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6 - Genetic influences in the development of eating disorders

from Part II - Scientific underpinnings

Published online by Cambridge University Press:  02 December 2009

Brett McDermott
Affiliation:
University of Queensland
Shani Leor
Affiliation:
Schneider Children's Medical Center, Petach Tikva, Israel
Orit Krispin
Affiliation:
Schneider Children's Medical Center, Petach Tikva, Israel
Alan Apter
Affiliation:
Schneider Children's Medical Center, Petach Tikva, Israel
Tony Jaffa
Affiliation:
Phoenix Centre, Cambridge
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Summary

Introduction

Eating disorders (EDs) presenting in childhood are complex conditions. Current aetiological models thus emphasize multifactorial determinants. This chapter focuses on the genetic factors influencing the development of EDs. Further details can be found in this volume on family factors (see Lock & Couturier, Chapter 19), individual factors (see Bryant-Waugh, Chapter 9; Hay & McDermott, Chapter 18) and environmental issues including emotional trauma (see Brewerton, Chapter 13).

Evidence of genetic influences

Family and twin studies

Family studies have shown that anorexia nervosa (AN) is more common among relatives of probands than among relatives of normal controls or among relatives of non-anorexic psychiatric patients (reviewed in Gorwood et al., 2003). Similarly, studies on probands with bulimia nervosa (BN) have shown higher rates of BN among first-degree relatives (Strober et al., 2000).

Twin studies have been used to distinguish between the genetic and the environmental contributions to the familial liability observed in EDs. About 38–55% of the identical (monozygotic, MZ) twins described in the literature were concordant for AN (Kipman et al., 1999). This rate is greater than would be expected from prevalence data, and is also much higher than the fraternal (dizygotic, DZ) twins concordance rate (0–11%). Systematic controlled twin studies have also reported a higher concordance rate among MZ twin sisters than among DZ (55–56% vs. 5–7%) (Holland et al., 1984, 1988).

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Publisher: Cambridge University Press
Print publication year: 2006

