Regulated biophysical cues, such as nanotopography, have been shown to be integral for tissue regeneration and embryogenesis in the stem cell niche. Tissue homeostasis involves the interaction of multipotent cells with nanoscaled topographical features in their ECM to regulate aspects of cell behavior. Synthetic nanostructures can drive specific cell differentiation, but the sensing mechanisms for nanocues remain poorly understood. Here, we report that nanotopography-induced human mesenchymal stem cell (hMSC) differentiation through cell mechanotransduction is modulated by the integrin-activated focal adhesion kinase (FAK). On nanogratings with 250 nm line width on polydimethylsiloxane, hMSCs developed aligned stress fibers and showed an up...
The environment around a cell during in vitro culture is unlikely to mimic those in vivo. Preliminar...
Mechanical stimuli are an integrant component of the microenvironment controlling the differentiatio...
Stem cells respond to nanoscale surface features, with changes in cell growth and differentiation me...
Regulated biophysical cues, such as nanotopography, have been shown to be integral for tissue regene...
Regulated biophysical cues, such as nanotopography, have been shown to be integral for tissue regene...
Regulated biophysical cues, such as nanotopography, have been shown to be integral for tissue regene...
The growth of stem cells can be modulated by physical factors such as extracellular matrix nanotopog...
Manipulating neural stem cell (NSC) fate is of great importance for improving the therapeutic effica...
Human embryonic stem cells (hESCs) have great potentials for future cell-based therapeutics. However...
The differentiation of stem cells can be modulated by physical factors such as the micro- and nano-t...
There is a rapidly growing body of literature on the effects of topography and critically, nanotopog...
Stem cells have the capacity to differentiate into various lineages, and the ability to reliably dir...
Stem cells have attracted great attention in recent years due to their promise in regenerative medic...
Regulating cell behavior using nanotopography has been widely implemented. To facilitate cell adhesi...
Mechanical stimuli are an integrant component of the microenvironment controlling the differentiatio...
The environment around a cell during in vitro culture is unlikely to mimic those in vivo. Preliminar...
Mechanical stimuli are an integrant component of the microenvironment controlling the differentiatio...
Stem cells respond to nanoscale surface features, with changes in cell growth and differentiation me...
Regulated biophysical cues, such as nanotopography, have been shown to be integral for tissue regene...
Regulated biophysical cues, such as nanotopography, have been shown to be integral for tissue regene...
Regulated biophysical cues, such as nanotopography, have been shown to be integral for tissue regene...
The growth of stem cells can be modulated by physical factors such as extracellular matrix nanotopog...
Manipulating neural stem cell (NSC) fate is of great importance for improving the therapeutic effica...
Human embryonic stem cells (hESCs) have great potentials for future cell-based therapeutics. However...
The differentiation of stem cells can be modulated by physical factors such as the micro- and nano-t...
There is a rapidly growing body of literature on the effects of topography and critically, nanotopog...
Stem cells have the capacity to differentiate into various lineages, and the ability to reliably dir...
Stem cells have attracted great attention in recent years due to their promise in regenerative medic...
Regulating cell behavior using nanotopography has been widely implemented. To facilitate cell adhesi...
Mechanical stimuli are an integrant component of the microenvironment controlling the differentiatio...
The environment around a cell during in vitro culture is unlikely to mimic those in vivo. Preliminar...
Mechanical stimuli are an integrant component of the microenvironment controlling the differentiatio...
Stem cells respond to nanoscale surface features, with changes in cell growth and differentiation me...