← 返回

METTL3 suppresses pyroptosis in obstructive sleep apnea-associated hypertension via YTHDF2-mediated SOX4 mRNA degradation.

METTL3 suppresses pyroptosis in obstructive sleep apnea-associated hypertension via YTHDF2-mediated SOX4 mRNA degradation.

期刊: Journal of physiology and biochemistry 日期: 2026-07-01 PMID: 42384250 DOI: 10.1007/s13105-026-01200-3 浏览: 24
作者: Zhu W, Hou Y, Yang C, Tian Y, Cao L, Li W, Xie L, He L
W, Z., Y, H., C, Y., Y, T., L, C., W, L., L, X., & L, H. (2026). METTL3 suppresses pyroptosis in obstructive sleep apnea-associated hypertension via YTHDF2-mediated SOX4 mRNA degradation.. Journal of physiology and biochemistry. https://doi.org/10.1007/s13105-026-01200-3
W Z, Y H, C Y, Y T, L C, W L, et al. METTL3 suppresses pyroptosis in obstructive sleep apnea-associated hypertension via YTHDF2-mediated SOX4 mRNA degradation.. Journal of physiology and biochemistry. 2026; doi: 10.1007/s13105-026-01200-3
W Z, Y H, C Y, et al. METTL3 suppresses pyroptosis in obstructive sleep apnea-associated hypertension via YTHDF2-mediated SOX4 mRNA degradation.[J]. Journal of physiology and biochemistry. 2026. DOI: 10.1007/s13105-026-01200-3.
@article{w2026,
  author = {Zhu W and Hou Y and Yang C and Tian Y and Cao L and Li W and Xie L and He L},
  title = {METTL3 suppresses pyroptosis in obstructive sleep apnea-associated hypertension via YTHDF2-mediated SOX4 mRNA degradation.},
  journal = {Journal of physiology and biochemistry},
  year = {2026},
  doi = {10.1007/s13105-026-01200-3},
  note = {PMID: 42384250},
}
TY  - JOUR
AU  - Zhu W
AU  - Hou Y
AU  - Yang C
AU  - Tian Y
AU  - Cao L
AU  - Li W
AU  - Xie L
AU  - He L
TI  - METTL3 suppresses pyroptosis in obstructive sleep apnea-associated hypertension via YTHDF2-mediated SOX4 mRNA degradation.
T2  - Journal of physiology and biochemistry
PY  - 2026
DO  - 10.1007/s13105-026-01200-3
AN  - PMID:42384250
ER  - 

摘要

Obstructive sleep apnea (OSA) is frequently complicated by hypertension, with approximately 60% of patients exhibiting both conditions. However, the epigenetic mechanisms underlying this comorbidity remain largely unexplored. N6-methyladenosine (m6A), the most abundant internal RNA modification, has emerged as a critical regulator of cardiovascular pathology, yet its role in OSA-associated hypertension (OSA-HTN) is unknown. Here, we investigated the contribution of m6A RNA methylation to OSA-HTN pathogenesis. In a chronic intermittent hypoxia (CIH) mouse model and hypoxia-stimulated aortic vascular smooth muscle cells (AVSMCs), we observed marked inflammatory injury, pyroptosis, and decreased expression of methyltransferase-like 3 (METTL3) along with global m6A levels. Overexpression of METTL3 significantly attenuated hypoxia-induced pyroptosis and inflammation by downregulating SRY-box transcription factor 4 (SOX4), a pro-inflammatory transcription factor. Mechanistically, CIH suppressed YTH N6-methyladenosine RNA-binding protein 2 (YTHDF2), an m6A reader that directly binds SOX4 mRNA, while METTL3-mediated m6A modification enhanced YTHDF2-dependent SOX4 mRNA degradation. Knockdown of YTHDF2 abolished the suppressive effect of METTL3 on SOX4 stability, confirming a METTL3-m6A-YTHDF2 regulatory axis. This METTL3-dependent regulation of YTHDF2-SOX4 interaction and SOX4 mRNA decay was also validated in mouse aortic endothelial cells. Furthermore, in vivo silencing of SOX4 alleviated CIH-induced pyroptosis and inflammation in cardiac and aortic tissues. Notably, pharmacological activation of METTL3 or METTL3 overexpression similarly attenuated CIH-induced cardiac and aortic tissue injury in OSA-HTN mice. In conclusion, our findings identify a novel METTL3-YTHDF2-SOX4 axis that governs hypoxia-induced pyroptosis and inflammation, providing new mechanistic insights into the epigenetic regulation of OSA-HTN and highlighting potential therapeutic targets.

AI 智能解读

相关文献

返回分类: 高血压 查看原文 (DOI)
已选择 0 篇文献