Existing experimental and theoretical studies on the adhesion of molecular bond clusters are usually based on either displacement- or force-controlled loading conditions. Very few studies have addressed whether or not and how the loading conditions affect the stochastic behavior of clusters. By considering the reversible breaking and rebinding process of ligand-receptor bonds, we directly solve the master equation about reactions between receptor-ligand bonds and conduct the corresponding Monte Carlo simulation to investigate the rupture forces of adhesion molecular clusters under linearly incremented displacement and force loading, respectively. We find that the rupture force of clusters strongly depends on loading conditions. Bond breakin...
The fact that biological tissues are stable over prolonged periods of time while individual receptor...
We probe the dynamic strength of multiple biotin-streptavidin adhesion bonds under linear loading us...
A quantitative understanding of how cells interact with their extracellular matrix via molecular bon...
Adhesion interactions mediated by multiple bond types are relevant for many biological and soft matt...
Cells adhere to surfaces or cells via multi-protein complexes that are based on transmembrane cellul...
Biological adhesion often involves several pairs of specific receptor-ligandmolecules. Using rate eq...
The adhesive interactions between cells and surfaces play a key role in many vital physiological pro...
The adhesive interactions between cells and surfaces play a key role in many vital physiological pro...
We study the cooperative rupture of multiple adhesion bonds under shared linear loading. Simulations...
AbstractFocal adhesions are clusters of specific receptor-ligand bonds that link an animal cell to a...
The dynamical strength of adhesion molecules under a time-dependent force is studied theoretically u...
AbstractIn dynamic force spectroscopy, a (bio-)molecular complex is subjected to a steadily increasi...
Conventional theory predicts that molecular bond strength becomes trivial at very low loading rates,...
The adhesive interactions between cells and surfaces play a key role in many vital physiological pro...
Getfert S, Reimann P. Hidden Multiple Bond Effects in Dynamic Force Spectroscopy. Biophysical Journa...
The fact that biological tissues are stable over prolonged periods of time while individual receptor...
We probe the dynamic strength of multiple biotin-streptavidin adhesion bonds under linear loading us...
A quantitative understanding of how cells interact with their extracellular matrix via molecular bon...
Adhesion interactions mediated by multiple bond types are relevant for many biological and soft matt...
Cells adhere to surfaces or cells via multi-protein complexes that are based on transmembrane cellul...
Biological adhesion often involves several pairs of specific receptor-ligandmolecules. Using rate eq...
The adhesive interactions between cells and surfaces play a key role in many vital physiological pro...
The adhesive interactions between cells and surfaces play a key role in many vital physiological pro...
We study the cooperative rupture of multiple adhesion bonds under shared linear loading. Simulations...
AbstractFocal adhesions are clusters of specific receptor-ligand bonds that link an animal cell to a...
The dynamical strength of adhesion molecules under a time-dependent force is studied theoretically u...
AbstractIn dynamic force spectroscopy, a (bio-)molecular complex is subjected to a steadily increasi...
Conventional theory predicts that molecular bond strength becomes trivial at very low loading rates,...
The adhesive interactions between cells and surfaces play a key role in many vital physiological pro...
Getfert S, Reimann P. Hidden Multiple Bond Effects in Dynamic Force Spectroscopy. Biophysical Journa...
The fact that biological tissues are stable over prolonged periods of time while individual receptor...
We probe the dynamic strength of multiple biotin-streptavidin adhesion bonds under linear loading us...
A quantitative understanding of how cells interact with their extracellular matrix via molecular bon...