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April 19, 2026Advanced Science0 citationsOpen Access

Prmt6 Deficiency or Inhibition Restores Microglial Homeostasis and Promotes Scar‐Limited Repair in Adult Spinal Cord Injury

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WPWeilin PengZWZhengqiang WuYXYu Xiong

Key Points

  • The study aims to investigate the role of PRMT6 in microglial homeostasis and its impact on scar formation in spinal cord injury.
  • Used RNA sequencing to identify PRMT6 as a key regulator in microglial activation.
  • Examined effects of Prmt6 deficiency in adult mice on microglial homeostasis and scar formation.
  • Administered PRMT6 inhibitors to assess their impact on motor recovery and axonal regrowth.
  • Inhibition of PRMT6 restored microglial homeostasis as indicated by changes in key surface markers.
  • Reduced scar formation and enhanced motor recovery were observed following Prmt6 deficiency.
  • Restoration of fatty acid oxidation was linked to the alleviation of epigenetic repression caused by PRMT6.

Abstract

Neonatal mice achieve scar-free healing after spinal cord injury (SCI) by restoring microglial homeostasis, unlike adults, where persistent microglial dyshomeostasis drives scar expansion through mechanisms that remain elusive. Using RNA sequencing, we identified protein arginine methyltransferase 6 (PRMT6) as a key regulator of this disparity, upregulated in activated microglia at adult SCI lesions but maintained at low levels in neonatal microglia after injury. In adult mice, Prmt6 deficiency restored microglial homeostasis, evidenced by increased P2Y12/TMEM119 and reduced CD68, while reducing scar formation and enhancing axonal regrowth and motor recovery. Microglia-specific Prmt6 knockdown or PRMT6 inhibitor administration recapitulated these effects. Mechanistically, PRMT6 deposits H3R2me2a at the Ppargc1a promoter to repress peroxisome proliferator-activated receptor-γ coactivator-1α(PGC-1α), thereby inhibiting fatty acid oxidation (FAO) and disrupting microglial homeostasis. Loss of Prmt6 alleviates this epigenetic repression, restoring FAO and microglial homeostasis. These findings establish PRMT6 as a novel epigenetic regulator linking microglial dyshomeostasis and metabolic dysfunction to maladaptive scar formation in adult SCI, highlighting PRMT6 inhibition as a promising therapeutic strategy to reprogram microglial metabolism and promote neural repair.

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Cite This Study

Peng et al. (2026) studied this question.

synapsesocial.com/papers/69e47440010ef96374d900b8https://doi.org/10.1002/advs.75325
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