NeuroX Institute, School of Life Sciences, Swiss Federal Institute of Technology (EPFL), Lausanne, Switzerland.
Department of Clinical Neuroscience, Lausanne University Hospital (CHUV) and University of Lausanne (UNIL), Lausanne, Switzerland.
Nat Neurosci. 2022 Dec;25(12):1584-1596. doi: 10.1038/s41593-022-01196-1. Epub 2022 Nov 17.
A spinal cord injury disrupts communication between the brain and the circuits in the spinal cord that regulate neurological functions. The consequences are permanent paralysis, loss of sensation and debilitating dysautonomia. However, the majority of circuits located above and below the injury remain anatomically intact, and these circuits can reorganize naturally to improve function. In addition, various neuromodulation therapies have tapped into these processes to further augment recovery. Emerging research is illuminating the requirements to reconstitute damaged circuits. Here, we summarize these natural and targeted reorganizations of circuits after a spinal cord injury. We also advocate for new concepts of reorganizing circuits informed by multi-omic single-cell atlases of recovery from injury. These atlases will uncover the molecular logic that governs the selection of 'recovery-organizing' neuronal subpopulations, and are poised to herald a new era in spinal cord medicine.
脊髓损伤会破坏大脑与脊髓中调节神经功能的回路之间的通讯。其后果是永久性瘫痪、感觉丧失和使人虚弱的自主神经功能障碍。然而,位于损伤上下方的大多数回路在解剖上仍然完整,这些回路可以自然重组以改善功能。此外,各种神经调节疗法已经利用了这些过程来进一步增强恢复。新兴的研究阐明了重建受损回路的要求。在这里,我们总结了脊髓损伤后回路的这些自然和靶向重组。我们还主张根据损伤后恢复的多组学单细胞图谱,用新的概念来重组回路。这些图谱将揭示支配“恢复组织”神经元亚群选择的分子逻辑,并有望开创脊髓医学的新时代。