Retinal ganglion cell expression of cytokine enhances occupancy of NG2 cell-derived astrocytes at the nerve injury site: Implication for axon regeneration

睫状神经营养因子 轴突 视神经 生物 视网膜神经节细胞 再生(生物学) 神经科学 神经营养因子 细胞生物学 星形胶质细胞 视网膜 胶质瘢痕 病变 中枢神经系统 病理 受体 医学 生物化学
作者
Márcio Ribeiro,Ana C. Ayupe,Felipe Beckedorff,Konstantin Levay,Sara Rodríguez,Pantelis Tsoulfas,Jae K. Lee,Gabriel Nascimento‐dos‐Santos,Kevin K. Park
出处
期刊:Experimental Neurology [Elsevier BV]
卷期号:355: 114147-114147 被引量:4
标识
DOI:10.1016/j.expneurol.2022.114147
摘要

Following injury in the central nervous system, a population of astrocytes occupy the lesion site, form glial bridges and facilitate axon regeneration. These astrocytes originate primarily from resident astrocytes or NG2+ oligodendrocyte progenitor cells. However, the extent to which these cell types give rise to the lesion-filling astrocytes, and whether the astrocytes derived from different cell types contribute similarly to optic nerve regeneration remain unclear. Here we examine the distribution of astrocytes and NG2+ cells in an optic nerve crush model. We show that optic nerve astrocytes partially fill the injury site over time after a crush injury. Viral mediated expression of a growth-promoting factor, ciliary neurotrophic factor (CNTF), in retinal ganglion cells (RGCs) promotes axon regeneration without altering the lesion size or the degree of lesion-filling GFAP+ cells. Strikingly, using inducible NG2CreER driver mice, we found that CNTF overexpression in RGCs increases the occupancy of NG2+ cell-derived astrocytes in the optic nerve lesion. An EdU pulse-chase experiment shows that the increase in NG2 cell-derived astrocytes is not due to an increase in cell proliferation. Lastly, we performed RNA-sequencing on the injured optic nerve and reveal that CNTF overexpression in RGCs results in significant changes in the expression of distinct genes, including those that encode chemokines, growth factor receptors, and immune cell modulators. Even though CNTF-induced axon regeneration has long been recognized, this is the first evidence of this procedure affecting glial cell fate at the optic nerve crush site. We discuss possible implication of these results for axon regeneration.
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