AbstractMany cell types alter their morphology and gene expression profile when grown on chemically equivalent surfaces with different rigidities. One expectation of this change in morphology and composition is that the cell’s internal stiffness, governed by cytoskeletal assembly and production of internal stresses, will change as a function of substrate stiffness. Atomic force microscopy was used to measure the stiffness of fibroblasts grown on fibronectin-coated polyacrylamide gels of shear moduli varying between 500 and 40,000Pa. Indentation measurements show that the cells’ elastic moduli were equal to, or slightly lower than, those of their substrates for a range of soft gels and reached a saturating value at a substrate rigidity of 20...
Cell viscoelasticity provides mechanistic insights into fundamental biological functions and may be ...
AbstractCells sense the rigidity of their substrate; however, little is known about the physical var...
<p>Cell-substrate interactions influence various cellular processes such as morphology, motility, pr...
Many cell types alter their morphology and gene expression profile when grown on chemically equivale...
AbstractMany cell types alter their morphology and gene expression profile when grown on chemically ...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
AbstractCell types from many tissues respond to changes in substrate stiffness by actively remodelin...
Most tissue cells grown in sparse cultures on linearly elastic substrates typically display a small,...
Cell⁻substrate interaction plays an important role in intracellular behavior and function. Adh...
Cell response to substrate rigidity, closely related to extracellular matrix protein composition, re...
Influences of substrate stiffness on mechanical properties of cardiac myocytes and fibroblasts were ...
Assembly of the extracellular matrix protein fibronectin (FN) into insoluble, viscoelastic fibrils i...
AbstractDuring wound healing and angiogenesis, fibrin serves as a provisional extracellular matrix. ...
Cell viscoelasticity provides mechanistic insights into fundamental biological functions and may be ...
AbstractCells sense the rigidity of their substrate; however, little is known about the physical var...
<p>Cell-substrate interactions influence various cellular processes such as morphology, motility, pr...
Many cell types alter their morphology and gene expression profile when grown on chemically equivale...
AbstractMany cell types alter their morphology and gene expression profile when grown on chemically ...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
AbstractCell types from many tissues respond to changes in substrate stiffness by actively remodelin...
Most tissue cells grown in sparse cultures on linearly elastic substrates typically display a small,...
Cell⁻substrate interaction plays an important role in intracellular behavior and function. Adh...
Cell response to substrate rigidity, closely related to extracellular matrix protein composition, re...
Influences of substrate stiffness on mechanical properties of cardiac myocytes and fibroblasts were ...
Assembly of the extracellular matrix protein fibronectin (FN) into insoluble, viscoelastic fibrils i...
AbstractDuring wound healing and angiogenesis, fibrin serves as a provisional extracellular matrix. ...
Cell viscoelasticity provides mechanistic insights into fundamental biological functions and may be ...
AbstractCells sense the rigidity of their substrate; however, little is known about the physical var...
<p>Cell-substrate interactions influence various cellular processes such as morphology, motility, pr...