutic products. Transfusion. 1998;38(7):690–9.Google Scholar
31.Boldt, J, Knothe, C, Schindler, E, et al. Volume replacement with hydroxyethyl starch solution in children. Br J Anaesth. 1993;70(6):661–5.Google Scholar
32.Riegger, LQ, Voepel-Lewis, T, Kulik, TJ, et al. Albumin versus crystalloid prime solution for cardiopulmonary bypass in young children. Crit Care Med. 2002;30(12):2649–54.Google Scholar
33.B.H. Corporation. BUMINATE 5% [albumin (human)]: prescribing information, 2009.Google Scholar
34.B.H. Corporation. BUMINATE 25% [albumin (human)]: prescribing information, 2009.Google Scholar
35.Liumbruno, GM, Bennardello, F, Lattanzio, A, et al. Recommendations for the use of albumin and immunoglobulins. Blood Transfus. 2009;7(3):216–34.Google Scholar
36.Bailey, AG, McNaull, PP, Jooste, E, Tuchman, JB. Perioperative crystalloid and colloid fluid management in children: where are we and how did we get here? Anesth Analg. 2010;110(2):375–90.Google Scholar
37.Wilkes, MM, Navickis, RJ, Sibbald, WJ. Albumin versus hydroxyethyl starch in cardiopulmonary bypass surgery: a meta-analysis of postoperative bleeding. Ann Thorac Surg. 2001. 72(2):527–33.; discussion 534.Google Scholar
38.Martin, G, Bennett-Guerrero, E, Wakeling, H, et al. A prospective, randomized comparison of thromboelastographic coagulation profile in patients receiving lactated Ringer’s solution, 6% hetastarch in a balanced-saline vehicle, or 6% hetastarch in saline during major surgery. J Cardiothorac Vasc Anesth. 2002;16(4):441–6.Google Scholar
39.Kozek-Langenecker, SA. Effects of hydroxyethyl starch solutions on hemostasis. Anesthesiology. 2005. 103(3):654–60.Google Scholar
40.Fenger-Eriksen, C, Hartig Rasmussen, C, Kappel Jensen, T, et al. Renal effects of hypotensive anaesthesia in combination with acute normovolaemic haemodilution with hydroxyethyl starch 130/0.4 or isotonic saline. Acta Anaesthesiol Scand. 2005;49(7):969–74.Google Scholar
41.Liet, JM, Bellouin, AS, Boscher, C, Lejus, C, Rozé, JC. Plasma volume expansion by medium molecular weight hydroxyethyl starch in neonates: a pilot study. Pediatr Crit Care Med. 2003;4(3):305–7.Google Scholar
42.Sumpelmann, R, Kretz, FJ, Luntzer, R, et al. Hydroxyethyl starch 130/0.42/6:1 for perioperative plasma volume replacement in 1130 children: results of a European prospective multicenter observational postauthorization safety study (PASS). Paediatr Anaesth. 2012;22(4):371–8.Google Scholar
43.Hospira. Hextend and 6% Hetastarch in 0.9% sodium chloride injection, 2006.Google Scholar
44.Hospira. Voluven (6% hydroxyethyl starch 130/0.4 in 0.9% sodium chloride injection), for administration by intravenous infusion: Highlights Of Prescribing Information, FDA, 2007.Google Scholar
45.F.S. Communication. Hydroxyethyl starch solutions: FDA safety communication – boxed warning on increased mortality and severe renal injury and risk of bleeding, 2013.Google Scholar
46.Fisher, B, Thomas, D, Peterson, B. Hypertonic saline lowers raised intracranial pressure in children after head trauma. J Neurosurg Anesthesiol. 1992;4(1):410.Google Scholar
47.Simma, B, Burger, R, Falk, M, Sacher, P, Fanconi, S. A prospective, randomized, and controlled study of fluid management in children with severe head injury: lactated Ringer’s solution versus hypertonic saline. Crit Care Med. 1998;26(7):1265–70.Google Scholar
48.Peterson, B, Khanna, S, Fisher, B, Marshall, L. Prolonged hypernatremia controls elevated intracranial pressure in head-injured pediatric patients. Crit Care Med. 2000;28(4):1136–43.Google Scholar
49.Junger, WG, Coimbra, R, Liu, FC, et al. Hypertonic saline resuscitation: a tool to modulate immune function in trauma patients? Shock. 1997;8(4):235–41.Google Scholar
50.Snaith, R, Peutrell, J, Ellis, D. An audit of intravenous fluid prescribing and plasma electrolyte monitoring: a comparison with guidelines from the National Patient Safety Agency. Paediatr Anaesth. 2008;18(10):940–6.Google Scholar
51.Arieff, AI, Ayus, JC, Fraser, CL. Hyponatraemia and death or permanent brain damage in healthy children. BMJ. 1992;304(6836):1218–22.Google Scholar
52.Choong, K, Kho, M, Menon, K, Bohn, D. Hypotonic versus isotonic saline in hospitalised children: a systematic review. Arch Dis Child. 2006;91(10):828–35.Google Scholar
53.Foster, BA, Tom, D, Hill, V. Hypotonic versus isotonic fluids in hospitalized children: a systematic review and meta-analysis. J Pediatr. 2014;165:163–9.Google Scholar
54.Choong, K, Arora, S, Cheng, J, et al. Hypotonic versus isotonic maintenance fluids after surgery for children: a randomized controlled trial. Pediatrics. 2011;128(5):857–66.Google Scholar
55.Oski, FA. The unique fetal red cell and its function. E. Mead Johnson Award address. Pediatrics. 1973;51(3):494500.Google Scholar
56.Kirpalani, H, Whyte, RK, Andersen, C, et al. The Premature Infants in Need of Transfusion (PINT) study: a randomized, controlled trial of a restrictive (low) versus liberal (high) transfusion threshold for extremely low birth weight infants. J Pediatr. 2006;149(3):301–7.Google Scholar
57.Bell, EF, Strauss, RG, Widness, JA, et al. Randomized trial of liberal versus restrictive guidelines for red blood cell transfusion in preterm infants. Pediatrics. 2005;115(6):1685–91.Google Scholar
58.DePalma, L, Luban, NL. Blood component therapy in the perinatal period: guidelines and recommendations. Semin Perinatol. 1990;14(5):403–15.Google Scholar
59.Stockman, JA, 3rd, Graeber, JE, Clark, DA, et al. Anemia of prematurity: determinants of the erythropoietin response. J Pediatr. 1984;105(5):786–92.Google Scholar
60.Ramasethu, J, Luban, N. Red blood cell transfusion in the newborn. Semin Neonatol. 1999;4:516.Google Scholar
61.Strauss, RG. Transfusion therapy in neonates. Am J Dis Child. 1991;145(8):904–11.Google Scholar
62.Roseff, SD, Luban, NL, Manno, CS. Guidelines for assessing appropriateness of pediatric transfusion. Transfusion. 2002. 42(11):1398–413.Google Scholar
63.Desmet, L, Lacroix, J. Transfusion in pediatrics. Crit Care Clin. 2004;20(2):299311.Google Scholar
64.Hebert, PC, Wells, G, Blajchman, M, et al. A multicenter, randomized, controlled clinical trial of transfusion requirements in critical care: transfusion requirements in critical care investigators, Canadian Critical Care Trials Group. N Engl J Med. 1999;340(6):409–17.Google Scholar
65.Lacroix, J, Hebert, PC, Hutchison, JS. Transfusion strategies for patients in pediatric intensive care units. N Engl J Med 2007;356(16):1609–19.Google Scholar
66.Mauermann, W, Haile, D, Flick, R. Blood conservation. In Davis, P,Cladis, F, Motoyama, E, editors. Smith’s Anesthesia for Infants and Children. Philadelphia, PA: Elsevier; 2011; 395417.Google Scholar
67.Hahn, E, Gillespie, E. Sickle cell anemia. Arch Intern Med. 1927; 39:233–4.Google Scholar
68.Shapiro, ND Poe, MF. Sickle-cell disease: an anesthesiological problem. Anesthesiology. 1955;16(5):771–80.Google Scholar
