AbstractOsteogenic cells respond to mechanical changes in their environment by altering their spread area, morphology, and gene expression profile. In particular, the bulk modulus of the substrate, as well as its microstructure and thickness, can substantially alter the local stiffness experienced by the cell. Although bone tissue regeneration strategies involve culture of bone cells on various biomaterial scaffolds, which are often cross-linked to enhance their physical integrity, it is difficult to ascertain and compare the local stiffness experienced by cells cultured on different biomaterials. In this study, we seek to characterize the local stiffness at the cellular level for MC3T3-E1 cells plated on biomaterial substrates of varying m...
Extracellular mechanical cues have been shown to have a profound effect on osteogenic cell behaviour...
Cells are known to continuously remodel their local extracellular matrix (ECM) and in a reciprocal w...
Cells are continually exposed to forces from their microenvironment, i.e., the forces exerted by the...
Osteogenic cells respond to mechanical changes in their environment by altering their spread area, m...
AbstractOsteogenic cells respond to mechanical changes in their environment by altering their spread...
Osteocytes are terminally differentiated bone cells, derived from osteoblasts, which comprise over 9...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
Anchorage dependent cells respond to mechanical and physical properties of biomaterials. One such cu...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
Cells embedded within tissues respond to mechanical, chemical and biological signals. However, the d...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
The effect of substrate stiffness on the cellular morphology, proliferation, and differentiation of ...
AbstractMany cell types alter their morphology and gene expression profile when grown on chemically ...
ABSTRACT Many cell types alter their morphology and gene expression profile when grown on chemically...
Tissue Engineering has gained increasing attention as a promising means to repair or replace defecti...
Extracellular mechanical cues have been shown to have a profound effect on osteogenic cell behaviour...
Cells are known to continuously remodel their local extracellular matrix (ECM) and in a reciprocal w...
Cells are continually exposed to forces from their microenvironment, i.e., the forces exerted by the...
Osteogenic cells respond to mechanical changes in their environment by altering their spread area, m...
AbstractOsteogenic cells respond to mechanical changes in their environment by altering their spread...
Osteocytes are terminally differentiated bone cells, derived from osteoblasts, which comprise over 9...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
Anchorage dependent cells respond to mechanical and physical properties of biomaterials. One such cu...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
Cells embedded within tissues respond to mechanical, chemical and biological signals. However, the d...
The mechanical properties of the substrate upon which cells are cultured have been shown to influenc...
The effect of substrate stiffness on the cellular morphology, proliferation, and differentiation of ...
AbstractMany cell types alter their morphology and gene expression profile when grown on chemically ...
ABSTRACT Many cell types alter their morphology and gene expression profile when grown on chemically...
Tissue Engineering has gained increasing attention as a promising means to repair or replace defecti...
Extracellular mechanical cues have been shown to have a profound effect on osteogenic cell behaviour...
Cells are known to continuously remodel their local extracellular matrix (ECM) and in a reciprocal w...
Cells are continually exposed to forces from their microenvironment, i.e., the forces exerted by the...