Sorbonne Université, INSERM, CNRS, Institut de la Vision, Paris, France.
Nat Rev Neurosci. 2019 Jul;20(7):380-396. doi: 10.1038/s41583-019-0168-7.
The spinal cord receives, relays and processes sensory information from the periphery and integrates this information with descending inputs from supraspinal centres to elicit precise and appropriate behavioural responses and orchestrate body movements. Understanding how the spinal cord circuits that achieve this integration are wired during development is the focus of much research interest. Several families of proteins have well-established roles in guiding developing spinal cord axons, and recent findings have identified new axon guidance molecules. Nevertheless, an integrated view of spinal cord network development is lacking, and many current models have neglected the cellular and functional diversity of spinal cord circuits. Recent advances challenge the existing spinal cord axon guidance dogmas and have provided a more complex, but more faithful, picture of the ontogenesis of vertebrate spinal cord circuits.
脊髓接收、传递和处理来自外周的感觉信息,并将这些信息与来自中枢的下行输入整合,以引出精确和适当的行为反应并协调身体运动。了解脊髓回路在发育过程中是如何实现这种整合的,这是许多研究关注的焦点。有几类蛋白质在引导发育中的脊髓轴突方面发挥着重要作用,最近的研究发现了新的轴突导向分子。然而,脊髓网络发育的整体观点仍然缺乏,许多当前的模型忽略了脊髓回路的细胞和功能多样性。最近的进展挑战了现有的脊髓轴突导向的教条,并提供了一个更复杂但更真实的脊椎动物脊髓回路发生的画面。