Hydrogel Network Dynamics Regulate Vascular Morphogenesis

Zhao Wei, Rahel Schnellmann, S. Gerecht
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引用次数: 60

Abstract

Matrix dynamics influence how individual cells develop into complex multicellular tissues. Here, we develop hydrogels with identical polymer components but different crosslinking capacities to enable the investigation of mechanisms underlying vascular morphogenesis. We show that dynamic (D) hydrogels increase the contractility of human endothelial colony-forming cells (hECFCs), promote the clustering of integrin β1, and promote the recruitment of vinculin, leading to the activation of focal adhesion kinase (FAK) and metalloproteinase expression. This leads to the robust assembly of vasculature and the deposition of new basement membrane. We also show that non-dynamic (N) hydrogels do not promote FAK signaling and that stiff D- and N-hydrogels are constrained for vascular morphogenesis. Furthermore, D-hydrogels promote hECFC microvessel formation and angiogenesis in vivo. Our results indicate that cell contractility mediates integrin signaling via inside-out signaling and emphasizes the importance of matrix dynamics in vascular tissue formation, thus informing future studies of vascularization and tissue engineering applications.
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水凝胶网络动力学调节血管形态发生
基质动力学影响单个细胞如何发育成复杂的多细胞组织。在这里,我们开发了具有相同聚合物成分但不同交联能力的水凝胶,以研究血管形态发生的机制。我们发现,动态(D)水凝胶增加人内皮细胞集落形成细胞(hecfc)的收缩性,促进整合素β1的聚集,促进血管素的募集,导致局灶黏附激酶(FAK)和金属蛋白酶表达的激活。这导致血管系统的强大组装和新基底膜的沉积。我们还发现,非动态(N)水凝胶不会促进FAK信号传导,而刚性D-和N-水凝胶会限制血管形态发生。此外,d -水凝胶促进体内hECFC微血管的形成和血管生成。我们的研究结果表明,细胞收缩通过内向外的信号传导介导整合素信号传导,并强调了基质动力学在血管组织形成中的重要性,从而为血管化和组织工程应用的未来研究提供了信息。
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