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FBXO38通过调节Nox1稳定性减轻低振荡剪切应力诱导的血管内皮损伤。

FBXO38 Regulates Nox1 Stability to Reduce Vascular Endothelial Damage Induced by Low Oscillatory Shear Stress.

作者信息

Yu Wan-Li, Deng Li-Wen, Li Huan-Huan, Wang Chun-Kai, Zuo Xiang-Yi, Wang Zi-Chang, Meng Li, Wen Lan-Xin, Zeng Wan-Zhi, Zhao Yu, Wang Xue-Hu

机构信息

Department of Vascular Surgery, The First Affiliated Hospital of Chongqing Medical University, Chongqing, China.

出版信息

Cardiovasc Ther. 2025 Apr 23;2025:4506032. doi: 10.1155/cdr/4506032. eCollection 2025.

Abstract

Oxidative stress and endothelial dysfunction are critical drivers of atherosclerosis, but the mechanisms regulating oxidative stress under disturbed flow conditions remain incompletely understood. The ubiquitin-proteasome system, particularly E3 ubiquitin ligases, may play a pivotal role in modulating these processes. FBXO38, an E3 ligase involved in proteasomal degradation, has been implicated in various physiological pathways, but its role in regulating oxidative stress in endothelial cells is unknown. We hypothesized that FBXO38 mitigates endothelial damage induced by low oscillatory shear stress (LOSS) by promoting the ubiquitin-proteasome-dependent degradation of Nox1, a major source of reactive oxygen species (ROS). Using an in vitro LOSS model in human umbilical vein endothelial cells (HUVECs) and an in vivo mouse partial carotid ligation model, we assessed the expression of FBXO38 and Nox1 through quantitative PCR, western blotting, immunofluorescence, and immunohistochemistry. LOSS significantly reduced FBXO38 protein expression (by 60%, < 0.0001 at 24 h), leading to increased Nox1 protein levels (approximately two-fold, < 0.001) and apoptosis. FBXO38 overexpression markedly attenuated Nox1 accumulation (50% reduction, < 0.05), reduced ROS production, and improved cell viability under LOSS conditions, whereas FBXO38 knockdown exacerbated these effects. Moreover, FBXO38 directly interacted with Nox1, suggesting a ubiquitin-dependent degradation mechanism. Our results reveal that FBXO38 regulates endothelial oxidative stress by controlling Nox1 stability under disturbed shear stress conditions. Although FBXO38 emerges as a promising candidate for therapeutic targeting, further studies are necessary to validate its potential in preclinical and clinical settings.

摘要

氧化应激和内皮功能障碍是动脉粥样硬化的关键驱动因素,但在紊乱血流条件下调节氧化应激的机制仍未完全明确。泛素 - 蛋白酶体系统,尤其是E3泛素连接酶,可能在调节这些过程中起关键作用。FBXO38是一种参与蛋白酶体降解的E3连接酶,已涉及多种生理途径,但其在内皮细胞中调节氧化应激的作用尚不清楚。我们假设FBXO38通过促进活性氧(ROS)的主要来源Nox1的泛素 - 蛋白酶体依赖性降解来减轻低振荡剪切应力(LOSS)诱导的内皮损伤。使用人脐静脉内皮细胞(HUVECs)的体外LOSS模型和体内小鼠部分颈动脉结扎模型,我们通过定量PCR、蛋白质印迹、免疫荧光和免疫组织化学评估了FBXO38和Nox1的表达。LOSS显著降低了FBXO38蛋白表达(在24小时时降低约60%,<0.0001),导致Nox1蛋白水平升高(约两倍,<0.001)和细胞凋亡。FBXO38过表达显著减弱了Nox1的积累(降低约50%,<0.05),减少了ROS的产生,并改善了LOSS条件下的细胞活力,而FBXO38敲低则加剧了这些影响。此外,FBXO38直接与Nox1相互作用,提示存在泛素依赖性降解机制。我们的结果表明,FBXO38在紊乱剪切应力条件下通过控制Nox1的稳定性来调节内皮氧化应激。尽管FBXO38成为一个有前景的治疗靶点候选者,但仍需要进一步研究以验证其在临床前和临床环境中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bfdb/12043393/f46b3ce748c8/CDTP2025-4506032.001.jpg

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