Abstract: Cell adhesion and morphology are affected by the mechanical properties of the extracellular matrix. Using polyacrylamide gels as cell substrates, the cellular response to substrate compliance was investigated in pure neuronal, pure astroglial, or mixed co-cultures. Substrates used spanned a large range of stiffnesses including that of brain tissue. In both pure and mixed cultures, immature (vimentin+) astroglia adhered best to stiffest gels. Mature (GFAP+) astrocyte ad-hesion peaked on intermediate stiffness, while pure GFAP+ astroglial adhesion displayed no intermediate preference and increased with stiffness. Neurite length was constant with stiffness; however, primary dendrite number was lowest on in-termediate gels. Pure neuro...
<div><p>The mechanosensitivity of neurons in the central nervous system (CNS) is an interesting issu...
The mechanosensitivity of neurons in the central nervous system (CNS) is an interesting issue as reg...
In the brain, neural stem cells (NSC) are tightly regulated by external signals and biophysical cues...
AbstractCortical neurons and astrocytes respond strongly to changes in matrix rigidity when cultured...
Mechanical properties of the extracellular matrix change when the balance shifts from a healthy to a...
Astrocytes are among the most functionally diverse population of cells in the central nervous system...
Cells are able to detect and respond to mechanical cues from their environment. Previous studies hav...
Central nervous system tissues, like other tissue types, undergo constant remodeling, which potentia...
Reactive gliosis is a process triggered in astrocytes after traumatic injury, yet the exact conseque...
There is increasing evidence that mechanical issues play a vital role in neuron growth and brain dev...
Extracellular and intracellular cues affect neuronal morphology and contribute to brain diseases, su...
Brain tissues demonstrate heterogeneous mechanical properties, which evolve with aging and pathologi...
Recent studies have highlighted the strong influence of microenvironmental stiffness on various cell...
Astrogliosis due to brain injury or disease can lead to varying molecular and morphological changes ...
Biophysical parameters such as substrate topography and stiffness have been shown independently to e...
<div><p>The mechanosensitivity of neurons in the central nervous system (CNS) is an interesting issu...
The mechanosensitivity of neurons in the central nervous system (CNS) is an interesting issue as reg...
In the brain, neural stem cells (NSC) are tightly regulated by external signals and biophysical cues...
AbstractCortical neurons and astrocytes respond strongly to changes in matrix rigidity when cultured...
Mechanical properties of the extracellular matrix change when the balance shifts from a healthy to a...
Astrocytes are among the most functionally diverse population of cells in the central nervous system...
Cells are able to detect and respond to mechanical cues from their environment. Previous studies hav...
Central nervous system tissues, like other tissue types, undergo constant remodeling, which potentia...
Reactive gliosis is a process triggered in astrocytes after traumatic injury, yet the exact conseque...
There is increasing evidence that mechanical issues play a vital role in neuron growth and brain dev...
Extracellular and intracellular cues affect neuronal morphology and contribute to brain diseases, su...
Brain tissues demonstrate heterogeneous mechanical properties, which evolve with aging and pathologi...
Recent studies have highlighted the strong influence of microenvironmental stiffness on various cell...
Astrogliosis due to brain injury or disease can lead to varying molecular and morphological changes ...
Biophysical parameters such as substrate topography and stiffness have been shown independently to e...
<div><p>The mechanosensitivity of neurons in the central nervous system (CNS) is an interesting issu...
The mechanosensitivity of neurons in the central nervous system (CNS) is an interesting issue as reg...
In the brain, neural stem cells (NSC) are tightly regulated by external signals and biophysical cues...