69.Bhattacharyya, N, Wayne, AS, Kevy, SV, Shamberger, RC. Perioperative management for cholecystectomy in sickle cell disease. J Pediatr Surg. 1993;28(1):72–5.Google Scholar
70.Firth, PG, Head, CA. Sickle cell disease and anesthesia. Anesthesiology. 2004. 101(3):766–85.Google Scholar
71.Kokoska, ER, West, KW, Carney, DE, et al. Risk factors for acute chest syndrome in children with sickle cell disease undergoing abdominal surgery. J Pediatr Surg. 2004;39(6):848–50.Google Scholar
72.Muncie, HL Jr., Campbell, J. Alpha and beta thalassemia. Am Fam Physician. 2009;80(4):339–44.Google Scholar
73.Rund, D Rachmilewitz, E. Beta-thalassemia. N Engl J Med. 2005;353(11):1135–46.Google Scholar
74.Old, J, Olivieri, N, Thein, S. Diagnosis and management of thalassaemia. In Weatherall, D, Clegg, B, editors. The Thalassaemia Syndromes. Oxford: Blackwell Science; 2001; 630–85.Google Scholar
75.Modell, B, Khan, M, Darlison, M. Survival in beta-thalassaemia major in the UK: data from the UK Thalassaemia Register. Lancet. 2000;355(9220):2051–2.Google Scholar
76.Sissons, JG, Carmichael, AJ. Clinical aspects and management of cytomegalovirus infection. J Infect. 2002. 44(2):7883.Google Scholar
77.Zaia, JA, Sissons, JG, Riddell, S, et al. Status of cytomegalovirus prevention and treatment in 2000. Hematology Am Soc Hematol Educ Program. 2000;2000:33955.Google Scholar
78.Yeager, AS, Grumet, FC, Hafleigh, EB, et al. Prevention of transfusion-acquired cytomegalovirus infections in newborn infants. J Pediatr. 1981;98(2):281–7.Google Scholar
79.Fergusson, D, Hébert, PC, Barrington, KJ, Shapiro, SH. Effectiveness of WBC reduction in neonates: what is the evidence of benefit? Transfusion. 2002;42(2):159–65.Google Scholar
80.Billingham, RE. The biology of graft-versus-host reactions. Harvey Lect. 1966;62:2178.Google Scholar
81.Schroeder, ML. Transfusion-associated graft-versus-host disease. Br J Haematol. 2002;117(2):275–87.Google Scholar
82.McVay, PA, Toy, PT. Lack of increased bleeding after paracentesis and thoracentesis in patients with mild coagulation abnormalities. Transfusion. 1991;31(2):164–71.Google Scholar
83.Chan, KH, Mann, KS, Chan, TK. The significance of thrombocytopenia in the development of postoperative intracranial hematoma. J Neurosurg. 1989;71(1):3841.Google Scholar
84.Sacher, RA, Luban, NL, Strauss, RG. Current practice and guidelines for the transfusion of cellular blood components in the newborn. Transfus Med Rev. 1989;3(1):3954.Google Scholar
85.Andrew, M Brooker, L, Hemorrhagic complications in the newborn. In Petz, L, et al., editors. Clinical Practice of Transfusion Medicine. New York: Churchill Livingstone; 1996; 647–84.Google Scholar
86.Fasano, R Luban, NL. Blood component therapy. Pediatr Clin North Am. 2008;55(2):421–45.Google Scholar
87.Heddle, NM, Wu, C, Vassallo, R, et al. Adjudicating bleeding events in a platelet dose study: impact on outcome results and challenges. Transfusion. 2011;51(11):2304–10.Google Scholar
88.Estcourt, LJ, Stanworth, SJ, Murphy, MF. Prophylactic platelet transfusions. Curr Opin Hematol. 2010;17(5):411–17.Google Scholar
89.Konig, G, Yazer, MH, Waters, JH. Stored platelet functionality is not decreased after warming with a fluid warmer. Anesth Analg. 2013; 117(3):575–8.Google Scholar
90.Stanworth, SJ, Brunskill, SJ, Hyde, CJ, Murphy, MF, McClelland, DB. Appraisal of the evidence for the clinical use of FFP and plasma fractions. Best Pract Res Clin Haematol. 2006;19(1):6782.Google Scholar
91.Manco-Johnson, MJ, Riske, B, Kasper, CK. Advances in care of children with hemophilia. Semin Thromb Hemost. 2003;29(6):585–94.Google Scholar
92.Federici, AB. Management of von Willebrand disease with factor VIII/von Willebrand factor concentrates: results from current studies and surveys. Blood Coagul Fibrinolysis. 2005;16(Suppl. 1):S17–21.Google Scholar
93.Soucie, JM, Evatt, B, Jackson, D. Occurrence of hemophilia in the United States: The Hemophilia Surveillance System Project Investigators. Am J Hematol. 1998;59(4):288–94.Google Scholar
94.Brown, DL. Congenital bleeding disorders. Curr Probl Pediatr Adolesc Health Care. 2005;35(2):3862.Google Scholar
95.Martlew, VJ. Peri-operative management of patients with coagulation disorders. Br J Anaesth. 2000;85(3):446–55.Google Scholar
96.Sutor, AH. Desmopressin (DDAVP) in bleeding disorders of childhood. Semin Thromb Hemost. 1998;24(6):555–66.Google Scholar
97.Richardson, DW Robinson, AG. Desmopressin. Ann Intern Med. 1985;103(2):228–39.Google Scholar
98.Centers for Disease Control and Prevention. Red blood cell transfusions contaminated with Yersinia enterocolitica – United States, 1991–1996, and initiation of a national study to detect bacteria-associated transfusion reactions. MMWR Morb Mortal Wkly Rep. 1997;46(24):553–5.Google Scholar
99.Goodnough, LT, Brecher, ME, Kanter, MH, AuBuchon, JP. Transfusion medicine. Second of two parts – blood conservation. N Engl J Med. 1999;340(7):525–33.Google Scholar
100.Goldman, M Blajchman, MA. Blood product-associated bacterial sepsis. Transfus Med Rev. 1991;5(1):7383.Google Scholar
101.Bhananker, SM, Ramamoorthy, C, Geiduschek, JM, et al. Anesthesia-related cardiac arrest in children: update from the Pediatric Perioperative Cardiac Arrest Registry. Anesth Analg. 2007;105(2):344–50.Google Scholar
102.The Pediatric Anesthesia Quality Improvement Initiative. Hyperkalemia Statement, 2011. Available at: http://wakeupsafe.org/Hyperkalemia_statement.pdf.Google Scholar
103.Bunker, JP. Metabolic effects of blood transfusion. Anesthesiology. 1966;27(4):446–55.Google Scholar
104.Dzik, WH Kirkley, SA. Citrate toxicity during massive blood transfusion. Transfus Med Rev. 1988;2(2):7694.Google Scholar
105.Davis, PJ, Cook, DR. Anesthetic problems in pediatric liver transplantation. Transplant Proc. 1989;21(3):3493–6.Google Scholar
106.Kleinman, S, Caulfield, T, Chan, P, et al. Toward an understanding of transfusion-related acute lung injury: statement of a consensus panel. Transfusion. 2004;44(12):1774–89.Google Scholar
107.Mark, JB. Central venous pressure monitoring: clinical insights beyond the numbers. J Cardiothorac Vasc Anesth. 1991;5(2):163–73.Google Scholar
108.Greenberg, S, Murphy, G, Vender, J. Standard monitoring techniques. In Barash, P, et al., editors. Clinical Anesthesia. Philadelphia, PA: Elsevier Saunders; 2009; 697714.Google Scholar
109.Maecken, T, Grau, T. Ultrasound imaging in vascular access. Crit Care Med. 2007;35(5 Suppl):S178–85.Google Scholar
110.Westergaard, B, Classen, V, Walther-Larsen, S. Peripherally inserted central catheters in infants and children: indications, techniques, complications and clinical recommendations. Acta Anaesthesiol Scand. 2013;57(3):278–87.Google Scholar
111.Lloyd, TR, Donnerstein, RL, Berg, RA. Accuracy of central venous pressure measurement from the abdominal inferior vena cava. Pediatrics. 1992. 89(3):506–8.Google Scholar
