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皮层脊髓通路与相互作用支持啮齿动物灵巧的前肢运动。

Corticospinal Pathways and Interactions Underpinning Dexterous Forelimb Movement of the Rodent.

机构信息

Neural Connectivity Development in Physiology and Disease Laboratory, Burke Neurological Institute, White Plains, NY, 10605, United States; Brain and Mind Research Institute, Weill Cornell Medicine, New York, New York 10065, United States.

Neural Connectivity Development in Physiology and Disease Laboratory, Burke Neurological Institute, White Plains, NY, 10605, United States; Brain and Mind Research Institute, Weill Cornell Medicine, New York, New York 10065, United States.

出版信息

Neuroscience. 2020 Dec 1;450:184-191. doi: 10.1016/j.neuroscience.2020.05.050. Epub 2020 Jun 6.

Abstract

In 2013, Thomas Jessell published a paper with Andrew Miri and Eiman Azim that took on the task of examining corticospinal neuron function during movement (Miri et al., 2013). They took the view that a combination of approaches would be able to shed light on corticospinal function, and that this function must be considered in the context of corticospinal connectivity with spinal circuits. In this review, we will highlight recent developments in this area, along with new information regarding inputs and cross-connectivity of the corticospinal circuit with other circuits across the rodent central nervous system. The genetic and viral manipulations available in these animals have led to new insights into descending circuit interaction and function. As species differences exist in the circuitry profile that contributes to dexterous forelimb movements (Lemon, 2008; Yoshida and Isa, 2018), highlighting important advances in one model could help to compare and contrast with what is known about other models. We will focus on the circuitry underpinning dexterous forelimb movements, including some recent developments from systems besides the corticospinal tract, to build a more holistic understanding of sensorimotor circuits and their control of voluntary movement. The rodent corticospinal system is thus a central point of reference in this review, but not the only focus.

摘要

2013 年,Thomas Jessell 与 Andrew Miri 和 Eiman Azim 合作发表了一篇论文,该论文探讨了运动过程中皮质脊髓神经元的功能(Miri 等人,2013 年)。他们认为,多种方法的结合将能够揭示皮质脊髓功能,并且必须在皮质脊髓与脊髓回路的连接的背景下考虑这种功能。在这篇综述中,我们将重点介绍该领域的最新进展,以及有关皮质脊髓回路与啮齿动物中枢神经系统中其他回路的输入和交叉连接的新信息。这些动物中可用的遗传和病毒操纵导致了对下行回路相互作用和功能的新见解。由于对灵巧的前肢运动有贡献的电路特征在物种之间存在差异(Lemon,2008;Yoshida 和 Isa,2018),因此在一种模型中突出显示重要的进展可以帮助比较和对比其他模型的已知内容。我们将重点介绍灵巧的前肢运动的电路基础,包括除皮质脊髓束以外的系统中的一些最新进展,以更全面地了解感觉运动电路及其对自愿运动的控制。因此,啮齿动物皮质脊髓系统是本综述的核心参考点,但不是唯一的关注点。

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