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Substrate stiffness differentially impacts autophagy of endothelial cells and smooth muscle cells

机译:衬底刚度差异地影响内皮细胞和平滑肌细胞的自噬

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Stiffening of blood vessels is one of the most important characteristics in the process of many cardiovascular pathologies such as atherosclerosis, angiosteosis, and vascular aging. Increased stiffness of the vascular extracellular matrix drives artery pathology and alters phenotypes of vascular cell. Understanding how substrate stiffness impacts vascular cell behaviors is of great importance to the biomaterial design in tissue engineering, regenerative medicine, and medical devices. Here we report that changing substrate stiffness has a significant impact on the autophagy of vascular endothelial cells (VECs) and smooth muscle cells (VSMCs). Interestingly, our findings demonstrate that, with the increase of substrate stiffness, the autophagy level of VECs and VSMCs showed differential changes: endothelial autophagy levels reduced, leading to the reductions in a range of gene expression associated with endothelial function; while, autophagy levels of VSMCs increased, showing a transition from contractile to the synthetic phenotype. We further demonstrate that, by inhibiting cell autophagy, the expressions of endothelial functional gene were further reduced and the expression of VSMC calponin increased, suggesting an important role of autophagy in response of the cells to the challenge of microenvironment stiffness changing. Although the underlying mechanism requires further study, this work highlights the relationship of substrate stiffness, autophagy, and vascular cell behaviors, and enlightening the design principles of surface stiffness of biomaterials in cardiovascular practical applications.
机译:血管的加强是许多心血管病理学过程中最重要的特征之一,例如动脉粥样硬化,血管病,血管衰老。血管细胞外基质的刚度升高,动脉病理和改变血管细胞的表型。了解衬底刚度影响如何血管细胞行为对组织工程,再生医学和医疗器械的生物材料设计具有重要意义。在这里,我们认为改变的衬底刚度对血管内皮细胞(VECs)和平滑肌细胞(VSMC)的自噬产生了显着影响。有趣的是,我们的研究结果表明,随着衬底刚度的增加,VECs和VSMCs的自噬水平显示出差异变化:内皮自噬水平降低,导致一系列与内皮功能相关的基因表达的减少;虽然,VSMCs的自噬水平增加,显示了从收缩到合成表型的过渡。我们进一步证明,通过抑制细胞自噬,内皮官能基因的表达进一步降低,VSMC Calponin的表达增加,表明自噬在细胞对微环境刚度变化的挑战中的重要作用。虽然潜在的机制需要进一步研究,但是这项工作突出了衬底刚度,自噬和血管细胞行为的关系,并启示了心血管实际应用中生物材料表面刚度的设计原则。

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