Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-integrin-fibronectin clutch. Here the molecular clutch model is extended to account for cell interactions with purely viscous surfaces (i.e., without an elastic component). Supported lipid bilayers present an idealized and controllable system through which to study this concept. Using lipids of different diffusion coefficients, the mobility (i.e., surface viscosity) of the presented ligands (in this case RGD) was altered by an order of magnitude. Cell size and cytoskeletal organization were proportional to viscosity. Furthermore, there was a higher number of focal adhesions and a higher phosphorylation of FAK on less-mobile (more-viscous) sur...
Cell mechanotransduction is an area of intense research focus. Until now, very limited tools have ex...
Cell motility relies on the continuous reorganization of a dynamic actin–myosin–adhesion network at ...
In this talk I describe our work to understand how cells sense and exert mechanical force across mul...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
This thesis has explored the nature of cellular behaviour in response to the mobility of ligands pre...
Tissue cells display mechanosensitivity in their ability to discern and respond to changes in the vi...
It has been well established that there is a link between substrate stiffness and cellular activitie...
What governs tissue organization and movement? If molecular and genetic approaches are able to give ...
What governs tissue organization and movement? If molecular and genetic approaches are able to give ...
International audienceWhat governs tissue organization and movement? If molecular and genetic approa...
<div><p>What governs tissue organization and movement? If molecular and genetic approaches are able ...
Cell behavior such as cell adhesion, spreading, and contraction critically depends on the elastic pr...
Cell mechanotransduction is an area of intense research focus. Until now, very limited tools have ex...
Cell motility relies on the continuous reorganization of a dynamic actin–myosin–adhesion network at ...
In this talk I describe our work to understand how cells sense and exert mechanical force across mul...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-...
This thesis has explored the nature of cellular behaviour in response to the mobility of ligands pre...
Tissue cells display mechanosensitivity in their ability to discern and respond to changes in the vi...
It has been well established that there is a link between substrate stiffness and cellular activitie...
What governs tissue organization and movement? If molecular and genetic approaches are able to give ...
What governs tissue organization and movement? If molecular and genetic approaches are able to give ...
International audienceWhat governs tissue organization and movement? If molecular and genetic approa...
<div><p>What governs tissue organization and movement? If molecular and genetic approaches are able ...
Cell behavior such as cell adhesion, spreading, and contraction critically depends on the elastic pr...
Cell mechanotransduction is an area of intense research focus. Until now, very limited tools have ex...
Cell motility relies on the continuous reorganization of a dynamic actin–myosin–adhesion network at ...
In this talk I describe our work to understand how cells sense and exert mechanical force across mul...