细胞外基质
粘弹性
刚度(电磁)
生物物理学
消散
化学
材料科学
细胞生物学
物理
生物
复合材料
热力学
作者
Carla Huerta-López,Alejandro Clemente-Manteca,Diana Velázquez-Carreras,Francisco M. Espinosa,J. García Sánchez,Álvaro Martínez‐del‐Pozo,María García-García,Sara Martín-Colomo,A. Blanco,Ricardo Esteban-González,Francisco M. Martín-Zamora,Luis I. Gutierrez-Rus,Ricardo Garcı́a,Pere Roca‐Cusachs,Alberto Elósegui-Artola,Miguel Á. del Pozo,Elías Herrero‐Galán,Pablo Sáez,Gustavo R. Plaza,Carla Huerta-López
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2024-11-15
卷期号:10 (46)
标识
DOI:10.1126/sciadv.adf9758
摘要
The mechanics of the extracellular matrix (ECM) determine cell activity and fate through mechanoresponsive proteins including Yes-associated protein 1 (YAP). Rigidity and viscous relaxation have emerged as the main mechanical properties of the ECM steering cell behavior. However, how cells integrate coexisting ECM rigidity and viscosity cues remains poorly understood, particularly in the high-stiffness regime. Here, we have exploited engineered stiff viscoelastic protein hydrogels to show that, contrary to current models of cell-ECM interaction, substrate viscous energy dissipation attenuates mechanosensing even when cells are exposed to higher effective rigidity. This unexpected behavior is however readily captured by a pull-and-hold model of molecular clutch–based cell mechanosensing, which also recapitulates opposite cellular response at low rigidities. Consistent with predictions of the pull-and-hold model, we find that myosin inhibition can boost mechanosensing on cells cultured on dissipative matrices. Together, our work provides general mechanistic understanding on how cells respond to the viscoelastic properties of the ECM.
科研通智能强力驱动
Strongly Powered by AbleSci AI