112.Amar, D, Melendez, JA, Zhang, H, et al. Correlation of peripheral venous pressure and central venous pressure in surgical patients. J Cardiothorac Vasc Anesth. 2001;15(1):40–3.Google Scholar
113.Amoozgar, H, Ajami, G, Borzuoee, M, et al. Peripheral venous pressure as a predictor of central venous pressure in continuous monitoring in children. Iran Red Crescent Med J. 2011;13(5):342–5.Google Scholar
114.Anter, AM, Bondok, RS. Peripheral venous pressure is an alternative to central venous pressure in paediatric surgery patients. Acta Anaesthesiol Scand. 2004;48(9):1101–4.Google Scholar
115.Ng, L, Khine, H, Taragin, BH, et al. Does bedside sonographic measurement of the inferior vena cava diameter correlate with central venous pressure in the assessment of intravascular volume in children? Pediatr Emerg Care. 2013;29(3):337–41.Google Scholar
116.Al-Khafaji, A, Webb, A. Fluid resuscitation. BJA, Contin Educ Anaesth Crit Care Pain. 2004;4:127–31.Google Scholar
117.Tibby, SM, Hatherill, M, Marsh, MJ, et al. Clinical validation of cardiac output measurements using femoral artery thermodilution with direct Fick in ventilated children and infants. Intensive Care Med. 1997;23(9):987–91.Google Scholar
118.Schiffmann, H, Erdlenbruch, B, Singer, D, et al. Assessment of cardiac output, intravascular volume status, and extravascular lung water by transpulmonary indicator dilution in critically ill neonates and infants. J Cardiothorac Vasc Anesth. 2002;16(5):592–7.Google Scholar
119.Introna, RP, Martin, DC, Pruett, JK, Philpot, TE, Johnston, JF. Percutaneous pulmonary artery catheterization in pediatric cardiovascular anesthesia: insertion techniques and use. Anesth Analg. 1990;70(5):562–6.Google Scholar
120.Michard, F. Changes in arterial pressure during mechanical ventilation. Anesthesiology. 2005;103(2):419–28.; quiz 449–5.Google Scholar
121.Durand, P, Chevret, L, Essouri, S, Haas, V, Devictor, D. Respiratory variations in aortic blood flow predict fluid responsiveness in ventilated children. Intensive Care Med. 2008;34(5):888–94.Google Scholar
122.Rick, JJ, Burke, SS. Respirator paradox. South Med J. 1978;71(11):1376–8.Google Scholar
123.Arant, BS, Jr. Postnatal development of renal function during the first year of life. Pediatr Nephrol. 1987;1(3):308–13.Google Scholar
124.Singh, S, Kuschner, WG, Lighthall, G. Perioperative intravascular fluid assessment and monitoring: a narrative review of established and emerging techniques. Anesthesiol Res Pract. 2011;2011:231493.Google Scholar
125.Benkhadra, M, Collignon, M, Fournel, I, et al. Ultrasound guidance allows faster peripheral IV cannulation in children under 3 years of age with difficult venous access: a prospective randomized study. Paediatr Anaesth. 2012;22(5):449–54.Google Scholar
126.Bellotti, GA, Bedford, RF, Arnold, WP. Fiberoptic transillumination for intravenous cannulation under general anesthesia. Anesth Analg. 1981;60(5):348–51.Google Scholar
127.Lenhardt, R, Seybold, T, Kimberger, O, Stoiser, B, Sessler, DI. Local warming and insertion of peripheral venous cannulas: single blinded prospective randomised controlled trial and single blinded randomised crossover trial. BMJ. 2002;325(7361):409–10.Google Scholar
128.Teillol-Foo, WL, Kassab, JY. Topical glyceryl trinitrate and eutectic mixture of local anaesthetics in children: a randomised controlled trial on choice of site and ease of venous cannulation. Anaesthesia. 1991;46(10):881–4.Google Scholar
129.Chiao, FB, Resta-Flarer, F, Lesser, J, et al. Vein visualization: patient characteristic factors and efficacy of a new infrared vein finder technology. Br J Anaesth. 2013;110(6):966–71.Google Scholar
130.Butler-O’Hara, M, Buzzard, CJ, Reubens, L, et al. A randomized trial comparing long-term and short-term use of umbilical venous catheters in premature infants with birth weights of less than 1251 grams. Pediatrics. 2006;118(1):e25–35.Google Scholar
131.Nicolson, SC, Sweeney, MF, Moore, RA, Jobes, DR. Comparison of internal and external jugular cannulation of the central circulation in the pediatric patient. Crit Care Med. 1985;13(9):747–9.Google Scholar
132.Garcia-Teresa, MA, Casado-Flores, J, Delgado Domínguez, MA, et al. Infectious complications of percutaneous central venous catheterization in pediatric patients: a Spanish multicenter study. Intensive Care Med. 2007;33(3):466–76.Google Scholar
133.Karapinar, B, Cura, A. Complications of central venous catheterization in critically ill children. Pediatr Int. 2007;49(5):593–9.Google Scholar
134.Casado-Flores, J, Barja, J, Martino, R, Serrano, A, Valdivielso, A. Complications of central venous catheterization in critically ill children. Pediatr Crit Care Med. 2001;2(1):5762.Google Scholar
135.de Jonge, RC, Polderman, KH, Gemke, RJ. Central venous catheter use in the pediatric patient: mechanical and infectious complications. Pediatr Crit Care Med. 2005;6(3):329–39.Google Scholar
136.Ellemunter, H, Simma, B, Trawoger, R, Maurer, H. Intraosseous lines in preterm and full term neonates. Arch Dis Child Fetal Neonatal Ed. 1999;80(1):F74–5.Google Scholar
137.Jaimovich, DG, Kecskes, S. Intraosseous infusion: a re-discovered procedure as an alternative for pediatric vascular access. Indian J Pediatr. 1991;58(3):329–34.Google Scholar
138.Rajani, AK, Chitkara, R, Oehlert, J, et al. Comparison of umbilical venous and intraosseous access during simulated neonatal resuscitation. Pediatrics. 2011;128(4):e954–8.Google Scholar
139.Stewart, FC, Kain, ZN. Intraosseous infusion: elective use in pediatric anesthesia. Anesth Analg. 1992. 75(4):626–9.Google Scholar
140.Galpin, RD, Kronick, JB, Willis, RB, Frewen, TC. Bilateral lower extremity compartment syndromes secondary to intraosseous fluid resuscitation. J Pediatr Orthop. 1991;11(6):773–6.Google Scholar

References

1.SUPPORT Study Group of the Eunice Kennedy Shriver NICHD, et al. Target ranges of oxygen saturation in extremely preterm infants. N Engl J Med. 2010;362(21):1959–69.Google Scholar
2.Chu, EK, Whitehead, T, Slutsky, AS. Effects of cyclic opening and closing at low- and high-volume ventilation on bronchoalveolar lavage cytokines. Crit Care Med. 2004;32(1):168–74.Google Scholar
3.Hernandez, LA, Peevy, KJ, Moise, AA, Parker, JC. Chest wall restriction limits high airway pressure-induced lung injury in young rabbits. J Appl Physiol. 1989;66(5):2364–8.Google Scholar
4.Wolf, GK, Arnold, JH. High-frequency oscillation in paediatric respiratory failure. Pediatr Child Health. 2007;17(3):7781.Google Scholar
5.Meyer, M, Hahn, G, Buess, C, Mesch, U, Piiper, J. Pulmonary gas exchange in panting dogs. J Appl Physiol. 1989;66(3):1258–63.Google Scholar
6.Courtney, SE, Durand, DJ, Asselin, JM, et al. High-frequency oscillatory ventilation versus conventional mechanical ventilation for very-low-birth-weight infants. N Engl J Med. 2002;347(9):643–52.Google Scholar
7.Taylor, GI. The dispersion of soluble matter in solvent flowing slowly through a tube. Proc R Soc London. 1953;223:446–68.Google Scholar
