Exosomes From Muscle‐Derived Stem Cells Repair Peripheral Nerve Injury by Inhibiting Ferroptosis via the Keap1‐Nrf2‐Ho‐1 Axis

Author:

Liu Ziwen1ORCID,Zeng Xiangyu1,Bian Wei1,Li Haoze1,Tegeleqi Bu1,Gao Zewei1,Liu Jianyu1ORCID

Affiliation:

1. Department of Orthopedic Surgery The Second Affiliated Hospital of Harbin Medical University Harbin Heilongjiang China

Abstract

ABSTRACTCurrently, the clinical outcomes of peripheral nerve injuries are suboptimal, highlighting the urgent need to understand the mechanisms of nerve injury to enhance treatment strategies. Muscle‐derived stem cells (MDSCs) are a diverse group of multipotent cells that hold promise for peripheral nerve regeneration due to their strong antioxidant and regenerative properties. Our research has revealed that severe ferroptosis occurs in the sciatic nerve and ipsilateral dorsal root ganglion following sciatic nerve injury. Interestingly, we have observed that MDSC‐derived exosomes effectively suppress cell ferroptosis and enhance cell viability in Schwann cells and dorsal root ganglion cells. Treatment with exosomes led to increased expression of BDNF and P62 in Schwann cells, decreased expression of Keap1, Nrf2, and HO‐1 in Schwann cells, and upregulated dorsal root ganglion cells. Rats treated with exosomes exhibited improvements in sciatic nerve function, sensitivity to stimuli, and reduced muscle atrophy, indicating a positive impact on post‐injury recovery. In conclusion, our findings demonstrate the occurrence of ferroptosis in the sciatic nerve and dorsal root ganglion post‐injury, with MDSC exosomes offering a potential therapeutic strategy by inhibiting ferroptosis, activating the Keap1‐Nrf2‐HO‐1 pathway, and optimizing the post‐injury repair environment.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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