Deficiency of smooth muscle cell ILF3 alleviates intimal hyperplasia via HMGB1 mRNA degradation-mediated regulation of the STAT3/DUSP16 axis

IF 4.9 2区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS Journal of molecular and cellular cardiology Pub Date : 2024-04-06 DOI:10.1016/j.yjmcc.2024.04.004
Ya-min Hou, Bo-han Xu, Qiu-ting Zhang, Jie Cheng, Xu Zhang, Hong-rui Yang, Ze-ying Wang, Peng Wang, Ming-xiang Zhang
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Abstract

Intimal hyperplasia is a complicated pathophysiological phenomenon attributable to in-stent restenosis, and the underlying mechanism remains unclear. Interleukin enhancer-binding factor 3 (ILF3), a double-stranded RNA-binding protein involved in regulating mRNA stability, has been recently demonstrated to assume a crucial role in cardiovascular disease; nevertheless, its impact on intimal hyperplasia remains unknown. In current study, we used samples of human restenotic arteries and rodent models of intimal hyperplasia, we found that vascular smooth muscle cell (VSMC) ILF3 expression was markedly elevated in human restenotic arteries and murine ligated carotid arteries. SMC-specific ILF3 knockout mice significantly suppressed injury induced neointimal formation. In vitro, platelet-derived growth factor type BB (PDGF-BB) treatment elevated the level of VSMC ILF3 in a dose- and time-dependent manner. ILF3 silencing markedly inhibited PDGF-BB-induced phenotype switching, proliferation, and migration in VSMCs. Transcriptome sequencing and RNA immunoprecipitation sequencing depicted that ILF3 maintained its stability upon binding to the mRNA of the high-mobility group box 1 protein (HMGB1), thereby exerting an inhibitory effect on the transcription of dual specificity phosphatase 16 (DUSP16) through enhanced phosphorylation of signal transducer and activator of transcription 3 (STAT3). Therefore, the results both in vitro and in vivo indicated that the loss of ILF3 in VSMC ameliorated neointimal hyperplasia by regulating the STAT3/DUSP16 axis through the degradation of HMGB1 mRNA. Our findings revealed that vascular injury activates VSMC ILF3, which in turn promotes intima formation. Consequently, targeting specific VSMC ILF3 may present a potential therapeutic strategy for ameliorating cardiovascular restenosis.

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通过HMGB1 mRNA降解介导的STAT3/DUSP16轴调控,平滑肌细胞ILF3的缺乏可减轻内膜增生
内膜增生是导致支架内再狭窄的一种复杂的病理生理现象,其潜在机制仍不清楚。白细胞介素增强子结合因子 3(ILF3)是一种参与调节 mRNA 稳定性的双链 RNA 结合蛋白,最近已被证实在心血管疾病中起着至关重要的作用;然而,它对内膜增生的影响仍然未知。在目前的研究中,我们利用人体再狭窄动脉样本和内膜增生的啮齿动物模型,发现血管平滑肌细胞(VSMC)ILF3在人体再狭窄动脉和小鼠结扎颈动脉中的表达明显升高。SMC特异性ILF3基因敲除小鼠能显著抑制损伤诱导的新内膜形成。在体外,血小板衍生生长因子 BB 型(PDGF-BB)以剂量和时间依赖的方式提高了 VSMC ILF3 的水平。沉默 ILF3 能显著抑制 PDGF-BB 诱导的 VSMC 表型转换、增殖和迁移。转录组测序和 RNA 免疫沉淀测序显示,ILF3 在与高迁移率基团框 1 蛋白(HMGB1)的 mRNA 结合后保持稳定,从而通过增强信号转导子和转录激活子 3(STAT3)的磷酸化对双特异性磷酸酶 16(DUSP16)的转录产生抑制作用。因此,体外和体内研究结果表明,血管内皮细胞中 ILF3 的缺失可通过降解 HMGB1 mRNA 调节 STAT3/DUSP16 轴,从而改善新内膜增生。我们的研究结果表明,血管损伤会激活 VSMC ILF3,进而促进内膜形成。因此,靶向特定 VSMC ILF3 可能是改善心血管再狭窄的一种潜在治疗策略。
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来源期刊
CiteScore
10.70
自引率
0.00%
发文量
171
审稿时长
42 days
期刊介绍: The Journal of Molecular and Cellular Cardiology publishes work advancing knowledge of the mechanisms responsible for both normal and diseased cardiovascular function. To this end papers are published in all relevant areas. These include (but are not limited to): structural biology; genetics; proteomics; morphology; stem cells; molecular biology; metabolism; biophysics; bioengineering; computational modeling and systems analysis; electrophysiology; pharmacology and physiology. Papers are encouraged with both basic and translational approaches. The journal is directed not only to basic scientists but also to clinical cardiologists who wish to follow the rapidly advancing frontiers of basic knowledge of the heart and circulation.
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Editorial Board PERM1 regulates mitochondrial energetics through O-GlcNAcylation in the heart Corrigendum to "PGE2 protects against heart failure through inhibiting TGF-β1 synthesis in cardiomyocytes and crosstalk between TGF-β1 and GRK2" [Journal of Molecular and Cellular Cardiology. 172(2022) 63-77]. Retraction notice to “The novel antibody fusion protein rhNRG1-HER3i promotes heart regeneration by enhancing NRG1-ERBB4 signaling pathway” [Journal of Molecular and Cellular Cardiology 187 (2023) 26–37] Exercise training attenuates cardiac dysfunction induced by excessive sympathetic activation through an AMPK-KLF4-FMO2 axis
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