8.Chang, HK. Mechanisms of gas transport during ventilation by high-frequency oscillation. J Appl Physiol. 1984;56(3):553–63.Google Scholar
9.Brazelton, TB, 3rd, Watson, KF, Murphy, M, et al. Identification of optimal lung volume during high-frequency oscillatory ventilation using respiratory inductive plethysmography. Crit Care Med. 2001;29(12):2349–59.Google Scholar
10.Maggiore, SM, Jonson, B, Richard, JC, et al. Alveolar derecruitment at decremental positive end-expiratory pressure levels in acute lung injury: comparison with the lower inflection point, oxygenation, and compliance. Am J Respir Crit Care Med. 2001, 164(5):795801.Google Scholar
11.Ranieri, VM, Eissa, NT, Corbeil, C, et al. Effects of positive end-expiratory pressure on alveolar recruitment and gas exchange in patients with the adult respiratory distress syndrome. Am Rev Respir Dis. 1991;144(3 Pt 1):544–51.Google Scholar
12.Kamitsuka, MD, Boynton, BR, Villanueva, D, Vreeland, PN, Frantz, ID 3rd. Frequency, tidal volume, and mean airway pressure combinations that provide adequate gas exchange and low alveolar pressure during high frequency oscillatory ventilation in rabbits. Pediatr Res. 1990;27(1):64–9.Google Scholar
13.Boynton, BR, Hammond, MD, Fredberg, JJ, et al. Gas exchange in healthy rabbits during high-frequency oscillatory ventilation. J Appl Physiol. 1989;66(3):1343–51.Google Scholar
14.Wolf, GK, Arnold, JH. Extracorporeal membrane oxygenation. In: Cloherty, JP, Stark, AR, editors. Manual of Neonatal Care, 6th edn. Philadelphi, PA: Wolters Kluwer; 2007; 346–52.Google Scholar

References

1.Anand, KJ, Sippell, WG, Aynsley-Green, A. Pain, anaesthesia, and babies. Lancet. 1987;2(8569):1210.Google Scholar
2.Anand, KJ, Sippell, WG, Aynsley-Green, A. Randomised trial of fentanyl anaesthesia in preterm babies undergoing surgery: effects on the stress response. Lancet. 1987;1(8524):62–6.Google Scholar
3.Anand, KJ, Sippell, WG, Schofield, NM, Aynsley-Green, A. Does halothane anaesthesia decrease the metabolic and endocrine stress responses of newborn infants undergoing operation? Br Med J (Clin Res Ed). 1988;296(6623):668–72.Google Scholar
4.Hickey, PR, Hansen, DD. High-dose fentanyl reduces intraoperative ventricular fibrillation in neonates with hypoplastic left heart syndrome. J Clin Anesth. 1991;3(4):295300.Google Scholar
5.Anand, KJ, Hansen, DD, Hickey, PR. Hormonal-metabolic stress responses in neonates undergoing cardiac surgery. Anesthesiology. 1990;73(4):661–70.Google Scholar
6.Lee, SJ, Ralston, HJ, Drey, EA, Partridge, JC, Rosen, MA. Fetal pain: a systematic multidisciplinary review of the evidence. JAMA. 2005;294(8):947–54.Google Scholar
7.Vinall, J, Miller, SP, Chau, V, et al. Neonatal pain in relation to postnatal growth in infants born very preterm. Pain. 2012;153(7):1374–81.Google Scholar
8.Brummelte, S, Grunau, RE, Chau, V, et al. Procedural pain and brain development in premature newborns. Ann Neurol. 2012;71(3):385–96.Google Scholar
9.Johnston, CC, Stevens, BJ. Experience in a neonatal intensive care unit affects pain response. Pediatrics. 1996;98(5):925–30.Google Scholar
10.Anand, KJ, Scalzo, FM. Can adverse neonatal experiences alter brain development and subsequent behavior? Biol Neonate. 2000;77(2):6982.Google Scholar
11.Taddio, A, Katz, J. The effects of early pain experience in neonates on pain responses in infancy and childhood. Paediatr Drugs. 2005;7(4):245–57.Google Scholar
12.DeFrances, CJ, Cullen, KA, Kozak, LJ. National Hospital Discharge Survey: 2005 annual summary with detailed diagnosis and procedure data. Vital Health Stat. 13. 2007(165):1209.Google Scholar
13.Olney, JW, Young, C, Wozniak, DF, Jevtovic-Todorovic, V, Ikonomidou, C. Do pediatric drugs cause developing neurons to commit suicide? Trends Pharmacol Sci. 2004;25(3):135–9.Google Scholar
14.Soriano, SG, Anand, KJ, Rovnaghi, CR, Hickey, PR. Of mice and men: should we extrapolate rodent experimental data to the care of human neonates? Anesthesiology. 2005;102(4):866–8; author reply 8–9.Google Scholar
15.Todd, MM. Anesthetic neurotoxicity: the collision between laboratory neuroscience and clinical medicine. Anesthesiology. 2004;101(2):272–3.Google Scholar
16.Olney, JW, Young, C, Wozniak, DF, Ikonomidou, C, Jevtovic-Todorovic, V. Anesthesia-induced developmental neuroapoptosis: does it happen in humans? Anesthesiology. 2004;101(2):273–5.Google Scholar
17.Soriano, SG. Thinking about the neurotoxic effects of sedatives on the developing brain. Pediatr Crit Care Med. 2010;11(2):306–7.Google Scholar
18.Buss, RR, Oppenheim, RW. Role of programmed cell death in normal neuronal development and function. Anat Sci Int. 2004;79(4):191–7.Google Scholar
19.Blaschke, AJ, Staley, K, Chun, J. Widespread programmed cell death in proliferative and postmitotic regions of the fetal cerebral cortex. Development. 1996;122(4):1165–74.Google Scholar
20.Oppenheim, RW. Cell death during development of the nervous system. Annu Rev Neurosci. 1991;14:453501.Google Scholar
21.Rabinowicz, T, de Courten-Myers, GM, Petetot, JM, Xi, G, de los Reyes, E. Human cortex development: estimates of neuronal numbers indicate major loss late during gestation. J Neuropathol Exp Neurol. 1996;55(3):320–8.Google Scholar
22.Raff, MC, Barres, BA, Burne, JF, et al. Programmed cell death and the control of cell survival: lessons from the nervous system. Science. 1993;262(5134):695700.Google Scholar
23.Rakic, S, Zecevic, N. Programmed cell death in the developing human telencephalon. Eur J Neurosci. 2000;12(8):2721–34.Google Scholar
24.Nijhawan, D, Honarpour, N, Wang, X. Apoptosis in neural development and disease. Annu Rev Neurosci. 2000;23:7387.Google Scholar
25.Kuida, K, Zheng, TS, Na, S, et al. Decreased apoptosis in the brain and premature lethality in CPP32-deficient mice. Nature. 1996;384(6607):368–72.Google Scholar
26.Ikonomidou, C, Bosch, F, Miksa, M, et al. Blockade of NMDA receptors and apoptotic neurodegeneration in the developing brain. Science. 1999;283(5398):70–4.Google Scholar
27.Jevtovic-Todorovic, V, Hartman, RE, Izumi, Y, et al. Early exposure to common anesthetic agents causes widespread neurodegeneration in the developing rat brain and persistent learning deficits. J Neurosci. 2003;23(3):876–82.Google Scholar
28.Loepke, AW, Soriano, SG. An assessment of the effects of general anesthetics on developing brain structure and neurocognitive function. Anesth Analg. 2008;106(6):1681–707.Google Scholar
29.Brambrink, AM, Evers, AS, Avidan, MS, et al. Isoflurane-induced neuroapoptosis in the neonatal rhesus macaque brain. Anesthesiology. 2010;112(4):834–41.Google Scholar
30.Slikker, W, Jr., Zou, X, Hotchkiss, CE, et al. Ketamine-induced neuronal cell death in the perinatal rhesus monkey. Toxicol Sci. 2007;98(1):145–58.Google Scholar
31.Brambrink, AM, Evers, AS, Avidan, MS, et al. Ketamine-induced neuroapoptosis in the fetal and neonatal rhesus macaque brain. Anesthesiology. 2012;116(2):372–84.Google Scholar
