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人运动神经元中的持续内向电流:新出现的证据和未来方向。

Persistent inward currents in human motoneurons: emerging evidence and future directions.

机构信息

Department of Electrical Engineering, Chalmers University of Technology, Gothenburg, Sweden.

Discipline of Exercise and Sports Science, School of Medical and Health Sciences, Edith Cowan University, Perth, Western Australia, Australia.

出版信息

J Neurophysiol. 2024 Oct 1;132(4):1278-1301. doi: 10.1152/jn.00204.2024. Epub 2024 Aug 28.

DOI:10.1152/jn.00204.2024
PMID:39196985
Abstract

The manner in which motoneurons respond to excitatory and inhibitory inputs depends strongly on how their intrinsic properties are influenced by the neuromodulators serotonin and noradrenaline. These neuromodulators enhance the activation of voltage-gated channels that generate persistent (long-lasting) inward sodium and calcium currents (PICs) into the motoneurons. PICs are crucial for initiating, accelerating, and maintaining motoneuron firing. A greater accessibility to state-of-the-art techniques that allows both the estimation and examination of PIC modulation in tens of motoneurons in vivo has rapidly evolved our knowledge of how motoneurons amplify and prolong the effects of synaptic input. We are now in a position to gain substantial mechanistic insight into the role of PICs in motor control at an unprecedented pace. The present review briefly describes the effects of PICs on motoneuron firing and the methods available for estimating them before presenting the emerging evidence of how PICs can be modulated in health and disease. Our rapidly developing knowledge of the potent effects of PICs on motoneuron firing has the potential to improve our understanding of how we move, and points to new approaches to improve motor control. Finally, gaps in our understanding are highlighted and methodological advancements are suggested to encourage readers to explore outstanding questions to further elucidate PIC physiology.

摘要

运动神经元对兴奋性和抑制性输入的反应方式强烈取决于其内在特性如何受到神经调质血清素和去甲肾上腺素的影响。这些神经调质增强了电压门控通道的激活,这些通道产生持久(持久)的内向钠和钙电流(PIC)进入运动神经元。PIC 对于发起、加速和维持运动神经元的发射至关重要。能够同时估计和检查体内数十个运动神经元中 PIC 调制的最新技术的更大可及性,迅速发展了我们对运动神经元如何放大和延长突触输入的影响的认识。我们现在有能力以前所未有的速度从机制上深入了解 PIC 在运动控制中的作用。本综述简要描述了 PIC 对运动神经元发射的影响以及估计它们的可用方法,然后介绍了 PIC 在健康和疾病中如何被调节的新证据。我们对 PIC 对运动神经元发射的强大影响的快速发展的认识有可能改善我们对运动的理解,并为改善运动控制指明了新的方法。最后,突出了我们理解中的差距,并提出了方法学上的进步,以鼓励读者探索悬而未决的问题,进一步阐明 PIC 生理学。

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