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在多巴胺能系统中建立多样性。

Establishing diversity in the dopaminergic system.

作者信息

Bodea Gabriela O, Blaess Sandra

机构信息

Mater Research Institute - University of Queensland, Translational Research Institute, Woolloongabba, QLD 4102, Australia; Queensland Brain Institute, University of Queensland, Brisbane, QLD 4072, Australia.

Institute of Reconstructive Neurobiology, Life and Brain Center, University of Bonn, Bonn, Germany.

出版信息

FEBS Lett. 2015 Dec 21;589(24 Pt A):3773-85. doi: 10.1016/j.febslet.2015.09.016. Epub 2015 Sep 30.

Abstract

Midbrain dopaminergic neurons (MbDNs) modulate cognitive processes, regulate voluntary movement, and encode reward prediction errors and aversive stimuli. While the degeneration of MbDNs underlies the motor defects in Parkinson's disease, imbalances in dopamine levels are associated with neuropsychiatric disorders such as depression, schizophrenia and substance abuse. In recent years, progress has been made in understanding how MbDNs, which constitute a relatively small neuronal population in the brain, can contribute to such diverse functions and dysfunctions. In particular, important insights have been gained regarding the distinct molecular, neurochemical and network properties of MbDNs. How this diversity of MbDNs is established during brain development is only starting to be unraveled. In this review, we summarize the current knowledge on the diversity in MbDN progenitors and differentiated MbDNs in the developing rodent brain. We discuss the signaling pathways, transcription factors and transmembrane receptors that contribute to setting up these diverse MbDN subpopulations. A better insight into the processes that establish diversity in MbDNs will ultimately improve the understanding of the architecture and function of the dopaminergic system in the adult brain.

摘要

中脑多巴胺能神经元(MbDNs)调节认知过程,控制自主运动,并编码奖励预测误差和厌恶刺激。虽然MbDNs的退化是帕金森病运动缺陷的基础,但多巴胺水平的失衡与抑郁症、精神分裂症和药物滥用等神经精神疾病有关。近年来,在理解构成大脑中相对较小神经元群体的MbDNs如何导致如此多样的功能和功能障碍方面取得了进展。特别是,关于MbDNs独特的分子、神经化学和网络特性已经获得了重要见解。MbDNs的这种多样性在大脑发育过程中是如何建立的才刚刚开始被揭示。在这篇综述中,我们总结了目前关于发育中的啮齿动物大脑中MbDN祖细胞和分化的MbDNs多样性的知识。我们讨论了有助于建立这些不同MbDN亚群的信号通路、转录因子和跨膜受体。更好地了解在MbDNs中建立多样性的过程最终将提高对成人大脑多巴胺能系统结构和功能的理解。

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