Cardiomyocytes generate force for the contraction of the heart to pump blood into the lungs and body. At the same time, they are exquisitely tuned to the mechanical environment and react to e.g. changes in cell and extracellular matrix stiffness or altered stretching due to reduced ejection fraction in heart disease, by adapting their cytoskeleton, force generation and cell mechanics. Both mechanical sensing and cell mechanical adaptations are multiscale processes. Receptor interactions with the extracellular matrix at the nanoscale will lead to clustering of receptors and modification of the cytoskeleton. This in turn alters mechanosensing, force generation, cell and nuclear stiffness and viscoelasticity at the microscale. Further, this af...
Cell response to force regulates essential processes in health and disease. However, the fundamental...
Mechanosensation and mechanotransduction are fundamental processes in understanding the link between...
The ability of the cells to sense mechanical cues is an integral component of ”social” cell behavior...
In recent years, a growing number of studies have shown that mechanical properties play an important...
The rapidly growing field of mechanobiology demands for robust and reproducible characterization of ...
The thesis focuses on investigating cardiac mechanics on a microscale. We consider mechanical proces...
Mechanobiological sensing brings together biology, physics, medicine and engineering, thus helps to ...
During embryonic morphogenesis, the heart undergoes a complex series of cellular phenotypic maturati...
Mechanical force is present in all aspects of living systems. It affects the conformation of molecul...
The biological response of cells to mechanical forces is integral to both normal cell function and t...
Nanomechanical behaviors of single living cardiomyocytes are quantitatively observed using calculate...
Mechanical properties of single myocytes contribute to the whole heart performance, but the measurem...
Many different cell types respond to substrate elasticity as sensitively as more well studied solubl...
Mechanical properties of single myocytes contribute to the whole heart performance, but the measurem...
287: C1–C11, 2004; 10.1152/ajpcell.00559.2003.—Cells face not only a complex biochemical environment...
Cell response to force regulates essential processes in health and disease. However, the fundamental...
Mechanosensation and mechanotransduction are fundamental processes in understanding the link between...
The ability of the cells to sense mechanical cues is an integral component of ”social” cell behavior...
In recent years, a growing number of studies have shown that mechanical properties play an important...
The rapidly growing field of mechanobiology demands for robust and reproducible characterization of ...
The thesis focuses on investigating cardiac mechanics on a microscale. We consider mechanical proces...
Mechanobiological sensing brings together biology, physics, medicine and engineering, thus helps to ...
During embryonic morphogenesis, the heart undergoes a complex series of cellular phenotypic maturati...
Mechanical force is present in all aspects of living systems. It affects the conformation of molecul...
The biological response of cells to mechanical forces is integral to both normal cell function and t...
Nanomechanical behaviors of single living cardiomyocytes are quantitatively observed using calculate...
Mechanical properties of single myocytes contribute to the whole heart performance, but the measurem...
Many different cell types respond to substrate elasticity as sensitively as more well studied solubl...
Mechanical properties of single myocytes contribute to the whole heart performance, but the measurem...
287: C1–C11, 2004; 10.1152/ajpcell.00559.2003.—Cells face not only a complex biochemical environment...
Cell response to force regulates essential processes in health and disease. However, the fundamental...
Mechanosensation and mechanotransduction are fundamental processes in understanding the link between...
The ability of the cells to sense mechanical cues is an integral component of ”social” cell behavior...