Mesenchymal stem cells (MSCs) are highly sensitive to biomechanics of their extracellular environment. Generally, a higher elasticity of culture substrates can drive cells into the osteogenic lineage, whereas low substrate elasticity results in adipogenesis. Applied mechanical loading by cyclic strain is another major variable influencing cell fate. Yet, little is known about the simultaneous effect of both cues. Therefore, the present study investigated the relative importance of both cues on differentiation. MSCs were cultured in an osteogenic and also an adipogenic environment on soft polyacrylamide (PAAm; E = 23 +/- 0.3 kPa), stiff PAAm (111 +/- 2 kPa), and polydimethylsiloxane (PDMS; E = 1,5 +/- 0.07 MPa) either unstrained or with 8% c...
Mounting evidence indicated that human mesenchymal stem cells (hMSCs) are responsive not only to bio...
Extrinsic mechanical signals have been implicated as key regulators of mesenchymal stem cell (MSC) d...
Skeletal muscle differentiation was proven to be influenced by changes in the substrate stiffness. H...
This study examined the effects of mechanical strain on osteogenic and adipogenic differentiation of...
Stem cell fate has been linked to the mechanical properties of their underlying substrate, affecting...
Mechanical strain has become an important tool in tissue engineering for progenitor cell differentia...
Fate choices of stem cells are regulated in response to a complex array of biochemical and physical ...
Although mechanical cues are known to affect stem cell fate and mechanobiology, the significance of ...
Successfully regenerating damaged or diseased bone and other joint tissues will require a detailed u...
Human mesenchymal stem cells (hMSCs) are characterized by their abilities to differentiate into diff...
Embryonic stem cells (ESC) are both a potential source of cells for tissue replacement therapies and...
Matrix elasticity guides differentiation of mesenchymal stem cells (MSCs) but it is unclear if these...
Biomechanical forces have been shown to significantly affect tissue development, morphogenesis, path...
The role of mechanical forces in regulation of skeletal multi-potent cell differentiation, and conse...
Human mesenchymal stem cells (hMSCs), during in vitro expansion, gradually lose their distinct spind...
Mounting evidence indicated that human mesenchymal stem cells (hMSCs) are responsive not only to bio...
Extrinsic mechanical signals have been implicated as key regulators of mesenchymal stem cell (MSC) d...
Skeletal muscle differentiation was proven to be influenced by changes in the substrate stiffness. H...
This study examined the effects of mechanical strain on osteogenic and adipogenic differentiation of...
Stem cell fate has been linked to the mechanical properties of their underlying substrate, affecting...
Mechanical strain has become an important tool in tissue engineering for progenitor cell differentia...
Fate choices of stem cells are regulated in response to a complex array of biochemical and physical ...
Although mechanical cues are known to affect stem cell fate and mechanobiology, the significance of ...
Successfully regenerating damaged or diseased bone and other joint tissues will require a detailed u...
Human mesenchymal stem cells (hMSCs) are characterized by their abilities to differentiate into diff...
Embryonic stem cells (ESC) are both a potential source of cells for tissue replacement therapies and...
Matrix elasticity guides differentiation of mesenchymal stem cells (MSCs) but it is unclear if these...
Biomechanical forces have been shown to significantly affect tissue development, morphogenesis, path...
The role of mechanical forces in regulation of skeletal multi-potent cell differentiation, and conse...
Human mesenchymal stem cells (hMSCs), during in vitro expansion, gradually lose their distinct spind...
Mounting evidence indicated that human mesenchymal stem cells (hMSCs) are responsive not only to bio...
Extrinsic mechanical signals have been implicated as key regulators of mesenchymal stem cell (MSC) d...
Skeletal muscle differentiation was proven to be influenced by changes in the substrate stiffness. H...