32.Fredriksson, A, Ponten, E, Gordh, T, Eriksson, P. Neonatal exposure to a combination of N-methyl-D-aspartate and gamma-aminobutyric acid type A receptor anesthetic agents potentiates apoptotic neurodegeneration and persistent behavioral deficits. Anesthesiology. 2007;107(3):427–36.Google Scholar
33.Stratmann, G. Review article: neurotoxicity of anesthetic drugs in the developing brain. Anesth Analg. 2011;113(5):1170–9.Google Scholar
34.Stratmann, G, Sall, JW, May, LD, et al. Isoflurane differentially affects neurogenesis and long-term neurocognitive function in 60-day-old and 7-day-old rats. Anesthesiology. 2009;110(4):834–48.Google Scholar
35.Hayashi, H, Dikkes, P, Soriano, SG. Repeated administration of ketamine may lead to neuronal degeneration in the developing rat brain. Paediatr Anaesth. 2002;12(9):770–4.Google Scholar
36.Scallet, AC, Schmued, LC, Slikker, W, Jr., et al. Developmental neurotoxicity of ketamine: morphometric confirmation, exposure parameters, and multiple fluorescent labeling of apoptotic neurons. Toxicol Sci. 2004;81(2):364–70.Google Scholar
37.Wang, C, Sadovova, N, Hotchkiss, C, et al. Blockade of N-methyl-D-aspartate receptors by ketamine produces loss of postnatal day 3 monkey frontal cortical neurons in culture. Toxicol Sci. 2006;91(1):192201.Google Scholar
38.Fredriksson, A, Archer, T, Alm, H, Gordh, T, Eriksson, P. Neurofunctional deficits and potentiated apoptosis by neonatal NMDA antagonist administration. Behav Brain Res. 2004;153(2):367–76.Google Scholar
39.Clancy, B, Darlington, RB, Finlay, BL. Translating developmental time across mammalian species. Neuroscience. 2001;105(1):717.Google Scholar
40.Clancy, B, Finlay, BL, Darlington, RB, Anand, KJ. Extrapolating brain development from experimental species to humans. Neurotoxicology. 2007;28(5):931–7.Google Scholar
41.Quinn, R. Comparing rat’s to human’s age: how old is my rat in people years? Nutrition. 2005;21(6):775–7.Google Scholar
42.De Felipe, J, Marco, P, Fairen, A, Jones, EG. Inhibitory synaptogenesis in mouse somatosensory cortex. Cereb Cortex. 1997;7(7):619–34.Google Scholar
43.Micheva, KD, Beaulieu, C. Quantitative aspects of synaptogenesis in the rat barrel field cortex with special reference to GABA circuitry. J Comp Neurol. 1996;373(3):340–54.Google Scholar
44.Micheva, KD, Beaulieu, C. Development and plasticity of the inhibitory neocortical circuitry with an emphasis on the rodent barrel field cortex: a review. Can J Physiol Pharmacol. 1997;75(5):470–8.Google Scholar
45.Huttenlocher, PR, Dabholkar, AS. Regional differences in synaptogenesis in human cerebral cortex. J Comp Neurol. 1997;387(2):167–78.Google Scholar
46.Dekaban, AS. Changes in brain weights during the span of human life: relation of brain weights to body heights and body weights. Ann Neurol. 1978;4(4):345–56.Google Scholar
47.Dobbing, J. Undernutrition and the developing brain: the relevance of animal models to the human problem. Am J Dis Child. 1970;120(5):411–15.Google Scholar
48.Dobbing, J, Sands, J. Quantitative growth and development of human brain. Arch Dis Child. 1973;48(10):757–67.Google Scholar
49.Andersen, SL. Trajectories of brain development: point of vulnerability or window of opportunity? Neurosci Biobehav Rev. 2003;27(1–2):318.Google Scholar
50.Andersen, SL, Navalta, CP. Altering the course of neurodevelopment: a framework for understanding the enduring effects of psychotropic drugs. Int J Dev Neurosci. 2004;22(5–6):423–40.Google Scholar
51.Anand, KJ, Garg, S, Rovnaghi, CR, et al. Ketamine reduces the cell death following inflammatory pain in newborn rat brain. Pediatr Res. 2007;62(3):283–90.Google Scholar
52.Shih, J, May, LD, Gonzalez, HE, et al. Delayed environmental enrichment reverses sevoflurane-induced memory impairment in rats. Anesthesiology. 2012;116(3):586602.Google Scholar
53.Liu, JR, Liu, Q, Li, J, et al. Noxious stimulation attenuates ketamine-induced neuroapoptosis in the developing rat brain. Anesthesiology. 2012;117(1):6471.Google Scholar
54.Davidson, A, Flick, RP. Neurodevelopmental implications of the use of sedation and analgesia in neonates. Clin Perinatol. 2013;40(3):559–73.Google Scholar
55.McCann, ME, Bellinger, DC, Davidson, AJ, Soriano, SG. Clinical research approaches to studying pediatric anesthetic neurotoxicity. Neurotoxicology. 2009;30(5):766–71.Google Scholar
56.Jacobson, JL, Jacobson, SW. Methodological issues in research on developmental exposure to neurotoxic agents. Neurotoxicol Teratol. 2005;27(3):395406.Google Scholar
57.Susser, E, Bresnahan, M. Epidemiologic approaches to neurodevelopmental disorders. Mol Psychiatry. 2002;7(Suppl 2):S2–3.Google Scholar
58.Winneke, G. Appraisal of neurobehavioral methods in environmental health research: the developing brain as a target for neurotoxic chemicals. Int J Hyg Environ Health. 2007;210(5):601–9.Google Scholar
59.Laing, S, Walker, K, Ungerer, J, Badawi, N, Spence, K. Early development of children with major birth defects requiring newborn surgery. J Paediatr Child Health. 2011;47(3):140–7.Google Scholar
60.Gischler, SJ, Mazer, P, Duivenvoorden, HJ, et al. Interdisciplinary structural follow-up of surgical newborns: a prospective evaluation. J Pediatr Surg. 2009;44(7):1382–9.Google Scholar
61.Ludman, L, Spitz, L, Lansdown, R. Intellectual development at 3 years of age of children who underwent major neonatal surgery. J Pediatr Surg. 1993;28(2):130–4.Google Scholar
62.Walker, K, Halliday, R, Holland, AJ, Karskens, C, Badawi, N. Early developmental outcome of infants with infantile hypertrophic pyloric stenosis. J Pediatr Surg. 2010;45(12):2369–72.Google Scholar
63.Anand, KJ, Barton, BA, McIntosh, N, et al. Analgesia and sedation in preterm neonates who require ventilatory support: results from the NOPAIN trial. Neonatal Outcome and Prolonged Analgesia in Neonates. Arch Pediatr Adolesc Med. 1999;153(4):331–8.Google Scholar
64.Wilder, RT, Flick, RP, Sprung, J, et al. Early exposure to anesthesia and learning disabilities in a population-based birth cohort. Anesthesiology. 2009;110(4):796804.Google Scholar
65.Flick, RP, Katusic, SK, Colligan, RC, et al. Cognitive and behavioral outcomes after early exposure to anesthesia and surgery. Pediatrics. 2011;128(5):e1053–61.Google Scholar
66.Sprung, J, Flick, RP, Katusic, SK, et al. Attention-deficit/hyperactivity disorder after early exposure to procedures requiring general anesthesia. Mayo Clin Proc. 2012;87(2):120–9.Google Scholar
67.Ing, C, DiMaggio, C, Whitehouse, A, et al. Long-term differences in language and cognitive function after childhood exposure to anesthesia. Pediatrics. 2012;130(3):e476–85.Google Scholar
68.DiMaggio, C, Sun, LS, Kakavouli, A, Byrne, MW, Li, G. A retrospective cohort study of the association of anesthesia and hernia repair surgery with behavioral and developmental disorders in young children. J Neurosurg Anesthesiol. 2009;21(4):286–91.Google Scholar
