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脊髓:不同物种间神经元的交响乐。

Spinal cords: Symphonies of interneurons across species.

机构信息

Institute of Science and Technology Austria (IST Austria), Klosterneuburg, Lower Austria, Austria.

出版信息

Front Neural Circuits. 2023 Apr 26;17:1146449. doi: 10.3389/fncir.2023.1146449. eCollection 2023.

Abstract

Vertebrate movement is orchestrated by spinal inter- and motor neurons that, together with sensory and cognitive input, produce dynamic motor behaviors. These behaviors vary from the simple undulatory swimming of fish and larval aquatic species to the highly coordinated running, reaching and grasping of mice, humans and other mammals. This variation raises the fundamental question of how spinal circuits have changed in register with motor behavior. In simple, undulatory fish, exemplified by the lamprey, two broad classes of interneurons shape motor neuron output: ipsilateral-projecting excitatory neurons, and commissural-projecting inhibitory neurons. An additional class of ipsilateral inhibitory neurons is required to generate escape swim behavior in larval zebrafish and tadpoles. In limbed vertebrates, a more complex spinal neuron composition is observed. In this review, we provide evidence that movement elaboration correlates with an increase and specialization of these three basic interneuron types into molecularly, anatomically, and functionally distinct subpopulations. We summarize recent work linking neuron types to movement-pattern generation across fish, amphibians, reptiles, birds and mammals.

摘要

脊椎动物的运动是由脊髓内的中间神经元和运动神经元协调控制的,这些神经元与感觉和认知输入一起产生动态的运动行为。这些行为从鱼类和水生幼虫的简单波动游泳到老鼠、人类和其他哺乳动物的高度协调的跑步、伸手和抓握行为各不相同。这种变化提出了一个基本问题,即脊髓回路如何与运动行为一起变化。在简单的波动鱼类中,以七鳃鳗为例,两类广泛的中间神经元塑造运动神经元的输出:同侧投射的兴奋性神经元和连合投射的抑制性神经元。在幼体斑马鱼和蝌蚪中,还需要一类额外的同侧抑制性神经元来产生逃避游泳行为。在有四肢的脊椎动物中,可以观察到更复杂的脊髓神经元组成。在这篇综述中,我们提供了证据表明,运动的精细化与这三种基本中间神经元类型的增加和专业化相关,这些神经元类型分化为具有分子、解剖和功能差异的亚群。我们总结了最近的工作,将神经元类型与鱼类、两栖动物、爬行动物、鸟类和哺乳动物的运动模式生成联系起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8604/10169611/a559fb787ded/fncir-17-1146449-g001.jpg

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