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你的脊髓回路有多具交感神经活性?

How sympathetic are your spinal cord circuits?

作者信息

Deuchars Susan A

机构信息

School of Biomedical Sciences, University of Leeds, Leeds, LS2 9JT, UK.

出版信息

Exp Physiol. 2015 Apr 1;100(4):365-71. doi: 10.1113/EP085031.

Abstract

What is the topic of this review? This review focuses on the role of gap junctions and interneurones in sympathetic control at the spinal cord level. What advances does it highlight? The review considers the importance of these local spinal circuits in contributing to rhythmic autonomic activity and enabling appropriate responses to homeostatic perturbations. Sympathetic control of end organs relies on the activity of sympathetic preganglionic neurones (SPNs) within the spinal cord. These SPNs exhibit heterogeneity with respect to function, neurochemistry, location, descending inputs and patterns of activity. Part of this heterogeneity is bestowed by local spinal circuitry. Our understanding of the role of these local circuits, including the significance of connections between the SPNs themselves through specialized gap junctions, is patchy. This report focuses on interneurones and gap junctions within these circuits. Gap junctions play a role in sympathetic control; they are located on SPNs in the intermediolateral cell column. Mefloquine, a chemical that blocks these gap junctions, reduces local rhythmic activity in the spinal cord slice and disrupts autonomic control in the working heart-brainstem preparation. The role that these gap junctions may play in health and disease in adult animals remains to be elucidated fully. Presympathetic interneurones are located in laminae V, VII and X and the intermediolateral cell column; those in lamina X are GABAergic and directly inhibit SPNs. The GABAergic inputs onto SPNs exert their effects through activation of synaptic and extrasynaptic receptors, which stabilize the membrane at negative potentials. The GABAergic interneurones contribute to rhythmic patterns of activity that can be generated in the spinal cord, because bicuculline reduces network oscillatory activity. These studies indicate that local spinal cord circuitry is critical in enabling appropriate levels and patterning of activity in sympathetic outflow. We need to understand how these circuits may be harnessed in the situation of spinal cord injury.

摘要

本综述的主题是什么?本综述聚焦于缝隙连接和中间神经元在脊髓水平的交感神经控制中的作用。它突出了哪些进展?该综述探讨了这些局部脊髓回路在产生节律性自主活动以及对稳态扰动做出适当反应方面的重要性。终末器官的交感神经控制依赖于脊髓内交感节前神经元(SPN)的活动。这些SPN在功能、神经化学、位置、下行输入和活动模式方面表现出异质性。这种异质性部分是由局部脊髓回路赋予的。我们对这些局部回路的作用的理解,包括通过特殊缝隙连接的SPN之间连接的重要性,并不完整。本报告聚焦于这些回路中的中间神经元和缝隙连接。缝隙连接在交感神经控制中发挥作用;它们位于中间外侧细胞柱的SPN上。甲氟喹,一种阻断这些缝隙连接的化学物质,可降低脊髓切片中的局部节律性活动,并扰乱工作心脏-脑干标本中的自主神经控制。这些缝隙连接在成年动物健康和疾病中可能发挥的作用仍有待充分阐明。交感神经节前中间神经元位于V层、VII层和X层以及中间外侧细胞柱;X层中的那些是γ-氨基丁酸能的,并直接抑制SPN。作用于SPN的γ-氨基丁酸能输入通过突触和突触外受体的激活发挥作用,这些受体将膜电位稳定在负电位。γ-氨基丁酸能中间神经元有助于在脊髓中产生节律性活动模式,因为荷包牡丹碱会降低网络振荡活动。这些研究表明,局部脊髓回路对于使交感神经输出的活动达到适当水平和模式至关重要。我们需要了解在脊髓损伤的情况下如何利用这些回路。

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