AbstractBacteriorhodopsin is a model system for membrane proteins. This seven transmembrane helical protein is embedded within a membrane structure called purple membrane. Its structural stability against mechanical stress was recently investigated by atomic force microscopy experiments, in which single proteins were extracted from the purple membrane. Here, we study this process by all-atom molecular dynamics simulations, in which single bacteriorhodopsin molecules were extracted and unfolded from an atomistic purple membrane model. In our simulations, key features from the experiments like force profiles and location of key residues that resist mechanical unfolding were reproduced. These key residues were seen to be stabilized by a dynami...
Single-molecule force spectroscopy (SMFS) provides detailed insight into the mechanical (un)folding ...
SummaryIn response to mechanical stress, membrane proteins progress through sequences of major unfol...
Protein folding occurs as a set of transitions between structural states within an energy landscape....
AbstractMechanical unfolding of single bacteriorhodopsins from a membrane bilayer is studied using m...
Relatively little is known about the folding and stability of membrane proteins. Conventional therma...
AbstractRecent advances in atomic force microscopy allowed globular and membrane proteins to be mech...
Single-molecule force spectroscopy methods, such as AFM and magnetic tweezers, have proved extremely...
AbstractMultiple molecular dynamics simulations of bacterioopsin pulling from its C-terminus show th...
AbstractThe folding and stability of transmembrane proteins is a fundamental and unsolved biological...
Multiple molecular dynamics simulations of bacterioopsin pulling from its C-terminus show that its a...
sin ions sim ere un ldin tural stability is atomic force microscopy (AFM) (5), which molecular mecha...
AbstractThe combination of high-resolution atomic force microscopy imaging and single-molecule force...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
The combination of high-resolution atomic force microscopy imaging and single-molecule force spectro...
Single-molecule force spectroscopy (SMFS) provides detailed insight into the mechanical (un)folding...
Single-molecule force spectroscopy (SMFS) provides detailed insight into the mechanical (un)folding ...
SummaryIn response to mechanical stress, membrane proteins progress through sequences of major unfol...
Protein folding occurs as a set of transitions between structural states within an energy landscape....
AbstractMechanical unfolding of single bacteriorhodopsins from a membrane bilayer is studied using m...
Relatively little is known about the folding and stability of membrane proteins. Conventional therma...
AbstractRecent advances in atomic force microscopy allowed globular and membrane proteins to be mech...
Single-molecule force spectroscopy methods, such as AFM and magnetic tweezers, have proved extremely...
AbstractMultiple molecular dynamics simulations of bacterioopsin pulling from its C-terminus show th...
AbstractThe folding and stability of transmembrane proteins is a fundamental and unsolved biological...
Multiple molecular dynamics simulations of bacterioopsin pulling from its C-terminus show that its a...
sin ions sim ere un ldin tural stability is atomic force microscopy (AFM) (5), which molecular mecha...
AbstractThe combination of high-resolution atomic force microscopy imaging and single-molecule force...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
The combination of high-resolution atomic force microscopy imaging and single-molecule force spectro...
Single-molecule force spectroscopy (SMFS) provides detailed insight into the mechanical (un)folding...
Single-molecule force spectroscopy (SMFS) provides detailed insight into the mechanical (un)folding ...
SummaryIn response to mechanical stress, membrane proteins progress through sequences of major unfol...
Protein folding occurs as a set of transitions between structural states within an energy landscape....