69.DiMaggio, C, Sun, LS, Li, G. Early childhood exposure to anesthesia and risk of developmental and behavioral disorders in a sibling birth cohort. Anesth Analg. 2011;113(5):1143–51.Google Scholar
70.Hansen, TG, Pedersen, JK, Henneberg, SW, et al. Academic performance in adolescence after inguinal hernia repair in infancy: a nationwide cohort study. Anesthesiology. 2011;114(5):1076–85.Google Scholar
71.Block, RI, Thomas, JJ, Bayman, EO, et al. Are anesthesia and surgery during infancy associated with altered academic performance during childhood? Anesthesiology. 2012;117(3):494503.Google Scholar
72.O’Leary, JD, Janus, M, Duku, E, et al. A population-based study evaluating the association between surgery in early life and child development at primary school entry. Anesthesiology. 2016;125(2):272–9.Google Scholar
73.Glazt, P, Sandin, RH, Pedersen, NL, et al. Association of anesthesia and surgery during childhood with long-term academic performance. JAMA Pediatr. 2016;171(1):e163470.Google Scholar
74.Davidson, AJ, Disma, N, de Graaff, JC, et al. Neurodevelopmental outcome at 2 years of age after general anaesthesia and awake-regional anaesthesia in infancy (GAS): an international multicentre, randomised controlled trial. Lancet. 2015;387:239–50.Google Scholar
75.Sun, LS, Li, G, Miller, TL, et al. Association between a single general anesthesia exposure before age 36 months and neurocognitive outcomes in later childhood. JAMA. 2016;315(21):2312–20.Google Scholar
76.Anand, KJ. Anesthetic neurotoxicity in newborns: should we change clinical practice? Anesthesiology. 2007;107(1):24.Google Scholar
77.Food and Drug Administration. Anesthetic and life support drugs: advisory committee meeting, 2007. Available at: www.fda.gov/ohrms/dockets/ac/07/transcripts/2007-4285t1.pdf.Google Scholar
78.Food and Drug Administration. FDA review results in new warnings about using general anesthetics and sedation drugs in young children and pregnant women. Drug Safety Communication, 2016.Google Scholar
79.Food and Drug Administration. Anesthesia: is it safe for young brains?, 2016. Available at: www.fda.gov/forconsumers/consumerupdates/ucm364078.htm.Google Scholar
81.Litman, RS, Perkins, FM, Dawson, SC. Parental knowledge and attitudes toward discussing the risk of death from anesthesia. Anesth Analg. 1993;77(2):256–60.Google Scholar
82.Wisselo, TL, Stuart, C, Muris, P. Providing parents with information before anaesthesia: what do they really want to know? Paediatr Anaesth. 2004;14(4):299307.Google Scholar
83.Fortier, MA, Chorney, JM, Rony, RY, et al. Children’s desire for perioperative information. Anesth Analg. 2009;109(4):1085–90.Google Scholar
84.Nemergut, ME, Aganga, D, Flick, RP. Anesthetic neurotoxicity: what to tell the parents? Paediatr Anaesth. 2014;24(1):120–6.Google Scholar

References

1.Lee, JH, Zhang, J, Wei, L, Yu, SP. Neurodevelopmental implications of the general anesthesia in neonate and infants. Exp Neurol. 2015;272:5060.Google Scholar
2.Flick, RP, Nemergut, ME, Christensen, K, Hansen, TG. Anesthetic-related neurotoxicity in the young and outcome measures: the devil is in the details. Anesthesiology. 2014;120(6):1303–5.Google Scholar
3.Flick, RP, Katusic, SK, Colligan, RC, et al. Cognitive and behavioral outcomes after early exposure to anesthesia and surgery. Pediatrics. 2011;128(5):e1053–61.Google Scholar
4.Ing, CH, DiMaggio, CJ, Malacova, E, et al. Comparative analysis of outcome measures used in examining neurodevelopmental effects of early childhood anesthesia exposure. Anesthesiology. 2014;120(6):1319–32.Google Scholar
5.Esencan, E, Yuksel, S, Tosun, YB, et al. XENON in medical area: emphasis on neuroprotection in hypoxia and anesthesia. Med Gas Res. 2013;3(1):4.Google Scholar
6.Reinelt, H, Marx, T, Kotzerke, J, et al. Hepatic function during xenon anesthesia in pigs. Acta Anaesthesiol Scand. 2002;46(6):713–16.Google Scholar
7.Bedi, A, Murray, JM, Dingley, J, Stevenson, MA, Fee, JP. Use of xenon as a sedative for patients receiving critical care. Crit Care Med. 2003;31(10):2470–7.Google Scholar
8.Lane, GA, Nahrwold, ML, Tait, AR, et al. Anesthetics as teratogens: nitrous oxide is fetotoxic, xenon is not. Science. 1980;210(4472):899901.Google Scholar
9.Franks, NP, Dickinson, R, de Sousa, SL, Hall, AC, Lieb, WR. How does xenon produce anaesthesia? Nature. 1998;396(6709):324.Google Scholar
10.Giacalone, M, Abramo, A, Giunta, F, Forfori, F. Xenon-related analgesia: a new target for pain treatment. Clin J Pain. 2013;29(7):639–43.Google Scholar
11.Goto, T, Suwa, K, Uezono, S, et al. The blood-gas partition coefficient of xenon may be lower than generally accepted. Br J Anaesth. 1998;80(2):255–6.Google Scholar
12.Sanders, RD, Franks, NP, Maze, M. Xenon: no stranger to anaesthesia. Br J Anaesth. 2003;91(5):709–17.Google Scholar
13.Goto, T, Saito, H, Shinkai, M, et al. Xenon provides faster emergence from anesthesia than does nitrous oxide–sevoflurane or nitrous oxide–isoflurane. Anesthesiology. 1997;86(6):1273–8.Google Scholar
14.Nakata, Y, Goto, T, Morita, S. Comparison of inhalation inductions with xenon and sevoflurane. Acta Anaesthesiol Scand. 1997;41(9):1157–61.Google Scholar
15.Coburn, M, Kunitz, O, Baumert, JH, et al. Randomized controlled trial of the haemodynamic and recovery effects of xenon or propofol anaesthesia. Br J Anaesth. 2005;94(2):198202.Google Scholar
16.Luttropp, HH, Romner, B, Perhag, L, et al. Left ventricular performance and cerebral haemodynamics during xenon anaesthesia: a transoesophageal echocardiography and transcranial Doppler sonography study. Anaesthesia. 1993;48(12):1045–9.Google Scholar
17.Stowe, DF, Rehmert, GC, Kwok, WM, et al. Xenon does not alter cardiac function or major cation currents in isolated guinea pig hearts or myocytes. Anesthesiology. 2000;92(2):516–22.Google Scholar
18.Baumert, JH, Falter, F, Eletr, D, et al. Xenon anaesthesia may preserve cardiovascular function in patients with heart failure. Acta Anaesthesiol Scand. 2005;49(6):743–9.Google Scholar
19.Devroe, S, Lemiere, J, Van de Velde, M, et al. Safety and feasibility of xenon as an adjuvant to sevoflurane anaesthesia in children undergoing interventional or diagnostic cardiac catheterization: study protocol for a randomised controlled trial. Trials. 2015;16(1):74.Google Scholar
20.Dingley, J, Tooley, J, Porter, H, Thoresen, M. Xenon provides short-term neuroprotection in neonatal rats when administered after hypoxia-ischemia. Stroke. 2006;37(2):501–6.Google Scholar
21.Ma, D, Hossain, M, Pettet, GK, et al. Xenon preconditioning reduces brain damage from neonatal asphyxia in rats. J Cereb Blood Flow Metab. 2006;26(2):199208.Google Scholar
22.Dingley, J, Tooley, J, Liu, X, et al. Xenon ventilation during therapeutic hypothermia in neonatal encephalopathy: a feasibility study. Pediatrics. 2014;133(5):809–18.Google Scholar
