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Connectome-based model predicts individual differences in propensity to trust

delete2019-01-11
delete29
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OA
AI
X
Xiaping Lu
T
Ting Li
Z
Zhichao Xia
朱睿达 cover
朱睿达 (Ruida Zhu)
王俐 (Li Wang)
罗跃嘉 (Yuejia Luo)
封春亮 (Chunliang Feng) *
F
Frank Krüeger
DOI:10.1002/hbm.24503delete
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Abstract

Abstract

En 中文
Trust constitutes a fundamental basis of human society and plays a pivotal role in almost every aspect of human relationships. Although enormous interest exists in determining the neuropsychological underpinnings of a person's propensity to trust utilizing task-based fMRI; however, little progress has been made in predicting its variations by task-free fMRI based on whole-brain resting-state functional connectivity (RSFC). Here, we combined a one-shot trust game with a connectome-based predictive modeling approach to predict propensity to trust from whole-brain RSFC. We demonstrated that individual variations in the propensity to trust were primarily predicted by RSFC rooted in the functional integration of distributed key nodes-caudate, amygdala, lateral prefrontal cortex, temporal-parietal junction, and the temporal pole-which are part of domain-general large-scale networks essential for the motivational, affective, and cognitive aspects of trust. We showed, further, that the identified brain-behavior associations were only evident for trust but not altruistic preferences and that propensity to trust (and its underlying neural underpinnings) were modulated according to the extent to which a person emphasizes general social preferences (i.e., horizontal collectivism) rather than general risk preferences (i.e., trait impulsiveness). In conclusion, the employed data-driven approach enables to predict propensity to trust from RSFC and highlights its potential use as an objective neuromarker of trust impairment in mental disorders.
Keywords:
connectome-based predictive modeling
individual difference
resting-state functional connectivity
social decision making
trust
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Human Brain Mapping cover
Human Brain Mapping
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3.3
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George Mason University
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Beijing Normal University
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shenzhen university
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