Schwann cells (SCs) are specialized glial cells that are critical for the development, regeneration, and maintenance of nerves in the peripheral nervous system. Recent studies have shown that the mechanical properties of the extracellular matrix can significantly affect cell structure and function. Studying the mechanical interactions between SCs and their microenvironment can aid in understanding their physical and morphological changes as well as their native function. Using a recently developed 3D large deformation traction force microscopy technique, we investigate the mechanosensitivity of SCs across a physiologically relevant substrate stiffness range (0.24–4.80 kPa) in vivo. As oppose to other cell types, we find that the SC spreadin...
Numerous experimental studies have established that cells can sense the stiffness of underlying subs...
Most tissue cells grown in sparse cultures on linearly elastic substrates typically display a small,...
Numerous experimental studies have established that cells can sense the stiffness of underlying subs...
Schwann cells (SCs) are specialized glial cells that are critical for the development, regeneration,...
Cells not only exert and regulate traction forces, but also respond to the mechanical properties of ...
Abstract Background Successful nerve regeneration depends upon directed migration of morphologically...
Schwann cells are the glial cells of the peripheral nervous system (PNS). They insulate axons by for...
Astrocytes are among the most functionally diverse population of cells in the central nervous system...
That mechanical properties of the extracellular environment can influence cell behaviour has already...
Living organisms are made up of a multitude of individual cells that are surrounded by biomolecules ...
Traction Force Microscopy (TFM) is a powerful approach for quantifying cell-material interactions th...
International audienceCell migration plays a major role in many fundamental biological processes, su...
AbstractCells generate mechanical stresses via the action of myosin motors on the actin cytoskeleton...
<div><p>Traction Force Microscopy (TFM) is a powerful approach for quantifying cell-material interac...
Two-dimensional (2D) studies have revealed that mechanical forces drive cell migration and can feedb...
Numerous experimental studies have established that cells can sense the stiffness of underlying subs...
Most tissue cells grown in sparse cultures on linearly elastic substrates typically display a small,...
Numerous experimental studies have established that cells can sense the stiffness of underlying subs...
Schwann cells (SCs) are specialized glial cells that are critical for the development, regeneration,...
Cells not only exert and regulate traction forces, but also respond to the mechanical properties of ...
Abstract Background Successful nerve regeneration depends upon directed migration of morphologically...
Schwann cells are the glial cells of the peripheral nervous system (PNS). They insulate axons by for...
Astrocytes are among the most functionally diverse population of cells in the central nervous system...
That mechanical properties of the extracellular environment can influence cell behaviour has already...
Living organisms are made up of a multitude of individual cells that are surrounded by biomolecules ...
Traction Force Microscopy (TFM) is a powerful approach for quantifying cell-material interactions th...
International audienceCell migration plays a major role in many fundamental biological processes, su...
AbstractCells generate mechanical stresses via the action of myosin motors on the actin cytoskeleton...
<div><p>Traction Force Microscopy (TFM) is a powerful approach for quantifying cell-material interac...
Two-dimensional (2D) studies have revealed that mechanical forces drive cell migration and can feedb...
Numerous experimental studies have established that cells can sense the stiffness of underlying subs...
Most tissue cells grown in sparse cultures on linearly elastic substrates typically display a small,...
Numerous experimental studies have established that cells can sense the stiffness of underlying subs...