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Converging dopamine pathways onto basolateral amygdala neurons encode exploration decisions

  • Chaowen Zheng
  • , Xiaoying Liu
  • , Anqi Wei
  • , Bing Liu
  • , Qianyun Zhang
  • , Junjie Jiang
  • , Xiaofeng Gao
  • , Hong Fan
  • , Anran Zhao
  • , Xueting Duan
  • , Xu Cheng
  • , Haiyao Liu
  • , Niki Gooya
  • , Fenghan Mao
  • , Aomei An
  • , Shuaijie Zhong
  • , Jie Jian
  • , Wenxin Shen
  • , Xingyao Dong
  • , Kaikai Yang
  • Bianbian Wang, Ziyang Li, Jingxiao Huo, Jingyu Yao, Weiwei Li, Yu Lu, Junxi Kang, Kai Huang, Nan Dong, Yang Chen, Qian Song, Zigang Huang, Rong Huang, Zhenli Xie, Yan Li, Shuqin Zhan, Han Xu, Yong Jiang, Chunxiang Zhang, Dan Xu, Haowen Liu, Jinghong Ma, Yuqing Zhang, Huadong Xu, Xinjiang Kang, Changhe Wang
  • Xi'an Jiaotong University
  • Southwest Medical University
  • Guangyang Bay Laboratory
  • Johns Hopkins University
  • Shaanxi Provincial People's Hospital
  • Taishan University
  • The First Affiliated Hospital of Xi’an Jiaotong University
  • Zhejiang University
  • Capital Medical University
  • Liaocheng University
  • Shanghai Jiao Tong University

科研成果: 期刊稿件文章同行评审

摘要

Exploration is a fundamental innate behavior essential for securing survival-necessary resources, but it also increases risks. However, the neural mechanisms encoding exploration decisions remain unknown. Here, we show that social companionship motivates both innate-driven and experience-dependent explorations in mice. Dopaminergic neurons in the ventral tegmental area (VTADA neurons) determine exploration decisions by encoding risky vigilance (via phasic firing) and exploration motivation (via tonic firing). Two subpopulations of VTADA neurons co-innervate the same population of basolateral amygdala neurons via direct and indirect pathways. Tonic firing-biased DA-D2R transmission in the medial prefrontal cortex (indirect pathway) mediates exploratory behaviors, which are reinforced by social interactions, while phasic firing-biased DA-D1R transmission in the direct pathway mediates avoidant behaviors. The dynamic balance between these two competing DA pathways coordinately encodes exploration decisions. These findings establish the VTADA neuron as a central hub and the circuit integration of biased DA transmission as a central mechanism encoding exploration decisions.

源语言英语
页(从-至)1131-1151.e6
期刊Neuron
114
6
DOI
出版状态已出版 - 18 3月 2026

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