We investigate the mechanical unfolding of the tenth type III domain from fibronectin (FnIII(10)) both at constant force and at constant pulling velocity, by all-atom Monte Carlo simulations. We observe both apparent two-state unfolding and several unfolding pathways involving one of three major, mutually exclusive intermediate states. All three major intermediates lack two of seven native beta-strands, and share a quite similar extension. The unfolding behavior is found to depend strongly on the pulling conditions. In particular, we observe large variations in the relative frequencies of occurrence for the intermediates. At low constant force or low constant velocity, all three major intermediates occur with a significant frequency. At hig...
AbstractThe extracellular matrix contains components with remarkable mechanical properties, includin...
We apply novel atomistic simulations based on potential energy surface exploration to investigate th...
<p>Fibronectin (FN) is a large extracellular matrix (ECM) protein that is made up of</p><p>type I (F...
which bind to cell-surface integrins. In the native structure of FnIII10 (Fig. 1), the RGD motif is ...
AbstractThe experimentally derived mechanical hierarchy of the different FnIII domains from fibronec...
AbstractMolecular dynamics simulations supplement single-molecule pulling experiments by providing t...
Titin, an important constituent of vertebrate muscles, is a protein of the order of a micrometer in ...
Extracellular matrix fibrils of fibronectin (FN) are highly elastic, and are typically stretched thr...
Single-molecule force spectroscopy is providing unique, and sometimes unexpected, insights into the ...
AbstractSingle-molecule force spectroscopy is providing unique, and sometimes unexpected, insights i...
AbstractSteered molecular dynamics simulations have previously been used to investigate the mechanic...
Fibronectin (FN) forms fibrillar networks coupling cells to the extracellular matrix. The formation ...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
Many proteins in alive organisms have a domain structure providing them the possibility to reversibl...
Whether mechanically unfolded fibronectin (Fn) is present within native extracellular matrix fibrils...
AbstractThe extracellular matrix contains components with remarkable mechanical properties, includin...
We apply novel atomistic simulations based on potential energy surface exploration to investigate th...
<p>Fibronectin (FN) is a large extracellular matrix (ECM) protein that is made up of</p><p>type I (F...
which bind to cell-surface integrins. In the native structure of FnIII10 (Fig. 1), the RGD motif is ...
AbstractThe experimentally derived mechanical hierarchy of the different FnIII domains from fibronec...
AbstractMolecular dynamics simulations supplement single-molecule pulling experiments by providing t...
Titin, an important constituent of vertebrate muscles, is a protein of the order of a micrometer in ...
Extracellular matrix fibrils of fibronectin (FN) are highly elastic, and are typically stretched thr...
Single-molecule force spectroscopy is providing unique, and sometimes unexpected, insights into the ...
AbstractSingle-molecule force spectroscopy is providing unique, and sometimes unexpected, insights i...
AbstractSteered molecular dynamics simulations have previously been used to investigate the mechanic...
Fibronectin (FN) forms fibrillar networks coupling cells to the extracellular matrix. The formation ...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
Many proteins in alive organisms have a domain structure providing them the possibility to reversibl...
Whether mechanically unfolded fibronectin (Fn) is present within native extracellular matrix fibrils...
AbstractThe extracellular matrix contains components with remarkable mechanical properties, includin...
We apply novel atomistic simulations based on potential energy surface exploration to investigate th...
<p>Fibronectin (FN) is a large extracellular matrix (ECM) protein that is made up of</p><p>type I (F...