4.5 Article

Unlocking the Recovery Potential: JMJD3 Inhibition-Mediated SAPK/JNK Signaling Inactivation Supports Endogenous Oligodendrocyte-Lineage Commitment Post Mammalian Spinal Cord Injury

期刊

NEUROCHEMICAL RESEARCH
卷 46, 期 4, 页码 792-803

出版社

SPRINGER/PLENUM PUBLISHERS
DOI: 10.1007/s11064-020-03210-z

关键词

Spinal cord injury; Epigenetic modification; JMJD3; Demethylation

资金

  1. National Natural Science Foundation of China [81701225]
  2. Research Grant of Department of Education of Jilin Province of China [JJKH20201056KJ]
  3. Research Grant of Science and Technology Department of Jilin Province of China [20190103077JH, 20200201436JC]

向作者/读者索取更多资源

After spinal cord injury, JMJD3 acts as a crucial epigenetic regulator in manipulating the endogenous oligodendrogenesis process. Inhibition of JMJD3 promotes oligodendrocyte lineage commitment by mediating SAPK/JNK signaling pathway inactivation. This study provides novel evidence of JMJD3-mediated oligodendrocyte-lineage commitment orchestration post SCI, offering a potential epigenetic approach for inducing mature mammalian endogenous recovery.
Spinal cord injury (SCI) induced catastrophic neurological disability is often incurable at present. The injury triggered immediately oligodendrocytes loss and overwhelming demyelination are regarded as an insurmountable barrier to SCI recovery. To date, effective strategy to promote the endogenous oligodendrocytes replacement post SCI remains elusive. Epigenetic modifications are emerging as critical molecular switches of gene expression in CNS. However, the epigenetic mechanisms underlying oligodendrogenesis post SCI yet to be discovered. In this study, we report that H3K27me3 demethylase JMJD3 exists as a pivotal epigenetic regulator which manipulates the endogenous oligodendrogenesis post SCI. We found that JMJD3 inhibition promotes the oligodendrocyte linage commitment of neural stem/progenitor cells (NPCs) in vitro and in vivo. Moreover, we demonstrated that JMJD3 inhibition mediated SAPK/JNK signaling inactivation is functionally necessary for endogenous oligodendrocyte-lineage commitment post SCI. Our results also suggested that JMJD3 is downstream of SAPK/JNK pathway, and capable of translates SCI induced SAPK/JNK signaling into epigenetic codes readable by spinal cord endogenous NPCs. Taken together, our findings provide novel evidence of JMJD3 mediated oligodendrocyte-lineage commitment orchestration post SCI, which would be a potential epigenetic approach to induce the mature mammalian endogenous recovery.

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