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伏隔核在信号回避行为中的作用。

Role of the Nucleus Accumbens in Signaled Avoidance Actions.

机构信息

Department of Neuroscience, University of Connecticut School of Medicine, Farmington, Connecticut 06001.

出版信息

eNeuro. 2024 Oct 10;11(10). doi: 10.1523/ENEURO.0314-24.2024. Print 2024 Oct.

Abstract

Animals, humans included, navigate their environments guided by sensory cues, responding adaptively to potential dangers and rewards. Avoidance behaviors serve as adaptive strategies in the face of signaled threats, but the neural mechanisms orchestrating these behaviors remain elusive. Current circuit models of avoidance behaviors indicate that the nucleus accumbens (NAc) in the ventral striatum plays a key role in signaled avoidance behaviors, but the nature of this engagement is unclear. Evolving perspectives propose the NAc as a pivotal hub for action selection, integrating cognitive and affective information to heighten the efficiency of both appetitive and aversive motivated behaviors. To unravel the engagement of the NAc during active and passive avoidance, we used calcium imaging fiber photometry to examine NAc GABAergic neuron activity in moving mice performing avoidance behaviors. We then probed the functional significance of NAc neurons using optogenetics and genetically targeted or electrolytic lesions. We found that NAc neurons code contraversive orienting movements and avoidance actions. However, direct optogenetic inhibition or lesions of NAc neurons did not impair active or passive avoidance behaviors, challenging the notion of their purported pivotal role in adaptive avoidance. The findings emphasize that while the NAc encodes avoidance movements, it is not required for avoidance behaviors, highlighting the distinction between behavior encoding or representation and mediation or generation.

摘要

动物,包括人类,在环境中导航时依赖于感觉线索,对潜在的危险和奖励做出适应性反应。回避行为是面对信号威胁的一种适应性策略,但协调这些行为的神经机制仍然难以捉摸。目前回避行为的电路模型表明,腹侧纹状体中的伏隔核(NAc)在信号回避行为中起着关键作用,但这种参与的性质尚不清楚。不断发展的观点提出,NAc 是用于选择行动的关键枢纽,整合认知和情感信息,提高食欲和厌恶动机行为的效率。为了解析 NAc 在主动和被动回避中的参与,我们使用钙成像光纤光度法研究了在进行回避行为时运动小鼠的 NAc 抑制性神经元活动。然后,我们使用光遗传学和基因靶向或电解损伤来探测 NAc 神经元的功能意义。我们发现,NAc 神经元编码相反的定向运动和回避动作。然而,直接光遗传学抑制或 NAc 神经元的损伤并不损害主动或被动回避行为,这对它们在适应性回避中所谓的关键作用的观点提出了挑战。这些发现强调了虽然 NAc 编码回避运动,但它不是回避行为所必需的,突出了行为编码或表示与介导或产生之间的区别。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29bf/11613310/47903874ee4d/eneuro-11-ENEURO.0314-24.2024-g001.jpg

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