<p>Alkali burn is one of the main causes of corneal injury. Corneal neovascularization caused by alkali burns aggravates corneal damage, resulting in aberrant vascular proliferation and consequent visual impairment. The present study investigated the role of enhancer of zeste homolog 2 (EZH2) in alkali burn‑induced corneal neovascularization. Through integrated bioinformatics and experimental approaches, we identified S100B, S100A4 and PI3K/AKT pathway activation as key drivers of alkali-induced corneal injury. In corneal alkali burn mice, knockdown of S100B or S100A4 attenuated corneal neovascularization and suppressed PI3K/AKT/FoxO3a pathway. EZH2 was upregulated in alkali-burn models and transcriptionally activated S100B and S100A4 via direct promoter binding. The deubiquitinase ZRANB1 was identified to stabilize EZH2 protein through deubiquitination, thereby amplifying its transcriptional activity. In alkali-injured human corneal epithelial cells, EZH2 overexpression enhanced cell viability, angiogenic capacity, migration and invasion ability, which was reversed by S100B or S100A4 knockdown. In vivo, EZH2 overexpression exacerbated PI3K/AKT/FoxO3a pathway activation and corneal neovascularization via regulating S100B or S100A4. Collectively, this study demonstrated that ZRANB1-mediated stabilization of EZH2 drove pathological corneal angiogenesis in corneal alkali burns by activating S100B/S100A4-PI3K/AKT/FoxO3a axis. These findings provided novel therapeutic targets for corneal alkali burns.</p> Graphical Abstract <p></p>

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ZRANB1-mediated EZH2 stabilization drives S100B/S100A4 transcriptional activation and corneal neovascularization in alkali burns

  • Fangyuan Liu,
  • Ying Xiao,
  • Yeping Huang,
  • Yang Liu,
  • Zhiyou Peng,
  • Yulin Wang

摘要

Alkali burn is one of the main causes of corneal injury. Corneal neovascularization caused by alkali burns aggravates corneal damage, resulting in aberrant vascular proliferation and consequent visual impairment. The present study investigated the role of enhancer of zeste homolog 2 (EZH2) in alkali burn‑induced corneal neovascularization. Through integrated bioinformatics and experimental approaches, we identified S100B, S100A4 and PI3K/AKT pathway activation as key drivers of alkali-induced corneal injury. In corneal alkali burn mice, knockdown of S100B or S100A4 attenuated corneal neovascularization and suppressed PI3K/AKT/FoxO3a pathway. EZH2 was upregulated in alkali-burn models and transcriptionally activated S100B and S100A4 via direct promoter binding. The deubiquitinase ZRANB1 was identified to stabilize EZH2 protein through deubiquitination, thereby amplifying its transcriptional activity. In alkali-injured human corneal epithelial cells, EZH2 overexpression enhanced cell viability, angiogenic capacity, migration and invasion ability, which was reversed by S100B or S100A4 knockdown. In vivo, EZH2 overexpression exacerbated PI3K/AKT/FoxO3a pathway activation and corneal neovascularization via regulating S100B or S100A4. Collectively, this study demonstrated that ZRANB1-mediated stabilization of EZH2 drove pathological corneal angiogenesis in corneal alkali burns by activating S100B/S100A4-PI3K/AKT/FoxO3a axis. These findings provided novel therapeutic targets for corneal alkali burns.

Graphical Abstract