腹侧被盖区群体的不同动态和内在特性介导了奖赏关联和动机。

IF 7.5 1区 生物学 Q1 CELL BIOLOGY
Cell reports Pub Date : 2024-09-24 Epub Date: 2024-08-27 DOI:10.1016/j.celrep.2024.114668
Jordan E Elum, Eric R Szelenyi, Barbara Juarez, Alexandria D Murry, Grigory Loginov, Catalina A Zamorano, Pan Gao, Ginny Wu, Scott Ng-Evans, Joshua X Yee, Xiangmin Xu, Sam A Golden, Larry S Zweifel
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引用次数: 0

摘要

腹侧被盖区(VTA)多巴胺神经元调节与奖赏相关的联想学习和奖赏驱动的动机行为,但这些过程是如何通过不同的VTA神经元亚群协调的仍未解决。在这里,我们比较了两个主要由多巴胺能神经元组成且基本不重叠的 VTA 亚群(小鼠中脑的所有 VTA 多巴胺能神经元和 VTA GABAergic 神经元)对这些过程的贡献。我们发现,多巴胺亚群投射到核团(NAc)核心,优先编码奖赏预测线索和预测错误。与此相反,投射到纳氏核外壳的多巴胺亚群优先编码目标定向行动和相对奖赏预期。VTA GABA神经元的活动与VTA多巴胺群体的活动形成强烈对比,并优先编码奖赏结果和检索。电生理学、靶向光遗传学和全脑输入映射揭示了多种趋同的来源,这些来源促成了VTA多巴胺亚群之间的异质性,而这种异质性很可能是它们对奖赏相关的联想和动机进行不同编码的基础,而奖赏相关的联想和动机决定了它们在这些情境中的功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distinct dynamics and intrinsic properties in ventral tegmental area populations mediate reward association and motivation.

Ventral tegmental area (VTA) dopamine neurons regulate reward-related associative learning and reward-driven motivated behaviors, but how these processes are coordinated by distinct VTA neuronal subpopulations remains unresolved. Here, we compare the contribution of two primarily dopaminergic and largely non-overlapping VTA subpopulations, all VTA dopamine neurons and VTA GABAergic neurons of the mouse midbrain, to these processes. We find that the dopamine subpopulation that projects to the nucleus accumbens (NAc) core preferentially encodes reward-predictive cues and prediction errors. In contrast, the subpopulation that projects to the NAc shell preferentially encodes goal-directed actions and relative reward anticipation. VTA GABA neuron activity strongly contrasts VTA dopamine population activity and preferentially encodes reward outcome and retrieval. Electrophysiology, targeted optogenetics, and whole-brain input mapping reveal multiple convergent sources that contribute to the heterogeneity among VTA dopamine subpopulations that likely underlies their distinct encoding of reward-related associations and motivation that defines their functions in these contexts.

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来源期刊
Cell reports
Cell reports CELL BIOLOGY-
CiteScore
13.80
自引率
1.10%
发文量
1305
审稿时长
77 days
期刊介绍: Cell Reports publishes high-quality research across the life sciences and focuses on new biological insight as its primary criterion for publication. The journal offers three primary article types: Reports, which are shorter single-point articles, research articles, which are longer and provide deeper mechanistic insights, and resources, which highlight significant technical advances or major informational datasets that contribute to biological advances. Reviews covering recent literature in emerging and active fields are also accepted. The Cell Reports Portfolio includes gold open-access journals that cover life, medical, and physical sciences, and its mission is to make cutting-edge research and methodologies available to a wide readership. The journal's professional in-house editors work closely with authors, reviewers, and the scientific advisory board, which consists of current and future leaders in their respective fields. The advisory board guides the scope, content, and quality of the journal, but editorial decisions are independently made by the in-house scientific editors of Cell Reports.
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