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Bioengineering the Lung: Molecules Materials Matrix Morphology and Mechanics: Matrix stiffness-modulated proliferation and secretory function of the airway smooth muscle cells

机译:肺的生物工程:分子材料基质形态和力学:基质硬度调节的气道平滑肌细胞增殖和分泌功能

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摘要

Multiple pulmonary conditions are characterized by an abnormal misbalance between various tissue components, for example, an increase in the fibrous connective tissue and loss/increase in extracellular matrix proteins (ECM). Such tissue remodeling may adversely impact physiological function of airway smooth muscle cells (ASMCs) responsible for contraction of airways and release of a variety of bioactive molecules. However, few efforts have been made to understand the potentially significant impact of tissue remodeling on ASMCs. Therefore, this study reports how ASMCs respond to a change in mechanical stiffness of a matrix, to which ASMCs adhere because mechanical stiffness of the remodeled airways is often different from the physiological stiffness. Accordingly, using atomic force microscopy (AFM) measurements, we found that the elastic modulus of the mouse bronchus has an arithmetic mean of 23.1 ± 14 kPa (SD) (median 18.6 kPa). By culturing ASMCs on collagen-conjugated polyacrylamide hydrogels with controlled elastic moduli, we found that gels designed to be softer than average airway tissue significantly increased cellular secretion of vascular endothelial growth factor (VEGF). Conversely, gels stiffer than average airways stimulated cell proliferation, while reducing VEGF secretion and agonist-induced calcium responses of ASMCs. These dependencies of cellular activities on elastic modulus of the gel were correlated with changes in the expression of integrin-β1 and integrin-linked kinase (ILK). Overall, the results of this study demonstrate that changes in matrix mechanics alter cell proliferation, calcium signaling, and proangiogenic functions in ASMCs.
机译:多种肺部疾病的特征在于各种组织成分之间的异常失衡,例如,纤维结缔组织的增加和细胞外基质蛋白(ECM)的丢失/增加。这样的组织重塑可能不利地影响负责气道收缩和多种生物活性分子释放的气道平滑肌细胞(ASMC)的生理功能。但是,很少有人努力了解组织重塑对ASMC的潜在重大影响。因此,本研究报告了ASMC如何响应基质机械刚度的变化,ASMC坚持该基质是因为改型气道的机械刚度通常不同于生理刚度。因此,使用原子力显微镜(AFM)测量,我们发现小鼠支气管的弹性模量的算术平均值为23.1±14 kPa(SD)(中位数为18.6 kPa)。通过在具有受控弹性模量的胶原共轭聚丙烯酰胺水凝胶上培养ASMC,我们发现设计成比平均气道组织更软的凝胶显着增加了血管内皮生长因子(VEGF)的细胞分泌。相反,比一般气道更坚硬的凝胶刺激细胞增殖,同时减少ASMC的VEGF分泌和激动剂诱导的钙反应。细胞活性对凝胶弹性模量的这些依赖性与整联蛋白-β1和整联蛋白连接的激酶(ILK)的表达变化相关。总体而言,这项研究的结果表明,基质力学的变化会改变ASMC中的细胞增殖,钙信号传导和促血管生成功能。

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