通过靶向 CBX5 抑制 RUNX1 可减缓肺动脉高压的进展。

0 MEDICINE, RESEARCH & EXPERIMENTAL
Ximiao Ma, Yiqiu Cao, Dongpeng Yang, Zhu Dong, Xiaowu Wang
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引用次数: 0

摘要

肺动脉平滑肌细胞(PASMC)功能障碍是肺动脉高压(PH)的核心致病机制。本研究探讨了肺动脉平滑肌细胞(PASMC)的潜在治疗靶点 RUNX1 的作用机制。研究人员利用 PH 小鼠模型研究了 RUNX1 基因敲除对血液动力学、右心室肥厚(RVH)和肺动脉重塑(HE 染色)的影响。用 RUNX1 或 CBX5 相关载体转染分离的 PASMC,然后进行细胞功能检测。免疫沉淀用于检测分子结合和泛素化。敲除 RUNX1 可降低 PH 小鼠的右心室收缩压、RVH 和肺动脉重塑。敲除 RUNX1 或 CBX5 可抑制缺氧条件下 PASMC 的增殖、侵袭和迁移,并刺激其凋亡。RUNX1 可增强 USP15 启动子的活性。USP15 与 CBX5 结合,减少了 CBX5 的泛素化,从而促进了 CBX5 的表达。CBX5 的过表达促进了 RUNX1 表达减少的缺氧 PASMC 的增殖和移动,并减少了它们的凋亡。总之,敲除 RUNX1 可抑制 USP15 的转录,从而促进 CBX5 的泛素化和降解,从而缓解小鼠的 PH 症状并减少缺氧诱导的 PASMC 功能障碍。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inhibition of RUNX1 slows the progression of pulmonary hypertension by targeting CBX5.

Pulmonary artery smooth muscle cell (PASMC) dysfunction is the central pathogenic mechanism in pulmonary hypertension (PH). This study explored the mechanism of action of RUNX1, a potential therapeutic target for PH, in PASMCs. A PH mouse model was used to investigate the impacts of RUNX1 knockdown on hemodynamics, right ventricular hypertrophy (RVH), and pulmonary artery remodeling (hematoxylin-eosin [H&E] staining). Isolated PASMCs were transfected with RUNX1- or chromobox 5 (CBX5)-related vectors and then subjected to cell function assays. Immunoprecipitation was used to detect molecular binding and ubiquitination. RUNX1 knockdown reduced right ventricular systolic pressure (RVSP), RVH, and pulmonary artery remodeling in mice with PH. Knockdown of RUNX1 or CBX5 suppressed proliferation, invasion, and migration and stimulated apoptosis in PASMCs under hypoxia. RUNX1 enhanced ubiquitin-specific protease 15 (USP15) promoter activity. USP15 bound to CBX5 and reduced CBX5 ubiquitination, thereby promoting CBX5 expression. CBX5 overexpression promoted the proliferation and movement of hypoxic PASMCs with reduced RUNX1 expression and decreased their apoptosis. In conclusion, RUNX1 knockdown inhibits USP15 transcription to promote the ubiquitination and degradation of CBX5, thereby alleviating PH in mice and reducing hypoxia-induced PASMC dysfunction.

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