Doyle Andrew D, Carvajal Nicole, Jin Albert, Matsumoto Kazue, Yamada Kenneth M
Laboratory of Cell and Developmental Biology, Cell Biology Section, National Institute of Dental and Craniofacial Research, National Institutes of Health, Bethesda, Maryland 20892, USA.
Laboratory of Cellular Imaging and Macromolecular Biophysics, National Institute of Biomedical Imaging and Bioengineering, National Institutes of Health, Bethesda, Maryland 20892, USA.
Nat Commun. 2015 Nov 9;6:8720. doi: 10.1038/ncomms9720.
The physical properties of two-dimensional (2D) extracellular matrices (ECMs) modulate cell adhesion dynamics and motility, but little is known about the roles of local microenvironmental differences in three-dimensional (3D) ECMs. Here we generate 3D collagen gels of varying matrix microarchitectures to characterize their regulation of 3D adhesion dynamics and cell migration. ECMs containing bundled fibrils demonstrate enhanced local adhesion-scale stiffness and increased adhesion stability through balanced ECM/adhesion coupling, whereas highly pliable reticular matrices promote adhesion retraction. 3D adhesion dynamics are locally regulated by ECM rigidity together with integrin/ECM association and myosin II contractility. Unlike 2D migration, abrogating contractility stalls 3D migration regardless of ECM pore size. We find force is not required for clustering of activated integrins on 3D native collagen fibrils. We propose that efficient 3D migration requires local balancing of contractility with ECM stiffness to stabilize adhesions, which facilitates the detachment of activated integrins from ECM fibrils.
二维(2D)细胞外基质(ECM)的物理特性可调节细胞黏附动力学和迁移能力,但对于三维(3D)ECM中局部微环境差异的作用却知之甚少。在此,我们制备了具有不同基质微结构的3D胶原蛋白凝胶,以表征其对3D黏附动力学和细胞迁移的调控作用。含有束状纤维的ECM通过平衡的ECM/黏附耦合作用,表现出增强的局部黏附尺度刚度和增加的黏附稳定性,而高度柔韧的网状基质则促进黏附回缩。3D黏附动力学受ECM刚度以及整合素/ECM结合和肌球蛋白II收缩性的局部调节。与2D迁移不同,无论ECM孔径大小如何,消除收缩性都会使3D迁移停滞。我们发现,在3D天然胶原纤维上,激活的整合素聚集不需要力。我们提出,高效的3D迁移需要收缩性与ECM刚度的局部平衡以稳定黏附,这有助于激活的整合素从ECM纤维上脱离。