The nanomechanical properties of living cells, such as their surface elastic response and adhesion, have important roles in cellular processes such as morphogenesis, mechano-transduction, focal adhesion, motility, metastasis and drug delivery. Techniques based on quasi-static atomic force microscopy techniques can map these properties, but they lack the spatial and temporal resolution that is needed to observe many of the relevant details. Here, we present a dynamic atomic force microscopy method to map quantitatively the nanomechanical properties of live cells with a throughput (measured in pixels/minute) that is ∼10-1,000 times higher than that achieved with quasi-static atomic force microscopy techniques. The local properties of a cell a...
AbstractThe spatial and temporal changes of the mechanical properties of living cells reflect comple...
We developed force clamp force mapping (FCFM), an atomic force microscopy (AFM) technique for measur...
Cells in their native environment are bombarded by mechanical signals ranging from strains within a ...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
Measurements of local material properties of complex biological systems (e.g. live cells and viruses...
The Atomic Force Microscope (AFM) is a key instrument for mapping quantitatively the local mechanica...
The behavior and mechanical properties of cells are strongly dependent on the biochemical and biomec...
The behavior and mechanical properties of cells are strongly dependent on the biochemical and biomec...
The cytoskeleton controls cellular morphology and mediates the mechanical interactions between a cel...
The advent of atomic force microscopy (AFM) provides a powerful tool for investigating the behaviors...
The advent of atomic force microscopy (AFM) provides a powerful tool for investigating the behaviors...
© 2014, Science China Press and Springer-Verlag Berlin Heidelberg. The advent of atomic force micros...
AbstractThe measurement of viscoelasticity of cells in physiological environments with high spatio-t...
The measurement of viscoelasticity of cells in physiological environments with high spatio-temporal ...
AbstractThe spatial and temporal changes of the mechanical properties of living cells reflect comple...
We developed force clamp force mapping (FCFM), an atomic force microscopy (AFM) technique for measur...
Cells in their native environment are bombarded by mechanical signals ranging from strains within a ...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
The nanomechanical properties of living cells, such as their surface elastic response and adhesion, ...
Measurements of local material properties of complex biological systems (e.g. live cells and viruses...
The Atomic Force Microscope (AFM) is a key instrument for mapping quantitatively the local mechanica...
The behavior and mechanical properties of cells are strongly dependent on the biochemical and biomec...
The behavior and mechanical properties of cells are strongly dependent on the biochemical and biomec...
The cytoskeleton controls cellular morphology and mediates the mechanical interactions between a cel...
The advent of atomic force microscopy (AFM) provides a powerful tool for investigating the behaviors...
The advent of atomic force microscopy (AFM) provides a powerful tool for investigating the behaviors...
© 2014, Science China Press and Springer-Verlag Berlin Heidelberg. The advent of atomic force micros...
AbstractThe measurement of viscoelasticity of cells in physiological environments with high spatio-t...
The measurement of viscoelasticity of cells in physiological environments with high spatio-temporal ...
AbstractThe spatial and temporal changes of the mechanical properties of living cells reflect comple...
We developed force clamp force mapping (FCFM), an atomic force microscopy (AFM) technique for measur...
Cells in their native environment are bombarded by mechanical signals ranging from strains within a ...