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生理多巴胺信号对纹状体动力学的亚秒调制的约束。

Constraints on the subsecond modulation of striatal dynamics by physiological dopamine signaling.

机构信息

Department of Neurobiology, University of California, Los Angeles, CA, USA.

Medical Scientist Training Program, University of California, Los Angeles, CA, USA.

出版信息

Nat Neurosci. 2024 Oct;27(10):1977-1986. doi: 10.1038/s41593-024-01699-z. Epub 2024 Jul 3.

Abstract

Dopaminergic neurons play a crucial role in associative learning, but their capacity to regulate behavior on subsecond timescales remains debated. It is thought that dopaminergic neurons drive certain behaviors by rapidly modulating striatal spiking activity; however, a view has emerged that only artificially high (that is, supra-physiological) dopamine signals alter behavior on fast timescales. This raises the possibility that moment-to-moment striatal spiking activity is not strongly shaped by dopamine signals in the physiological range. To test this, we transiently altered dopamine levels while monitoring spiking responses in the ventral striatum of behaving mice. These manipulations led to only weak changes in striatal activity, except when dopamine release exceeded reward-matched levels. These findings suggest that dopaminergic neurons normally play a minor role in the subsecond modulation of striatal dynamics in relation to other inputs and demonstrate the importance of discerning dopaminergic neuron contributions to brain function under physiological and potentially nonphysiological conditions.

摘要

多巴胺能神经元在联想学习中起着至关重要的作用,但它们在亚秒时间尺度上调节行为的能力仍存在争议。人们认为,多巴胺能神经元通过快速调节纹状体的尖峰活动来驱动某些行为;然而,有一种观点认为,只有人为的高(即超生理)多巴胺信号才能在快速时间尺度上改变行为。这就提出了一种可能性,即纹状体的尖峰活动在生理范围内并不受多巴胺信号的强烈影响。为了验证这一点,我们在监测行为小鼠腹侧纹状体的尖峰反应的同时,短暂改变了多巴胺水平。这些操作导致纹状体活动只有微弱的变化,除非多巴胺释放超过与奖励匹配的水平。这些发现表明,在与其他输入相关的纹状体动力学的亚秒调制中,多巴胺能神经元通常只起次要作用,并证明了在生理和潜在非生理条件下辨别多巴胺能神经元对大脑功能的贡献的重要性。

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