| Literature DB >> 32537880 |
Leixiao Yu1, Yong Hou1, Wenyan Xie2, Jose Luis Cuellar Camacho1, Chong Cheng3, Andrew Holle4,5, Jennifer Young4,5, Britta Trappmann6, Weifeng Zhao3, Matthias F Melzig2, Elisabetta A Cavalcanti-Adam4,5,7, Changsheng Zhao3, Joachim P Spatz4,5, Qiang Wei3, Rainer Haag1.
Abstract
Cells reside in a dynamic microenvironment in which adhesive ligand availability, density, and diffusivity are key factors regulating cellular behavior. Here, the cellular response to integrin-binding ligand dynamics by directly controlling ligand diffusivity via tunable ligand-surface interactions is investigated. Interestingly, cell spread on the surfaces with fast ligand diffusion is independent of myosin-based force generation. Fast ligand diffusion enhances α5β1 but not αvβ3 integrin activation and initiates Rac and RhoA but not ROCK signaling, resulting in lamellipodium-based fast cell spreading. Meanwhile, on surfaces with immobile ligands, αvβ3 and α5β1 integrins synergistically initiate intracellular-force-based canonical mechanotransduction pathways to enhance cell adhesion and osteogenic differentiation of stem cells. These results indicate the presence of heretofore-unrecognized pathways, distinct from canonical actomyosin-driven mechanisms, that are capable of promoting cell adhesion.Entities:
Keywords: adhesive ligands; biointerfaces; cell adhesion; mechanotransduction; polymer coatings
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Year: 2020 PMID: 32537880 DOI: 10.1002/adma.202002566
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849