TSPAN4 controls vascular smooth muscle cell phenotypic switching and intimal hyperplasia by targeting TPM1-regulated cytoskeletal organization.

IF 7.7 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Shengbiao Li, Kexin Chen, Yi Zhang, Yang Yu, Tianyi Zhang, Donghui Jiang, Mi Li, Shubo Fu, Ji Chen, Jiapan Li, Jingyan Yi, Rong Li, Gan Qiao, Jianguo Feng, Jun Jiang, Qiong Yuan, Chunxiang Zhang
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引用次数: 0

Abstract

Vascular smooth muscle cell (VSMC) phenotypic switching, followed by enhanced proliferation and migration, is a key event in the development of intimal hyperplasia in diverse vascular diseases. While tetranspanin 4 (TSPAN4) is known to be expressed in the vasculature, its function in VSMC phenotypic switching and vascular disease is currently unknown. Here, we investigated the role of TSPAN4 using an in vitro model of PDGF-BB-induced phenotypic switching and an in vivo carotid artery ligation model in wild-type and TSPAN4-deficient mice. Our experiments, including EdU assays, Transwell assays, western blot analysis, and immunoprecipitation, revealed that TSPAN4 expression is elevated in human atherosclerotic arteries, ligated mouse carotid arteries, and PDGF-BB-stimulated VSMCs. Additionally, TSPAN4 overexpression promoted the switch from a contractile to a synthetic phenotype, accompanied by enhanced VSMC proliferation and migration. Conversely, TSPAN4 knockdown inhibited these effects, suppressing PDGF-BB-induced phenotypic switching. Mechanistically, TSPAN4 was found to interact with and influence the expression and localization of tropomyosin-1 (TPM1). This, in turn, impacted cytoskeletal organization, ultimately driving phenotypic switching and functional alterations in VSMCs. Finally, we demonstrated that TSPAN4 deficiency in mice attenuated vascular neointimal formation following carotid artery ligation. These findings suggested that TSPAN4 is a promising novel therapeutic target for vascular remodeling and proliferative vascular diseases.

TSPAN4通过靶向tpm1调控的细胞骨架组织来控制血管平滑肌细胞表型转换和内膜增生。
血管平滑肌细胞(Vascular smooth muscle cell, VSMC)表型转换,随后是增殖和迁移增强,是多种血管疾病中内膜增生发展的关键事件。虽然已知tetransspanin 4 (TSPAN4)在脉管系统中表达,但其在VSMC表型转换和血管疾病中的功能目前尚不清楚。在这里,我们使用pdgf - bb诱导的表型转换的体外模型和野生型和TSPAN4缺陷小鼠的体内颈动脉结扎模型来研究TSPAN4的作用。我们的实验,包括EdU测定、Transwell测定、western blot分析和免疫沉淀,显示TSPAN4在人类动脉粥样硬化动脉、结缔组织小鼠颈动脉和pdgf - bb刺激的VSMCs中的表达升高。此外,TSPAN4过表达促进了从收缩表型到合成表型的转变,并伴有VSMC增殖和迁移的增强。相反,TSPAN4敲低抑制了这些作用,抑制了pdgf - bb诱导的表型转换。在机制上,发现TSPAN4与原肌球蛋白-1 (TPM1)相互作用并影响其表达和定位。这反过来又影响细胞骨架组织,最终驱动vsmc的表型转换和功能改变。最后,我们证明了小鼠中缺乏TSPAN4可以减轻颈动脉结扎后血管内膜的形成。这些发现表明,TSPAN4是治疗血管重构和增殖性血管疾病的一个有希望的新靶点。
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来源期刊
Clinical science
Clinical science 医学-医学:研究与实验
CiteScore
11.40
自引率
0.00%
发文量
189
审稿时长
4-8 weeks
期刊介绍: Translating molecular bioscience and experimental research into medical insights, Clinical Science offers multi-disciplinary coverage and clinical perspectives to advance human health. Its international Editorial Board is charged with selecting peer-reviewed original papers of the highest scientific merit covering the broad spectrum of biomedical specialities including, although not exclusively: Cardiovascular system Cerebrovascular system Gastrointestinal tract and liver Genomic medicine Infection and immunity Inflammation Oncology Metabolism Endocrinology and nutrition Nephrology Circulation Respiratory system Vascular biology Molecular pathology.
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