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References

Argyropolos, G., Rankinen, T., Neufeld, D. R.et al. (2002). A polymorphism in the human agouti-related protien is associated with late-onset obesity. Journal of Clinical Endocrinology and Metabolism, 87, 4198-202.CrossRefGoogle Scholar
Bergen, A. W., Bree, M. B. M., Yeager, M.et al. (2003a). Candidate genes for anorexia nervosa in the 1p33–36 linkage region: serotonin 1D and delta opioid receptor loci exhibit significant association to anorexia nervosa. Molecular Psychiatry, 8, 397–406.Google Scholar
Bergen, A. W., Yeager, M., Welch, R.et al.; The Price Foundation Collaborative Group (www.anbn.org) (2003b). Candidate gene analysis of the Price Foundation anorexia nervosa affected relative pair dataset. Current Drug Targets – CNS and Neurological Disorders, 2, 41–51.Google Scholar
Brewerton, T. D. (1995). Towards a unified theory of serotonin dysregulation in eating and related disorders. Psychoneuroendocrinology, 20, 561–90.CrossRefGoogle Scholar
Bruins-Slot, L., Gorwood, P., Bouvard, M.et al. (1998). Lack of association between anorexia nervosa and D3 dopamine receptor gene. Biological Psychiatry, 43, 76–8.CrossRefGoogle Scholar
Bulik, C. M. (1987). Drug and alcohol abuse by bulimic women and their families. American Journal of Psychiatry, 144, 1604–6.CrossRefGoogle Scholar
Bulik, C. M., Devlin, B., Bacanu, S. A.et al. (2003). Significant linkage on chromosome 10p in families with bulimia nervosa. American Journal of Human Genetics, 72, 200–7.CrossRefGoogle Scholar
Campbell, D. A., Sundaramurthy, D., Gordon, D., Markham, A. F. & Pieri, L. F. (1999). Association between a marker in the UCP-2/UCP-3 gene cluster and genetic susceptibility to anorexia nervosa. Molecular Psychiatry, 4, 68–70.CrossRefGoogle Scholar
Caspi, A., Moffitt, T. E., Cannon, M.et al. (2005). Moderation of the effect of adolescent-onset cannabis use on adult psychosis by a functional polymorphism in the catechol-O-methyltransferase gene: longitudinal evidence of a gene X environment interaction. Biological Psychiatry, 57, 1117–27.CrossRefGoogle Scholar
Cavallini, M. C., Bertelli, S., Chiapparino, D., Riboldi, S. & Bellodi, L. (2000). Complex segregation analysis of obsessive-compulsive disorder in 141 families of eating disorder probands, with and without obsessive-compulsive disorder. American Journal of Medical Genetics, 96, 384–91.3.0.CO;2-P>CrossRefGoogle Scholar
Devlin, B., Bacanu, S. A., Klump, K. L.et al. (2002). Linkage analysis of anorexia nervosa incorporating behavioral covariates. Human Molecular Genetics, 11, 689–96.CrossRefGoogle Scholar
Eastwood, H., Brown, K. M. O., Markovic, D. & Pieri, L. F. (2002). Variation in the ESR1 and ESR2 genes and genetic susceptibility to anorexia nervosa. Molecular Psychiatry, 7, 86–9.CrossRefGoogle Scholar
Frisch, A., Laufer, N., Danziger, Y.et al. (2001). Association of anorexia nervosa with the high activity allele of the COMT gene: a family-based study in Israeli patients. Molecular Psychiatry, 6, 243–5.CrossRefGoogle Scholar
Gabrovsek, M., Brecelj-Anderluh, M., Bellodi, L.et al. (2004). Combined family trio and case-control analysis of the COMT Val158Met polymorphism in European patients with anorexia nervosa. American Journal of Medical Genetics Part B (Neuropsychiatric Genetics), 124B, 68–74.CrossRefGoogle Scholar
Goodwin, G. M., Fairburn, C. G. & Cowen, P. J. (1987). Dieting changes serotonergic function in women, not in men: implications for etiology of anorexia nervosa. Psychological Medicine, 17, 839–42.CrossRefGoogle Scholar
Gorwood, P., Bouvard, M., Mouren-Siméoni, M. C., Kipman, A. & Ades, J. (1998). Genetics and anorexia nervosa: a review of candidate genes. Psychiatric Genetics, 8, 1–12.CrossRefGoogle Scholar
Gorwood, P., Kipman, A. & Foulon, C. (2003). The human genetics of anorexia nervosa. European Journal of Pharmacology, 480, 163–70.CrossRefGoogle Scholar
Grice, D. E., Halmi, K. A., Fichter, M. M.et al. (2002). Evidence for a susceptibility gene for anorexia nervosa on chromosome 1. American Journal of Human Genetics, 70, 787–92.CrossRefGoogle Scholar
Hebebrand, H. J. & Remschmidt, H. (1995). Anorexia nervosa viewed as an extreme weight condition: genetic implications. Human Genetics, 95, 1–11.CrossRefGoogle Scholar
Hinney, A., Friedel, S., Remschmidt, H. & Hebebrand, J. (2004). Genetic risk factors in eating disorders. American Journal of Pharmacogenomics, 4, 209–23.CrossRefGoogle Scholar
Hinney, A., Schneider, J., Ziegler, A.et al. (1999). No evidence for involvement of polymorphisms of the dopamine D4 receptor gene in anorexia nervosa, underweight, and obesity. American Journal of Medical Genetics, 88, 594–7.3.0.CO;2-F>CrossRefGoogle Scholar
