Higher volume of ventral striatum and right prefrontal cortex in pathological gambling

被引:0
|
作者
Saskia Koehler
Eva Hasselmann
Torsten Wüstenberg
Andreas Heinz
Nina Romanczuk-Seiferth
机构
[1] Charité-Universitätsmedizin Berlin,Department of Psychiatry and Psychotherapy
[2] Berlin School of Mind and Brain and The Mind-Brain Institute,Department of Psychology
[3] Humboldt-Universität zu Berlin,undefined
[4] Humboldt-Universität zu Berlin,undefined
来源
Brain Structure and Function | 2015年 / 220卷
关键词
fMRI; Gambling; Striatum; Behavioural addiction; Reward system; Voxel-based morphometry;
D O I
暂无
中图分类号
学科分类号
摘要
Functional neuroimaging studies have implicated an involvement of the prefrontal cortex and mesolimbic reward system (i.e., ventral striatum) in pathological gambling (PG). However, there is a lack of studies focusing on structural changes in frontostriatal brain regions in adult subjects with PG. In order to study differences in local grey matter volume, 20 male subjects with PG and 21 matched controls underwent structural magnetic resonance imaging. Structural brain data were analysed via voxel-based morphometry with a focus on prefrontal areas and ventral striatum. By comparing grey matter volumes in brain regions highly relevant for brain functional changes in PG, the present study found a higher volume in right ventral striatum and right prefrontal cortex by means of voxel-wise morphometry in PG subjects as compared to controls. Our findings demonstrate local grey matter changes in brain areas that have previously been associated with functional changes in PG. Hypertrophy in the prefrontal cortex might be an adaptation at least partly induced by the higher grey matter volume in the ventral striatum and may help to increase cognitive control over gambling impulses. Future research should explore the relationship between functional and structural alterations as well as the course of changes in PG.
引用
收藏
页码:469 / 477
页数:8
相关论文
共 50 条
  • [31] Dopaminergic and GABA-ergic markers of impulsivity in rats: evidence for anatomical localisation in ventral striatum and prefrontal cortex
    Jupp, Bianca
    Caprioli, Daniele
    Saigal, Niel
    Reverte, Ingrid
    Shrestha, Saurav
    Cumming, Paul
    Everitt, Barry J.
    Robbins, Trevor W.
    Dalley, Jeffrey W.
    EUROPEAN JOURNAL OF NEUROSCIENCE, 2013, 37 (09) : 1519 - 1528
  • [32] Non-invasive brain stimulation restores addiction behaviour via prefrontal cortex-ventral striatum
    Zuo, Huilin
    Zhang, Xiaochu
    INTERNATIONAL JOURNAL OF PSYCHOLOGY, 2024, 59 : 51 - 51
  • [33] Differential Recruitment of and Relationship between Ventral Striatum and Prefrontal Cortex during Reward Outcome Processing in Children and Adolescents
    Murray, Shanna K.
    Wei, Shau-Ming
    Nash, Tiffany A.
    Tuong-Vi Nguyen
    Reding, Katherine M.
    Martinez, Pedro E.
    Boyle, D. Ellen
    Reuter, John M.
    Raab, Hillary A.
    Brady, Sheila M.
    Nieman, Lynnette K.
    Soldin, Steven J.
    Zink, Caroline F.
    Kippenhan, J. Shane
    Kohn, Philip D.
    Yanovski, Jack A.
    Schmidt, Peter J.
    Berman, Karen F.
    BIOLOGICAL PSYCHIATRY, 2015, 77 (09) : 345S - 345S
  • [34] Afferent connections to the ventral striatum from the medial prefrontal cortex (area 25) and the thalamic nuclei in the macaque monkey
    Nakano, K
    Kayahara, T
    Chiba, T
    ADVANCING FROM THE VENTRAL STRIATUM TO THE EXTENDED AMYGDALA: IMPLICATIONS FOR NEUROPSYCHIATRY AND DRUG ABUSE: IN HONOR OF LENNART HEIMER, 1999, 877 : 667 - 670
  • [35] Ventral prefrontal cortex is not essential for working memory
    Rushworth, MFS
    Nixon, PD
    Eacott, MJ
    Passingham, RE
    JOURNAL OF NEUROSCIENCE, 1997, 17 (12): : 4829 - 4838
  • [36] The development of the ventral prefrontal cortex and social flexibility
    Nelson, Eric E.
    Guyer, Amanda E.
    DEVELOPMENTAL COGNITIVE NEUROSCIENCE, 2011, 1 (03) : 233 - 245
  • [37] Value, pleasure and choice in the ventral prefrontal cortex
    Grabenhorst, Fabian
    Rolls, Edmund T.
    TRENDS IN COGNITIVE SCIENCES, 2011, 15 (02) : 56 - 67
  • [38] Combinatorial Inputs to the Ventral Striatum from the Temporal Cortex, Frontal Cortex, and Amygdala: Implications for Segmenting the Striatum
    Choi, Eun Young
    Ding, Song-Lin
    Haber, Suzanne N.
    ENEURO, 2017, 4 (06)
  • [39] Distributed cell assemblies spanning prefrontal cortex and striatum
    Oberto, Virginie J.
    Boucly, Celine J.
    Gao, HongYing
    Todorova, Ralitsa
    Zugaro, Michael B.
    Wiener, Sidney, I
    CURRENT BIOLOGY, 2022, 32 (01) : 1 - +
  • [40] Causal interaction between lateral prefrontal cortex and striatum
    Pan, Xiaochuan
    Sakagami, Masamichi
    NEUROSCIENCE RESEARCH, 2010, 68 : E296 - E297