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8 - Neuroimaging

from Part II - Scientific underpinnings

Published online by Cambridge University Press:  02 December 2009

Brett McDermott
Affiliation:
University of Queensland
Janet Treasure
Affiliation:
Guy's Hospital, London, UK
Hans-Christoph Friederich
Affiliation:
Heidelberg University, Heidelberg, Germany
Tony Jaffa
Affiliation:
Phoenix Centre, Cambridge
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Summary

Introduction

Neuroimaging studies have provided new insights in neural brain circuits and neuroreceptor functions of eating disorders and as a consequence have contributed to a change of the conceptual framework of the pathophysiology and aetiology of eating disorders. Most research has been collected for the two distinct DSM–IV defined eating disorders: anorexia (AN) and bulimia nervosa (BN). To our knowledge only three studies have specifically investigated teenagers with an eating disorder (Gordon et al., 1997; Chowdhury et al., 2003; Wagner et al., 2003), although in many studies a wide age range of the participants is found, including adolescents. This chapter is substantially based on findings in adulthood. Task and provocation using eating disorder-related stimulus material have been used to unravel the disorder-specific neural circuits. However, eating disorders show a high psychiatric comorbidity including depression, anxiety and obsessive-compulsive disorders. Therefore, overlap with other psychiatric disorders is likely and may impact on the interpretation of the findings.

Neural basis of hunger, satiety and reward value of food

Motivation for food intake and eating behaviour is not only dependent on internal factors sensing recent energy intake and energy homeostasis, but is also determined by the incentive value (‘wanting’) and hedonic pleasure (‘liking’) of food (Fig. 8.1). Motivational aspects of food intake involve higher mental processes such as emotional, motivational and cognitive processing, which are poorly understood (see also Mercer, Chapter 2).

Type
Chapter
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Publisher: Cambridge University Press
Print publication year: 2006

