The mechanical properties of living cells and tissues are important for a variety of functional processes in vivo, including cell adhesion, migration, proliferation and differentiation. Changes in mechano-cellular phenotype, for instance, are associated with cancer progression. Atomic force microscopy (AFM) is an enabling technique that topographically maps and quantifies the mechanical properties of complex biological matter in physiological aqueous environments at the nanometer length scale. Recently we applied AFM to spatially resolve the distribution of nanomechanical stiffness across human breast cancer biopsies in comparison to healthy tissue and benign tumors. This led to the finding that AFM provides quantitative mechano-markers tha...
The atomic force microscope (AFM) is a probe-based microscope that uses nanoscale and structural ima...
Atomic Force Microscopy (AFM) has a great potential as a tool to characterize me-chanical and morpho...
T he behaviour of cells — including the way they grow, spread and die in the body — depends on the m...
Real-time elastography (RTE) is a noninvasive imaging modality where tumor-associated changes in tis...
Breast cancer is one of the most common malignancies among women worldwide. Conventional breast canc...
The biomechanical properties of cells and tissues may be instrumental in increasing our understandin...
The behavior and mechanical properties of cells are strongly dependent on the biochemical and biomec...
Tumors have posed a serious threat to human life and health. Researchers can determine whether or no...
Mechanics are intrinsic properties which appears throughout the formation, development, and aging pr...
Investigating the mechanical properties of cells could reveal a potential source of label-free marke...
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, ...
Mechanical properties play an important role in regulating cellular activities and are critical for ...
Abstract The nanomechanical properties of tumor‐derived small extracellular vesicles (sEVs) are esse...
Atomic Force Microscopy (AFM) is a powerful tool enabling the mechanical characterization of biologi...
The atomic force microscope (AFM) is a probe-based microscope that uses nanoscale and structural ima...
Atomic Force Microscopy (AFM) has a great potential as a tool to characterize me-chanical and morpho...
T he behaviour of cells — including the way they grow, spread and die in the body — depends on the m...
Real-time elastography (RTE) is a noninvasive imaging modality where tumor-associated changes in tis...
Breast cancer is one of the most common malignancies among women worldwide. Conventional breast canc...
The biomechanical properties of cells and tissues may be instrumental in increasing our understandin...
The behavior and mechanical properties of cells are strongly dependent on the biochemical and biomec...
Tumors have posed a serious threat to human life and health. Researchers can determine whether or no...
Mechanics are intrinsic properties which appears throughout the formation, development, and aging pr...
Investigating the mechanical properties of cells could reveal a potential source of label-free marke...
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, ...
Mechanical properties play an important role in regulating cellular activities and are critical for ...
Abstract The nanomechanical properties of tumor‐derived small extracellular vesicles (sEVs) are esse...
Atomic Force Microscopy (AFM) is a powerful tool enabling the mechanical characterization of biologi...
The atomic force microscope (AFM) is a probe-based microscope that uses nanoscale and structural ima...
Atomic Force Microscopy (AFM) has a great potential as a tool to characterize me-chanical and morpho...
T he behaviour of cells — including the way they grow, spread and die in the body — depends on the m...