Holland, A. J., Hall, A., Murray, R., Russell, G. F. M. & Crisp, A. H. (1984). Anorexia nervosa: a study of 34 twin pairs and one set of triplets. British Journal of Psychiatry, 145, 414–19.CrossRefGoogle Scholar
Holland, A. J., Sicote, N. & Treasure, J. (1988). Anorexia nervosa: evidence for a genetic basis. Journal of Psychosomatic Research, 32, 561–71.CrossRefGoogle Scholar
Hu, X., Giotakis, O., Li, T., Karwautz, A., Treasure, J. & Collier, D. A. (2003). Association of the 5-HT2c gene with susceptibility and minimum body mass index in anorexia nervosa. Neuroreport, 14, 781–3.CrossRefGoogle Scholar
Karwautz, A., Rabe-Hesketh, S., Hu, X.et al. (2001). Individual-specific risk factors for anorexia nervosa: a pilot study using a discordant sister-pair design. Psychological Medicine, 31, 317–29.CrossRefGoogle Scholar
Kaye, W. H. (1997). Anorexia nervosa, obsessional behavior, and serotonin. Psychopharmacology Bulletin, 33, 335–44.Google Scholar
Kaye, W. H., Frank, G. K. & McConaha, C. (1999). Altered dopamine activity after recovery from restricting-type anorexia nervosa. Neuropsychopharmacology, 21, 503–6.CrossRefGoogle Scholar
Kaye, W. H., Gwirtsman, H. E., George, D. T. & Ebert, M. H. (1991). Altered serotonin activity in anorexia nervosa after long-term weight restoration. Archives of General Psychiatry, 48, 556–62.CrossRefGoogle Scholar
Kaye, W. H., Gwirtsman, H. E., George, D. T., Jimerson, D. C. & Ebert, M. H. (1988). CSF 5-HIAA concentrations in anorexia nervosa: reduced values in underweight subjects normalize after weight gain. Biological Psychiatry, 23, 102–5.Google Scholar
Kendler, K. S., MacLean, C., Neale, M., Kessler, R., Heath, A. & Eaves, L. (1991). The genetic epidemiology of bulimia nervosa. American Journal of Psychiatry, 148, 1627–37.CrossRefGoogle Scholar
Kendler, K. S., Walters, E. E., Neale, M. C., Kessler, R. C., Heath, A. C. & Eaves, L. J. (1995). The structure of the genetic and environment risk factors for six major psychiatric disorders in women. Archives of General Psychiatry, 52, 374–83.CrossRefGoogle Scholar
Kipman, A., Bruins-Slot, L., Boni, C.et al. (2002). 5-HT(2A) gene promoter polymorphism as a modifying rather than a vulnerability factor in anorexia nervosa. European Psychiatry, 7, 227–9.CrossRefGoogle Scholar
Kipman, A., Gorwood, P., Mouren-Siméoni, M. C. & Adès, J. (1999). Genetic factors in anorexia nervosa. European Psychiatry, 14, 189–98.CrossRefGoogle Scholar
Klump, K. L., Bulik, C. M., Pollice, C. M. P. H.et al. (2000a). Temperament and character in women with anorexia nervosa. Journal of Nervous and Mental Disorders, 188, 559–67.Google Scholar
Klump, K. L., Holly, A., Iacono, W. G., McGue, M. & Wilson, L. E. (2000b). Physical similarity and twin resemblance for eating attitudes and behaviors: a test of the equal environments assumption. Behavior Genetics, 30, 51–8.Google Scholar
Klump, K. L., McGue, M. & Iacono, W. G. (2000c). Age differences in genetic and environmental influences on eating attitudes and behaviors in preadolescent and adolescent twins. Journal of Abnormal Psychology, 109, 239–51.Google Scholar
Koizumi, H., Hashimoto, K., Itoh, K.et al. (2004). Association between the brain-derived neurotrophic factor 196G/A polymorphism and eating disorders. American Journal of Medical Genetics Part B (Neuropsychiatric Genetics), 127B, 125–7.CrossRefGoogle Scholar
Koronyo-Hamaoui, M., Danziger, Y., Frisch, A.et al. (2002). Association between anorexia nervosa and the hsKCa3 gene: a family-based and case control study. Molecular Psychiatry, 7, 82–5.CrossRefGoogle Scholar
Koronyo-Hamaoui, M., Gak, E., Stein, D.et al. (2004). CAG repeat polymorphism within the KCNN3 gene is a significant contributor to susceptibility to anorexia nervosa: a case-control study of female patients and several ethnic groups in the Israeli Jewish population. American Journal of Medical Genetics, Part B (Neuropsychiatric Genetics), 131B, 76–80.CrossRefGoogle Scholar
Lilenfeld, L. R., Kay, W. H., Greeno, C. G.et al. (1997). Psychiatric disorders in women with bulimia nervosa and their first-degree relatives: effects of comorbid substance dependence. International Journal of Eating Disorders, 22, 253–64.3.0.CO;2-M>CrossRefGoogle Scholar
Lilenfeld, L. R., Kay, W. H., Greeno, C. G.et al. (1998). A controlled family study of anorexia nervosa and bulimia nervosa: psychiatric disorders in first-degree relatives and effects of proband comorbidity. Archives of General Psychiatry, 55, 603–10.CrossRefGoogle Scholar
Lilenfeld, L. R., Stein, D., Bulik, C. M.et al. (2000). Personality traits among currently eating disordered, recovered and never ill first-degree female relatives of bulimic and control women. Psychological Medicine, 30, 1399–410.CrossRefGoogle Scholar