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References

Aron, A. R., Fletcher, P. C., Bullmore, E. T., Sahakian, B. J. & Robbins, T. W. (2003). Stop-signal inhibition disrupted by damage to right inferior frontal gyrus in humans. Nature Neuroscience, 6, 115–16.CrossRefGoogle Scholar
Bechara, A., Damasio, H. & Damasio, A. R. (2000). Emotion, decision making and the orbitofrontal cortex. Cerebral Cortex, 10, 295–307.CrossRefGoogle Scholar
Chowdhury, U., Gordon, I., Lask, B., Watkins, B., Watt, H. & Christie, D. (2003). Early-onset anorexia nervosa: is there evidence of limbic system imbalance?International Jownal of Eating Disorders, 33, 388–96.Google Scholar
Del Parigi, A., Gautier, J. F., Chen, K.et al. (2002). Neuroimaging and obesity: mapping the brain responses to hunger and satiation in humans using positron emission tomography. Annals of the New York Academies of Science, 967, 389–97.CrossRefGoogle Scholar
Ellison, Z., Foong, J., Howard, R., Bullmore, E., Williams, S. & Treasure, J. (1998). Functional anatomy of calorie fear in anorexia nervosa. Lancet, 352, 1192.CrossRefGoogle Scholar
Frank, G. K., Bailer, U. F., Henry, S., Wagner, A. & Kaye, W. H. (2004). Neuroimaging studies in eating disorders. CNS Spectra, 9, 539–48.Google Scholar
Frank, G. K., Bailer, U. F., Shannan, E. H.et al. (2005). Increased dopamine D2/D3 receptor binding after recovery from anorexia nervosa measured by positron emission tomography and [11C]Raclopride. Biological Psychiatry, 58, 908–12.CrossRefGoogle Scholar
Giordano, G. D., Renzetti, P., Parodi, R. C.et al. (2001). Volume measurement with magnetic resonance imaging of hippocampus-amygdala formation in patients with anorexia nervosa. Journal of Endocrinology Investigation, 24, 510–14.CrossRefGoogle Scholar
Golden, N. H., Ashtari, M., Kohn, M. R.et al. (1996). Reversibility of cerebral ventricular enlargement in anorexia nervosa, demonstrated by quantitative magnetic resonance imaging. Journal of Pediatrics, 128, 296–301.CrossRefGoogle Scholar
Gordon, I., Lask, B., Bryant-Waugh, R., Christie, D. & Timimi, S. (1997). Childhood-onset anorexia nervosa: towards identifying a biological substrate. International Journal of Eating Disorders, 22, 159–65.3.0.CO;2-E>CrossRefGoogle Scholar
Gordon, C. M., Dougherty, D. D., Fischman, A. J.et al. (2001). Neural substrates of anorexia nervosa: a behavioral challenge study with positron emission tomography. Journal of Pediatrics, 139, 51–7.CrossRefGoogle Scholar
Hoffman, G. W., Ellinwood, E. H. Jr., Rockwell, W. J., Herfkens, R. J., Nishita, J. K. & Guthrie, L. F. (1989). Cerebral atrophy in bulimia. Biological Psychiatry, 25, 894–902.CrossRefGoogle Scholar
Hoffman, G. W., Ellinwood, E. H. Jr., Rockwell, W. J., Herfkens, R. J., Nishita, J. K. & Guthrie, L. F. (1990). Brain T1 measured by magnetic resonance imaging in bulimia. Biological Psychiatry, 27, 116–19.CrossRefGoogle Scholar
Katzman, D. K., Lambe, E. K., Mikulis, D. J., Ridgley, J. N., Goldbloom, D. S. & Zipursky, R. B. (1996). Cerebral gray matter and white matter volume deficits in adolescent girls with anorexia nervosa. Journal of Pediatrics, 129, 794–803.CrossRefGoogle Scholar
Krieg, J. C., Backmund, H. & Pirke, K. M. (1987). Cranial computed tomography findings in bulimia. Acta Psychiatrica Scandinavica, 75, 144–9.CrossRefGoogle Scholar
Kringelbach, M. L. (2004). Food for thought: hedonic experience beyond homeostasis in the human brain. Neuroscience, 126, 807–19.CrossRefGoogle Scholar
Liu, Y., Gao, J. H., Liu, H. L. & Fox, P. T. (2000). The temporal response of the brain after eating revealed by functional MRI. Nature, 405, 1058–62.CrossRefGoogle Scholar
McGlynn, S. M. & Schacter, D. L. (1989). Unawareness of deficits in neuropsychological syndromes. Journal of Clinical Experimental Neuropsychology, 11, 143–205.CrossRefGoogle Scholar
Neumarker, K. J., Bzufka, W. M., Dudeck, U., Hein, J. & Neumarker, U. (2000). Are there specific disabilities of number processing in adolescent patients with anorexia nervosa? Evidence from clinical and neuropsychological data when compared to morphometric measures from magnetic resonance imaging. European Child and Adolescent Psychiatry, 9 (Suppl. 2), II111–II121.CrossRefGoogle Scholar