23.Lachmann, B, Armbruster, S, Schairer, W, et al. Safety and efficacy of xenon in routine use as an inhalational anaesthetic. Lancet. 1990;335(8703):1413–15.Google Scholar
24.Haseneder, R, Kratzer, S, Kochs, E, et al. The xenon-mediated antagonism against the NMDA receptor is non-selective for receptors containing either NR2A or NR2B subunits in the mouse amygdala. Eur J Pharmacol. 2009;619(1–3):33–7.Google Scholar
25.de Rossi, LW, Horn, NA, Baumert, JH, et al. Xenon does not affect human platelet function in vitro. Anesth Analg. 2001;93(3):635–40.Google Scholar
26.Chan, CM, Mitchell, AL, Shorr, AF. Etomidate is associated with mortality and adrenal insufficiency in sepsis: a meta-analysis. Crit Care Med. 2012;40:2945–53.Google Scholar
27.Rodríguez-Navarro, AJ, Berde, CB, Wiedmaier, G, et al. Comparison of neosaxitoxin versus bupivacaine via port infiltration for postoperative analgesia following laparoscopic cholecystectomy: a randomized, double-blind trial. Regional Anesthes Pain Med 2011;36:103–9.Google Scholar

References

1.Kochanek, PM, Carney, N, Adelson, PD, et al. Guidelines for the acute medical management of severe traumatic brain injury in infants, children, and adolescents: second edition. Pediatr Crit Care Med. 2012;13(S1):S1–82.Google Scholar
2.Sigl, JC, Chamoun, NG. An introduction to bispectral analysis for the electroencephalogram. J Clin Monit. 1994;10(6):392404.Google Scholar
3.Sadhasivam, S, Ganesh, A, Robison, A, Kaye, R, Watcha, MF. Validation of the bispectral index monitor for measuring depth of sedation in children. Anesth Analg. 2006;102(2):383–8.Google Scholar
4.Denman, WT, Swanson, EL, Rosow, D, et al. Pediatric evaluation of the bispectral index (BIS) monitor and correlation of BIS with end-tidal sevoflurane concentration in infants and children. Anesth Analg. 2000;90(4):872–7.Google Scholar
5.Choudhry, DK, Brenn, BR. Bispectral index monitoring: a comparison between normal children and children with quadriplegic cerebral palsy. Anesth Analg. 2002;95(6):1582–5.Google Scholar
6.Malviya, S, Voepel-Lewis, T, Tait, AR, et al. Effect of age and sedative agent on the accuracy of bispectral index in detecting depth of sedation in children. Pediatrics. 2007;120(3):461–70.Google Scholar
7.Myles, PS, Leslie, K, McNeil, J, Forbes, A, Chan, MT. Bispectral index monitoring to prevent awareness during anaesthesia: the B-Aware randomised controlled trial. Lancet. 2004;363(9423):1757–63.CrossRefGoogle ScholarPubMed
8.Avidan, MS, Zhang, L, Burnside, BA, et al. Anesthesia awareness and the bispectral index. NEJM. 2008;358:1097–108.CrossRefGoogle ScholarPubMed
9.Avidan, MS, Jacobsohn, E, Glick, D, et al. Prevention of intraoperative awareness in a high-risk surgical population. NEJM. 2011;365:591600.Google Scholar
10.Davidson, AJ, Huang, GH, Czarnecki, C, et al. Awareness during anesthesia in children: a prospective cohort study. Anesth Analg. 2005;100(3):653–61.Google Scholar
11.Tortoriello, TA, Stayer, SA, Mott, AR, et al. A noninvasive estimation of mixed venous oxygen saturation using near-infrared spectroscopy by cerebral oximetry in pediatric cardiac surgery patients. Paediatr Anaesth. 2005;15:495503.CrossRefGoogle ScholarPubMed
12.Gottlieb, EA, Fraser, CD Jr., Andropoulos, DB, Diaz, LK. Bilateral monitoring of cerebral oxygen saturation results in recognition of aortic cannula malposition during pediatric congenital heart surgery. Paediatr Anaesth. 2006;16(7):787–9.Google Scholar
13.Kurth, CD, Steven, JM, Nicolson, SC. Cerebral oxygenation during pediatric cardiac surgery using deep hypothermic circulatory arrest. Anesthesiology. 1995;82(1):7482.CrossRefGoogle ScholarPubMed
14.Burrows, FA, Bissonnette, B. Monitoring the adequacy of cerebral perfusion during cardiopulmonary bypass in children using transcranial Doppler technology. J Neurosurg Anesthesiol. 1993;5(3):209–12.Google Scholar
15.Kontos, HA. Validity of cerebral arterial blood flow calculations from velocity measurements. Stroke. 1989;20(1):13.Google Scholar
16.O’Brien, JJ, Butterworth, J, Hammon, JW, et al. Cerebral emboli during cardiac surgery in children. Anesthesiology. 1997;87(5):1063–9.Google Scholar
17.Shen, Q, Stuart, J, Venkatesh, B, et al. Inter observer variability of the transcranial Doppler ultrasound technique: impact of lack of practice on the accuracy of measurement. J Clin Monit Comput. 1999;15(3–4):179–84.Google Scholar
18.Nuwer, MR, Dawson, EG, Carlson, LG, Kanim, LE, Sherman, JE. Somatosensory evoked potential spinal cord monitoring reduces neurologic deficits after scoliosis surgery: results of a large multicenter survey. Electroencephalogr Clin Neurophysiol. 1995;96(1):611.Google Scholar
19.Hyun, SJ, Rhim, SC, Kang, JK, Hong, SH, Park, BR. Combined motor- and somatosensory-evoked potential monitoring for spine and spinal cord surgery: correlation of clinical and neurophysiological data in 85 consecutive procedures. Spinal Cord. 2009;47(8):616–22.Google Scholar
20.Meakin, GH. Neuromuscular blocking drugs in infants and children. Contin Educ Anaesth Crit Care Pain. 2007;7:143–7.CrossRefGoogle Scholar
21.Goudzousian, NG. Maturation of neuromuscular transmission in the infant. Br J Anaesth. 1980;52:205–14.Google Scholar
22.Goudzousian, NG, Crone, RK, Todres, ID. Recovery from pancuronium blockade in the neonatal intensive care unit. Br J Anaesth. 1981;53:1303–9.Google Scholar
23.Gwinnutt, CL, Meakin, G. Use of the post-tetanic count to monitor recovery from intense neuromuscular blockade in children. Br J Anaesth. 1988;61:547–50.Google Scholar
24.Kliegman, RM, Stanton, B, St. Geme, J, Schor, N, Behrman, R. Nelson Textbook of Pediatrics, 19th edn. Philadelphia, PA: Elsevier Saunders; 2011.Google Scholar
25.Manecke, GR Jr., Nemirov, MA, Bicker, AA, Adsumelli, RN, Poppers, PJ. The effect of halothane on the amplitude and frequency characteristics of heart sounds in children. Anesth Analg. 1999;88(2):263–7.Google Scholar
26.Nezfati, MH, Soltani, G, Kahrom, M. Esophageal stethoscope: an old tool with a new role, detection of residual flow during video-assisted thoracoscopic patent ductus arteriosus closure. J Pediatr Surg. 2010;45(11):2141–5.Google Scholar
27.Doniger, SJ, Sharieff, GQ. Pediatric dysrhythmias. Pediatr Clin North Am. 2006;53(1):85105.Google Scholar
28.Karvonen, MJ, Telivuo, LJ, Jaervinen, EJ. Sphygmomanometer cuff size and the accuracy of indirect measurement of blood pressure. Am J Cardiol. 1964;13:688–93.CrossRefGoogle Scholar
29.Arafat, M, Mattoo, TK. Measurement of blood pressure in children: recommendations and perceptions on cuff selection. Pediatrics. 1999;104:e30.Google Scholar
30.Ganesh, A, Kaye, R, Cahill, AM, et al. Evaluation of ultrasound-guided radial artery cannulation in children. Pediatr Crit Care Med. 2009;10(1):45–8.Google Scholar
31.Ishii, S, Shime, N, Shibasaki, M, Sawa, T. Ultrasound-guided radial artery catheterization in infants and small children. Pediatr Crit Care Med. 2013;14(5):471–3.Google Scholar
