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兴奋性谷氨酸水平通过 CP-AMPAR 信号转导驱动脊髓室管膜干细胞增殖和命运决定。

Excitotoxic glutamate levels drive spinal cord ependymal stem cell proliferation and fate specification through CP-AMPAR signaling.

机构信息

Krembil Research Institute, University Health Network, Toronto, ON M5T 2S8, Canada; Division of Neurosurgery, Department of Surgery, University of Toronto, Toronto, ON M5T 2S8, Canada.

Krembil Research Institute, University Health Network, Toronto, ON M5T 2S8, Canada.

出版信息

Stem Cell Reports. 2023 Mar 14;18(3):672-687. doi: 10.1016/j.stemcr.2023.01.005. Epub 2023 Feb 9.

Abstract

The adult spinal cord contains a population of ependymal-derived neural stem/progenitor cells (epNSPCs) that are normally quiescent, but are activated to proliferate, differentiate, and migrate after spinal cord injury. The mechanisms that regulate their response to injury cues, however, remain unknown. Here, we demonstrate that excitotoxic levels of glutamate promote the proliferation and astrocytic fate specification of adult spinal cord epNSPCs. We show that glutamate-mediated calcium influx through calcium-permeable alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionic acid (AMPA) receptors (CP-AMPARs) in concert with Notch signaling increases the proliferation of epNSPCs via pCREB, and induces astrocytic differentiation through Hes1 upregulation. Furthermore, the in vivo targeting of this pathway via positive modulation of AMPARs after spinal cord injury enhances epNSPC proliferation, astrogliogenesis, neurotrophic factor production and increases neuronal survival. Our study uncovers an important mechanism by which CP-AMPARs regulate the growth and phenotype of epNSPCs, which can be targeted therapeutically to harness the regenerative potential of these cells after injury.

摘要

成年脊髓内存在一群室管膜衍生的神经干细胞/祖细胞(epNSPCs),它们通常处于静止状态,但在脊髓损伤后会被激活以增殖、分化和迁移。然而,调节它们对损伤信号反应的机制仍不清楚。在这里,我们证明了兴奋性谷氨酸水平促进成年脊髓 epNSPCs 的增殖和星形胶质细胞命运特化。我们表明,通过钙通透性 α-氨基-3-羟基-5-甲基-4-异恶唑丙酸(AMPA)受体(CP-AMPARs)介导的谷氨酸诱导的钙内流与 Notch 信号通路协同作用,通过 pCREB 增加 epNSPCs 的增殖,并通过 Hes1 上调诱导星形胶质细胞分化。此外,通过脊髓损伤后对 AMPARs 的正性调节靶向该途径,可增强 epNSPC 增殖、星形胶质细胞发生、神经营养因子产生,并增加神经元存活。我们的研究揭示了 CP-AMPARs 调节 epNSPCs 生长和表型的重要机制,可通过该途径治疗性地利用这些细胞在损伤后的再生潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc36/10031285/9efcc350a7b0/fx1.jpg

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