The measurement of viscoelasticity of cells in physiological environments with high spatio-temporal resolution is a key goal in cell mechanobiology. Traditionally only the elastic properties have been measured from quasi-static force-distance curves using the atomic force microscope (AFM). Recently, dynamic AFM-based methods have been proposed to map the local in vitro viscoelastic properties of living cells with nanoscale resolution. However, the differences in viscoelastic properties estimated from such dynamic and traditional quasi-static techniques are poorly understood. In this work we quantitatively reconstruct the local force and dissipation gradients (viscoelasticity) on live fibroblast cells in buffer solutions using Lorentz force ...
The Atomic Force Microscope (AFM) is a key instrument for mapping quantitatively the local mechanica...
Identification of mechanical properties of cells has previously been shown to have a great potential...
Measurements of local material properties of complex biological systems (e.g. live cells and viruses...
AbstractThe measurement of viscoelasticity of cells in physiological environments with high spatio-t...
Cell mechanics plays an important role in regulating the physiological activities of cells. The adve...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
We developed force clamp force mapping (FCFM), an atomic force microscopy (AFM) technique for measur...
In this work, a method based on atomic force microscopy (AFM) approach-reside-retract experiments wa...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
The increasingly recognised importance of viscoelastic properties of cells in pathological condition...
AbstractViscoelasticity of the leading edge, i.e., the lamellipodium, of a cell is the key property ...
Organisms are composed by cells, and the cells can also reflect the physiology of creatures. The com...
A single cell can be regarded as a complex network that contains thousands of overlapping signaling ...
A single cell can be regarded as a complex network that contains thousands of overlapping signaling ...
<p>Dynamic mechanical behaviour of living cells has been described by viscoelasticity. However, quan...
The Atomic Force Microscope (AFM) is a key instrument for mapping quantitatively the local mechanica...
Identification of mechanical properties of cells has previously been shown to have a great potential...
Measurements of local material properties of complex biological systems (e.g. live cells and viruses...
AbstractThe measurement of viscoelasticity of cells in physiological environments with high spatio-t...
Cell mechanics plays an important role in regulating the physiological activities of cells. The adve...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
We developed force clamp force mapping (FCFM), an atomic force microscopy (AFM) technique for measur...
In this work, a method based on atomic force microscopy (AFM) approach-reside-retract experiments wa...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
The increasingly recognised importance of viscoelastic properties of cells in pathological condition...
AbstractViscoelasticity of the leading edge, i.e., the lamellipodium, of a cell is the key property ...
Organisms are composed by cells, and the cells can also reflect the physiology of creatures. The com...
A single cell can be regarded as a complex network that contains thousands of overlapping signaling ...
A single cell can be regarded as a complex network that contains thousands of overlapping signaling ...
<p>Dynamic mechanical behaviour of living cells has been described by viscoelasticity. However, quan...
The Atomic Force Microscope (AFM) is a key instrument for mapping quantitatively the local mechanica...
Identification of mechanical properties of cells has previously been shown to have a great potential...
Measurements of local material properties of complex biological systems (e.g. live cells and viruses...