32.Schwemmer, U, Arzet, HA, Trautner, H, et al. Ultrasound-guided arterial cannulation in infants improves success rate. Eur J Anaesth. 2006;23(6):476–80.Google Scholar
33.Lo, RN, Leung, MP, Lau, KC, Yeung, CY. Abnormal radial artery in Down’s syndrome. Arch Dis Child. 1986;61(9):885–90.Google Scholar
34.Schindler, E, Kowald, B, Suess, H, et al. Catheterization of the radial or brachial artery in neonates and infants. Paediatr Anaesth. 2005;15(8):677–82.Google Scholar
35.Green, C, Yohannan, MD. Umbilical arterial and venous catheters: placement, use, and complications. Neonatal Netw. 1998;17(6):23–8.Google Scholar
36.Furfaro, S, Gauthier, M, Lacroix, J, et al. Arterial catheter-related infections in children: a 1-year cohort analysis. Am J Dis Child. 1991;145(9):1037–43.Google Scholar
37.Ducharme, FM, Gauthier, M, Lacroix, J, Lafleur, L. Incidence of infection related to arterial catheterization in children: a prospective study. Crit Care Med. 1988;16(3):272–6.Google Scholar
38.Band, JD, Maki, DG. Infections caused by arterial catheters used for hemodynamic monitoring. Am J Med. 1979;67(5):735–41.Google Scholar
39.Miyasaka, K, Edmonds, JF, Conn, AW. Complications of radial artery lines in the paediatric patient. Can Anaesth Soc J. 1976;23(1):914.Google Scholar
40.Verghese, ST, McGill, WA, Patel, RI, et al. Ultrasound-guided internal jugular venous cannulation in infants: a prospective comparison with the traditional palpation method. Anesthesiology. 1999;91(1):71–7.Google Scholar
41.Chuan, WX, Wei, W, Yu, L. A randomized-controlled study of ultrasound prelocation vs anatomical landmark-guided cannulation of the internal jugular vein in infants and children. Paediatr Anaesth. 2005;15(9):733–8.Google Scholar
42.Shefler, A, Gillis, J, Lam, A, et al. Inferior vena cava thrombosis as a complication of femoral vein catheterization. Arch Dis Child. 1995;72(4):343–5.Google Scholar
43.Marik, PE, Baram, M, Vahid, B. Does central venous pressure predict fluid responsiveness? A systematic review of the literature and the tale of seven mares. Chest. 2008;134(1):172–8.Google Scholar
44.Damen, J, Wever, JE. The use of balloon-tipped pulmonary artery catheters in children undergoing cardiac surgery. Intensive Care Med. 1987;13(4):266–72.Google Scholar
45.Perkin, RM, Anas, N. Pulmonary artery catheters. Pediatr Crit Care Med. 2011;12(Suppl. 4):S12–20.Google Scholar
46.Bettex, DA, Schmidlin, D, Bernath, MA, et al. Intraoperative transesophageal echocardiography in pediatric congenital cardiac surgery: a two-center observational study. Anesth Analg. 2003;97(5):1275–82.Google Scholar
47.Cote, CJ, Zaslavsky, A, Downes, JJ, et al. Postoperative apnea in former preterm infants after inguinal herniorrhaphy: a combined analysis. Anesthesiology. 1995;82(4):809–22.Google Scholar
48.Cote, CJ, Goldstein, EA, Cote, MA, Hoaglin, DC, Ryan, JF. A single-blind study of pulse oximetry in children. Anesthesiology. 1988;68(2):184–8.Google Scholar
49.Cote, CJ, Rolf, N, Liu, LM, et al. A single-blind study of combined pulse oximetry and capnography in children. Anesthesiology. 1991;74(6):980–7.Google Scholar
50.Ralston, AC, Webb, RK, Runciman, WB. Potential errors in pulse oximetry: III. Effects of interferences, dyes, dyshaemoglobins and other pigments. Anaesthesia. 1991;46(4):291–5.Google Scholar
51.Cote, CJ, Goldstein, EA, Fuchsman, WH, Hoaglin, DC. The effect of nail polish on pulse oximetry. Anesth Analg. 1988;67(7):683–6.Google Scholar
52.van Oostrom, JH, Mahla, ME, Gravenstein, D. The Stealth Station Image Guidance System may interfere with pulse oximetry. Can J Anaesth. 2005;52(4):379–82.Google Scholar
53.Annabi, EH, Barker, SJ. Severe methemoglobinemia detected by pulse oximetry. Anesth Analg. 2009;108(3):898–9.Google Scholar
54.Suner, S, Partridge, R, Sucov, A, et al. Non-invasive pulse CO-oximetry screening in the emergency department identifies occult carbon monoxide toxicity. J Emerg Med. 2008;34(4):441–50.Google Scholar
55.Webb, RK, Ralston, AC, Runciman, WB. Potential errors in pulse oximetry: II. Effects of changes in saturation and signal quality. Anaesthesia. 1991;46(3):207–12.Google Scholar
56.Rüegger, C, Bucher, HU, Mieth, RA. Pulse oximetry in the newborn: is the left hand pre- or post-ductal? BMC Pediatr. 2010;10:35.Google Scholar
57.Mason, KP, Burrows, PE, Dorsey, MM, Zurakowski, D, Krauss, B. Accuracy of capnography with a 30 foot nasal cannula for monitoring respiratory rate and end-tidal CO2 in children. J Clin Monit. 2000;16:259–62.Google Scholar
58.Williamson, JA, Webb, RK, Cockings, J, Morgan, C. The Australian Incident Monitoring Study: the capnograph – applications and limitations. An analysis of 2000 incident reports. Anaesth Intensive Care. 1993;21(5):551–7.Google Scholar
59.Westhorpe, RN, Ludbrook, GL, Helps, SC. Crisis management during anaesthesia: bronchospasm. Qual Saf Health Care. 2005;14:e7.Google Scholar
60.Baudendistel, L, Goudsouzian, N, Cote, C, Strafford, M. End-tidal CO2 monitoring: its use in the diagnosis and management of malignant hyperthermia. Anaesthesia. 1984;39(10):1000–3.Google Scholar
61.Cote, CJ, Liu, LM, Szyfelbein, SK, et al. Intraoperative events diagnosed by expired carbon dioxide monitoring in children. Can Anaesth Soc J. 1986;33(3 Pt 1):315–20.Google Scholar
62.Badgwell, JM, McLeod, ME, Lerman, J, Creighton, RE. End-tidal PCO2 measurements sampled at the distal and proximal ends of the endotracheal tube in infants and children. Anesth Analg. 1987;66(10):959–64.Google Scholar
63.Matjasko, J, Petrozza, P, Mackenzie, CF. Sensitivity of end-tidal nitrogen in venous air embolism detection in dogs. Anesthesiology. 1985;63(4):418–23.Google Scholar
64.Nilsson, K. Maintenance and monitoring of body temperature in infants and children. Paediatr Anaesth. 1991;1:1320.Google Scholar
65.Burgess, GE 3rd, Cooper, JR, Marino, RJ, Peuler, MJ. Continuous monitoring of skin temperature using a liquid-crystal thermometer during anesthesia. South Med J. 1978;71:516–18.Google Scholar
66.Cork, RC, Vaughan, RW, Humphrey, LS. Precision and accuracy of intraoperative temperature monitoring. Anesth Analg. 1983;62:211–14.Google Scholar
67.Bissonnette, B, Sessler, DI, LaFlamme, P. Intraoperative temperature monitoring sites in infants and children and the effect of inspired gas warming on esophageal temperature. Anesth Analg. 1989;69:192–6.Google Scholar
68.Jay, O, Molgat-Seon, Y, Chou, S, Murto, K. Skin temperature over the carotid artery provides an accurate noninvasive estimation of core temperature in infants and young children during general anesthesia. Pediatr Anesth. 2013;23(12):1109–16.Google Scholar
69.Moorthy, SS, Winn, BA, Jallard, MS, et al. Monitoring urinary bladder temperature. Heart Lung. 1985:14:90–3.Google Scholar
70.Benzinger, TH. Heat regulation: homeostasis of central temperature in man. Physiol Rev. 1969;49:671759.Google Scholar

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