The combination of high-resolution atomic force microscopy imaging and single-molecule force spectroscopy allows the identification, selection, and mechanical investigation of individual proteins. In a recent paper we had used this technique to unfold and extract single bacteriorhodopsins (BRs) from native purple membrane patches. We show that subsets of the unfolding spectra can be classified and grouped to reveal detailed insight into the individualism of the unfolding pathways. We have further developed this technique and analysis to report here on the influence of pH effects and local mutations on the stability of individual structural elements of BR against mechanical unfolding. We found that, although the seven transmembrane a-helices...
AbstractBacteriorhodopsin (bR) is a haloarchaeal membrane protein that converts the energy of single...
Multiple molecular dynamics simulations of bacterioopsin pulling from its C-terminus show that its a...
Protein folding occurs as a set of transitions between structural states within an energy landscape....
The combination of high-resolution atomic force microscopy imaging and single-molecule force spectro...
AbstractThe combination of high-resolution atomic force microscopy imaging and single-molecule force...
Relatively little is known about the folding and stability of membrane proteins. Conventional therma...
AbstractThe folding and stability of transmembrane proteins is a fundamental and unsolved biological...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
AbstractRecent advances in atomic force microscopy allowed globular and membrane proteins to be mech...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
SummarySelecting an individual membrane protein and probing its mechanical properties has become pos...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
SummarySingle-molecule atomic force microscopy and spectroscopy were applied to detect molecular int...
Analysis of the far-ultraviolet solution and the oriented-film circular dichroic (CD) spectra of the...
Single-molecule force spectroscopy methods, such as AFM and magnetic tweezers, have proved extremely...
AbstractBacteriorhodopsin (bR) is a haloarchaeal membrane protein that converts the energy of single...
Multiple molecular dynamics simulations of bacterioopsin pulling from its C-terminus show that its a...
Protein folding occurs as a set of transitions between structural states within an energy landscape....
The combination of high-resolution atomic force microscopy imaging and single-molecule force spectro...
AbstractThe combination of high-resolution atomic force microscopy imaging and single-molecule force...
Relatively little is known about the folding and stability of membrane proteins. Conventional therma...
AbstractThe folding and stability of transmembrane proteins is a fundamental and unsolved biological...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
AbstractRecent advances in atomic force microscopy allowed globular and membrane proteins to be mech...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
SummarySelecting an individual membrane protein and probing its mechanical properties has become pos...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
SummarySingle-molecule atomic force microscopy and spectroscopy were applied to detect molecular int...
Analysis of the far-ultraviolet solution and the oriented-film circular dichroic (CD) spectra of the...
Single-molecule force spectroscopy methods, such as AFM and magnetic tweezers, have proved extremely...
AbstractBacteriorhodopsin (bR) is a haloarchaeal membrane protein that converts the energy of single...
Multiple molecular dynamics simulations of bacterioopsin pulling from its C-terminus show that its a...
Protein folding occurs as a set of transitions between structural states within an energy landscape....