Neurodevelopment, impulsivity, and adolescent gambling

被引:205
作者
Chambers R.A. [1 ,2 ]
Potenza M.N. [1 ]
机构
[1] Yale University, School of Medicine
[2] Connecticut Mental Health Center, New Haven, CT 06508
关键词
Dopamine; Neural networks; Neurodevelopment; Prefrontal cortex; Serotonin;
D O I
10.1023/A:1021275130071
中图分类号
学科分类号
摘要
The prevalence of problem and pathological gambling in adolescence and young adulthood has been found to be two- to fourfold higher than in adulthood. Given that these high rates might predict future increases across all age groups, it is important to explore the causes of the elevated rates of problem and pathological gambling among youths. This article reviews evidence for a neurobiological basis for adolescent vulnerability to problem and pathological gambling behaviors. We propose that a common trait motif of impulsivity might underlie phenomenology of pathological gambling, commonly comorbid psychiatric disorders, and related aspects of adolescent behavior. Recent advances in understanding the brain mechanisms involved in motivation, reward, and decision-making allow a discussion of neural circuitry underlying impulsivity. Emerging data indicate that important neurodevelopmental events during adolescence occur in brain regions associated with motivation and impulsive behavior. We hypothesize that immaturity of frontal cortical and subcortical monoaminergic systems during normal neurodevelopment underlies adolescent impulsivity as a transitional trait-behavior. While these neurodevelopmental processes may confer advantage by promoting a learning drive for optimal adaptation to adult roles, they may also confer an increased vulnerability to addictive behaviors such as problem and pathological gambling. An exploration of the developmental changes in neural circuitry involved in impulse control has significant implications for understanding adolescent behaviors and treating problem and pathological gambling among youths.
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页码:53 / 84
页数:31
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共 160 条
[1]  
Alexander G.E., Functional development of frontal association cortex in monkeys: Behavioral and electrophysiological studies, Neuroscience Research Progress Bulletin, 20, pp. 471-479, (1982)
[2]  
Ames D., Cummings J.L., Wirshing W.C., Quinn B., Mahler M., Repetitive and compulsive behavior in frontal lobe degenerations, Journal of Neuropsychiatry & Clinical Neurosciences, 6, pp. 100-113, (1994)
[3]  
Anderson S.A., Classey J.D., Conde F., Lund J.S., Lewis D.A., Synchronous development of pyramidal neuron dendritic spines and parvalbumin-immunoreactive chandelier neuron axon terminals in layer III of monkey prefrontal cortex, Neuroscience, 67, pp. 7-22, (1995)
[4]  
Anderson S.W., Bechara A., Damasio H., Tranel D., Damasio A.R., Impairment of social and moral behavior related to early damage in human prefrontal cortex, Nature Neuroscience, 2, pp. 1032-1037, (1999)
[5]  
Badiani A., Oates M.M., Robinson T.E., Modulation of morphine sensitization in the rat by contextual stimuli, Psychopharmacologia, 151, pp. 273-282, (2000)
[6]  
Bauer L.O., Antisocial personality disorder and cocaine dependence: Their effects on behavioral and electroencephalographic measures of time estimation, Drug and Alcohol Dependence, 63, pp. 87-95, (2001)
[7]  
Bechara A., Neurobiology of decision-making: Risk and reward, Seminars in Clinical Neuropsychiatry, 6, pp. 205-216, (2001)
[8]  
Bechara A., Damasio A., Damasio H., Anderson S.W., Insensitivity to future consequences following damage to human prefrontal cortex, Cognition, 50, pp. 7-15, (1994)
[9]  
Bechara A., Damasio H., Damasio H.R., Et al., Different contributions of the human amygdala and ventromedial prefrontal cortex to decision-making, Journal of Neuroscience, 19, pp. 5473-5481, (1999)
[10]  
Bechara A., Damasio H., Damasion A.R., Emotion, decision making and the orbitofrontal cortex, Cerebral Cortex, 10, pp. 295-307, (2000)