前额叶对心理复原力的贡献:啮齿动物压力和抗抑郁作用研究的启示。

IF 2.4 4区 医学 Q3 NEUROSCIENCES
Ryota Shinohara, Tomoyuki Furuyashiki
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引用次数: 0

摘要

压力易感性的个体差异导致了压力复原力的概念,以很好地适应压力。然而,压力恢复力的神经机制及其与抗抑郁药物作用的相关性仍然难以捉摸。在啮齿类动物中,慢性压力会诱导内侧前额叶皮层(mPFC)树突萎缩并降低树突棘密度,这与抑郁症患者前额叶的改变如出一辙,而mPFC则会促进压力恢复能力。投射到伏隔核的多巴胺神经元受到慢性压力的影响而增强了对压力的易感性,而投射到内侧前额叶皮质的多巴胺神经元则在急性压力下被激活,通过多巴胺D1受体促进了内侧前额叶皮质神经元树突的生长,从而增强了对压力的恢复能力。啮齿动物研究还发现,前额叶D1受体以及表达D1受体的mPFC神经元投射到多个皮层下区域和mPFC树突棘的形成,对低剂量氯胺酮的持续抗抑郁样作用起着作用。因此,了解前额叶D1受体作用的细胞和神经回路机制为弥合应激复原力和持续抗抑郁样效应之间的差距铺平了道路。对应激恢复力机制的了解可能有助于开发基于自然发生机制的抗抑郁药物,从而比小剂量氯胺酮更安全。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Prefrontal contributions to mental resilience: Lessons from rodent studies of stress and antidepressant actions
Individual variability of stress susceptibility led to the concept of stress resilience to adapt well upon stressors. However, the neural mechanisms of stress resilience and its relevance to antidepressant actions remain elusive. In rodents, chronic stress induces dendritic atrophy and decreases dendritic spine density in the medial prefrontal cortex (mPFC), recapitulating prefrontal alterations in depressive patients, and the mPFC promotes stress resilience. Whereas dopamine neurons projecting to the nucleus accumbens potentiated by chronic stress promote stress susceptibility, dopamine neurons projecting to the mPFC activated upon acute stress contribute to dendritic growth of mPFC neurons via dopamine D1 receptors, leading to stress resilience. Rodent studies have also identified the roles of prefrontal D1 receptors as well as D1 receptor-expressing mPFC neurons projecting to multiple subcortical areas and dendritic spine formation in the mPFC for the sustained antidepressant-like effects of low-dose ketamine. Thus, understanding the cellular and neural-circuit mechanism of prefrontal D1 receptor actions paves the way for bridging the gap between stress resilience and the sustained antidepressant-like effects. The mechanistic understanding of stress resilience might be exploitable for developing antidepressants based on a naturally occurring mechanism, thus safer than low-dose ketamine.
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来源期刊
Neuroscience Research
Neuroscience Research 医学-神经科学
CiteScore
5.60
自引率
3.40%
发文量
136
审稿时长
28 days
期刊介绍: The international journal publishing original full-length research articles, short communications, technical notes, and reviews on all aspects of neuroscience Neuroscience Research is an international journal for high quality articles in all branches of neuroscience, from the molecular to the behavioral levels. The journal is published in collaboration with the Japan Neuroscience Society and is open to all contributors in the world.
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