Mechanical stretch leads to increased caveolin-1 content and mineralization potential in extracellular vesicles from vascular smooth muscle cells

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Mohammad Shaver, Kassandra Gomez, Katherine Kaiser, Joshua D. Hutcheson
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Abstract

Hypertension-induced mechanical stress on vascular smooth muscle cells (VSMCs) is a known risk factor for vascular remodeling, including vascular calcification. Caveolin-1 (Cav-1), an integral structural component of plasma membrane invaginations, is a mechanosensitive protein that is required for the formation of calcifying extracellular vesicles (EVs). However, the role of mechanics in Cav-1-induced EV formation from VSMCs has not been reported. Exposure of VSMCs to 10% mechanical stretch (0.5 Hz) for 72 h resulted in Cav-1 translocation into non-caveolar regions of the plasma membrane and subsequent redistribution of Cav-1 from the VSMCs into EVs. Inhibition of Rho-A kinase (ROCK) in mechanically-stimulated VSMCs exacerbated the liberation of Cav-1 positive EVs from the cells, suggesting a potential involvement of actin stress fibers in this process. The mineralization potential of EVs was measured by incubating the EVs in a high phosphate solution and measuring light scattered by the minerals at 340 nm. EVs released from stretched VSMCs showed higher mineralization potential than the EVs released from non-stretched VSMCs. Culturing VSMCs in pro-calcific media and exposure to mechanical stretch increased tissue non-specific alkaline phosphatase (ALP), an important enzyme in vascular calcification, activity in EVs released from the cells, with cyclic stretch further elevating EV ALP activity compared to non-stretched cells. Our data demonstrate that mechanical stretch alters Cav-1 trafficking and EV release, and the released EVs have elevated mineralization potential.
机械拉伸导致血管平滑肌细胞细胞外囊泡中的洞穴素-1含量和矿化潜能增加
高血压诱发的血管平滑肌细胞(VSMC)机械应力是血管重塑(包括血管钙化)的一个已知风险因素。Caveolin-1(Cav-1)是质膜内陷的一个整体结构成分,它是一种机械敏感蛋白,是形成钙化细胞外囊泡(EV)所必需的。然而,力学在 VSMCs 的 Cav-1 诱导的 EV 形成中的作用尚未见报道。将 VSMCs 暴露于 10%的机械拉伸(0.5 Hz)72 小时后,Cav-1 转位至质膜的非凹陷区域,随后 Cav-1 从 VSMCs 重新分布到 EVs 中。抑制机械刺激下 VSMC 的 Rho-A 激酶(ROCK)会加剧 Cav-1 阳性 EVs 从细胞中的释放,这表明肌动蛋白应力纤维可能参与了这一过程。在高磷酸盐溶液中培养 EVs 并在 340 纳米波长处测量矿物质散射的光,从而测量 EVs 的矿化潜能。与未拉伸的 VSMC 相比,拉伸的 VSMC 释放的 EVs 显示出更高的矿化潜能。在促钙化培养基中培养 VSMC 并将其暴露于机械拉伸环境中会增加细胞释放的 EV 中的组织非特异性碱性磷酸酶(ALP)活性,而循环拉伸会进一步提高 EV 的 ALP 活性。我们的数据表明,机械拉伸改变了Cav-1的贩运和EV的释放,释放的EV具有更高的矿化潜能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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