Nozoe, S., Naruo, T., Nakabeppu, Y., Soejima, Y., Nakajo, M. & Tanaka, H. (1993). Changes in regional cerebral blood flow in patients with anorexia nervosa detected through single photon emission tomography imaging. Biological Psychiatry, 34, 578–80.CrossRefGoogle Scholar
Paillard, J. (1991). Motor and representational framing of space. In Brain and Space, Paillard, J.Oxford: Oxford University Press, pp. 163–82.
Peters, A., Schweiger, U., Pellerin, L.et al. (2004). The selfish brain: competition for energy resources. Neuroscience and Biobehavioral Reviews, 28, 143–80.CrossRefGoogle Scholar
Rauch, S. L. (2000). Neuroimaging research and the neurobiology of obsessive-compulsive disorder: where do we go from here?Biological Psychiatry, 47, 168–70.Google Scholar
Rauch, S. L., Jenike, M. A., Alpert, N. M.et al. (1994). Regional cerebral blood flow measured during symptom provocation in obsessive-compulsive disorder using oxygen 15-labeled carbon dioxide and positron emission tomography. Archives in General Psychiatry, 51, 62–70.CrossRefGoogle Scholar
Roser, W., Bubl, R., Buergin, D., Seelig, J., Radue, E. W. & Rost, B. (1999). Metabolic changes in the brain of patients with anorexia and bulimia nervosa as detected by proton magnetic resonance spectroscopy. International Journal of Eating Disorders, 26, 119–36.3.0.CO;2-M>CrossRefGoogle Scholar
Schlemmer, H. P., Mockel, R., Marcus, A.et al. (1998). Proton magnetic resonance spectroscopy in acute, juvenile anorexia nervosa. Psychiatry Research, 82, 171–9.CrossRefGoogle Scholar
Small, D. M., Zatorre, R. J., Dagher, A., Evans, A. C. & Jones-Gotman, M. (2001). Changes in brain activity related to eating chocolate: from pleasure to aversion. Brain, 124, 1720–33.Google Scholar
Srinivasagam, N. M., Kaye, W. H., Plotnicov, K. H., Greeno, C., Weltzin, T. E. & Rao, R. (1995). Persistent perfectionism, symmetry, and exactness after long-term recovery from anorexia nervosa. Americal Journal of Psychiatry, 152, 1630–4.CrossRefGoogle Scholar
Swayze, V. W., Andersen, A. E., Andreasen, N. C., Arndt, S., Sato, Y. & Ziebell, S. (2003). Brain tissue volume segmentation in patients with anorexia nervosa before and after weight normalization. International Journal of Eating Disorders, 33, 33–44.CrossRefGoogle Scholar
Tauscher, J., Pirker, W., Willeit, M.et al. (2001). [123I] beta-CIT and single photon emission computed tomography reveal reduced brain serotonin transporter availability in bulimia nervosa. Biological Psychiatry, 49, 326–32.CrossRefGoogle Scholar
Uher, R., Brammer, M. J., Murphy, T.et al. (2003). Recovery and chronicity in anorexia nervosa: brain activity associated with differential outcomes. Biological Psychiatry, 54, 934–42.CrossRefGoogle Scholar
Uher, R., Murphy, T., Brammer, M. J.et al. (2004). Medial prefrontal cortex activity associated with symptom provocation in eating disorders. American Journal of Psychiatry, 161, 1238–46.CrossRefGoogle Scholar
Uher, R. & Treasure, J. (2005). Brain lesions and eating disorders. Journal of Neurology, Neurosurgery and Psychiatry, 76, 852–7.CrossRefGoogle Scholar
Uher, R., Treasure, J. & Campbell, I. (2002). Neuroanatomical bases of eating disorders. In Biological Psychiatry, ed. D'Haenen, H. A. H., BoerBoer, J. A. & Willner, P.Chichester: John Wiley & Sons, pp. 1173–80.CrossRef
Volkow, N. D. & Fowler, J. S. (2000). Addiction, a disease of compulsion and drive: involvement of the orbitofrontal cortex. Cerebral Cortex, 10, 318–25.Google Scholar
Volkow, N. D., Wang, G. J., Maynard, L.et al. (2003). Brain dopamine is associated with eating behaviors in humans. International Journal of Eating Disorders, 33, 136–42.CrossRefGoogle Scholar
Wagner, A., Ruf, M., Braus, D. F. & Schmidt, M. H. (2003). Neuronal activity changes and body image distortion in anorexia nervosa. Neuroreport, 14, 2193–7.CrossRefGoogle Scholar
Zald, D. H., Hagen, M. C. & Pardo, J. V. (2002). Neural correlates of tasting concentrated quinine and sugar solutions. Journal of Neurophysiology, 87, 1068–75.CrossRefGoogle Scholar

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