Nishiguchi, N., Matsushita, S., Suzuki, K., Murayama, M., Shirakawa, O. & Higuchi, S. (2001). Association between 5HT2A receptor gene promoter region polymorphism and eating disorders in Japanese patients. Biological Psychiatry, 50, 123–8.CrossRefGoogle Scholar
Price, R. A., Li, W. D., Bernstein, A.et al. (2001). A locus affecting obesity in human chromosome region 10p12. Diabetologia, 44, 363–6.CrossRefGoogle Scholar
Reichborn-Kjennerud, T., Bulik, C. M., Tambs, K. & Harris, J. R. (2004). Genetic and environmental influences on binge eating in the absence of compensatory behaviors: a population-based twin study. International Journal of Eating Disorders, 36, 307–14.CrossRefGoogle Scholar
Ribases, M., Gratacos, M., Armengol, L.et al. (2003). Met66 in the brain-derived neurotrophic factor (BDNF) precursor is associated with anorexia nervosa restrictive type. Molecular Psychiatry, 8, 745–51.CrossRefGoogle Scholar
Ribases, M., Gratacos, M., Fernandez-Aranda, F.et al. (2004). Association of BDNF with anorexia, bulimia and age of onset of weight loss in six European populations. Human Molecular Genetics, 13, 1205–12.CrossRefGoogle Scholar
Ricca, V., Nacmias, B., Boldrini, M.et al. (2004). Psychopathological traits and 5-HT2A receptor promoter polymorphism (-1438 G/A) in patients suffering from Anorexia Nervosa and Bulimia Nervosa. Neuroscientific Letters, 365, 92–6.CrossRefGoogle Scholar
Rivinus, T. M., Biederman, J., Herzog, D. B.et al. (1984). Anorexia nervosa and affective disorders: a controlled family history study. American Journal of Psychiatry, 141, 1414–18.CrossRefGoogle Scholar
Rosenkranz, K., Hinney, A., Ziegler, A.et al. (1998). Systematic mutation screening of the estrogen receptor beta gene in probands of different weight extremes: identification of several genetic variants. Journal of Clinical Endocrinology and Metabolism, 83, 4524–7.CrossRefGoogle Scholar
Shinohara, M., Mizushima, H., Hirano, M.et al. (2004). Eating disorders with binge-eating behaviour are associated with the s allele of the 3′-UTR VNTR polymorphism of the dopamine transporter gene. Journal of Psychiatry and Neurosciences, 29, 134–7.Google Scholar
Stein, D., Lilenfeld, L., Plotnicov, K.et al. (1999). Familial aggregation of eating disorders: results from a controlled family study of bulimia nervosa. International Journal of Eating Disorders, 26, 211–15.3.0.CO;2-0>CrossRefGoogle Scholar
Strober, M., Freeman, R., Lampert, C., Diamond, J. & Kaye, W. (2000). Controlled family study of anorexia nervosa and bulimia nervosa: evidence of shared liability and transmission of partial syndromes. American Journal of Psychiatry, 157, 393–401.CrossRefGoogle Scholar
Strober, M., Lampert, C., Morrell, W., Burroughs, J. & Jacobs, C. (1990). A controlled family study of anorexia nervosa. Evidence of familial aggregation and lack of shared transmission with affective disorders. International Journal of Eating Disorders, 9, 239–53.Google Scholar
Urwin, R. E., Bennetts, B. H., Wilcken, M. B.et al. (2003). Gene-gene interaction between the monoamine oxidase A gene and solute carrier family 6 (neurotransmitter transporter, noradrenalin) member 2 gene in anorexia nervosa (restrictive subtype). European Journal of Human Genetics, 11, 945–50.CrossRefGoogle Scholar
Vink, T., Hinney, A., Elburg, A. A.et al. (2001). Association between an agouti-related protein gene polymorphism and anorexia nervosa. Molecular Psychiatry, 6, 325–8.CrossRefGoogle Scholar
Wade, T. D., Bulik, C. M., Neale, M. & Kendler, K. S. (2000). Anorexia nervosa and major depression: shared genetic and environmental risk factors. American Journal of Psychiatry, 157, 469–71.CrossRefGoogle Scholar
Walters, E. E. & Kendler, K. S. (1995). Anorexia nervosa and anorexic-like syndromes in a population-based female twin sample. American Journal of Psychiatry, 152, 64–71.CrossRefGoogle Scholar
Walters, E. E., Neale, M. C., Eaves, L. J., Heath, A. C., Kessler, R. C. & Kendler, K. S. (1992). Bulimia nervosa and major depression: a study of common genetic and environmental factors. Psychological Medicine, 22, 617–22.CrossRefGoogle Scholar
Westberg, L., Bah, J., Råstam, M.et al. (2002). Association between a polymorphism of the 5-HT2C receptor and weight loss in teenage girls. Neuropsychopharmacology, 26, 789–93.CrossRefGoogle Scholar
Woodside, D. B., Bulik, C. M., Halmi, K. A.et al. (2002). Personality, perfectionism, and attitudes toward eating in parents of individuals with eating disorders. International Journal of Eating Disorders, 31, 290–9.CrossRefGoogle Scholar
Young, J. K. (1990). Estrogen and the etiology of anorexia nervosa. Neuroscience and Biobehavioral Reviews, 15, 327–31.Google Scholar

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