Single-molecule force-spectroscopy was employed to unfold and refold single sodium-proton antiporters (NhaA) of Escherichia coli from membrane patches. Although transmembrane alpha-helices and extracellular polypeptide loops exhibited sufficient stability to individually establish potential barriers against unfolding, two helices predominantly unfolded pairwise, thereby acting as one structural unit. Many of the potential barriers were detected unfolding NhaA either from the C-terminal or the N-terminal end. It was found that some molecular interactions stabilizing secondary structural elements were directional, while others were not. Additionally, some interactions appeared to occur between the secondary structural elements. After unfoldin...
Atomic force microscopy (AFM) was used to measure the forces stabilizing human aquaporin-1 (hAQP1), ...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
Mechanisms of folding and misfolding of membrane proteins are of interest in cell biology. Recently,...
Atomic force microscopy (AFM) is a powerful technique that enables to study biological macromolecule...
Selective ion and solute transport across cell membranes is a vital process occurring in all types o...
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...
The combination of high-resolution atomic force microscopy imaging and single-molecule force spectro...
AbstractSingle-molecule manipulation techniques have enabled the characterization of the unfolding a...
AbstractThe combination of high-resolution atomic force microscopy imaging and single-molecule force...
Membrane proteins are designed to fold and function in a lipid membrane, yet folding experiments wit...
AbstractRecent advances in atomic force microscopy allowed globular and membrane proteins to be mech...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
AbstractMechanical single-molecule techniques offer exciting possibilities to investigate protein fo...
Atomic force microscopy (AFM) was used to measure the forces stabilizing human aquaporin-1 (hAQP1), ...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
Mechanisms of folding and misfolding of membrane proteins are of interest in cell biology. Recently,...
Atomic force microscopy (AFM) is a powerful technique that enables to study biological macromolecule...
Selective ion and solute transport across cell membranes is a vital process occurring in all types o...
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...
The combination of high-resolution atomic force microscopy imaging and single-molecule force spectro...
AbstractSingle-molecule manipulation techniques have enabled the characterization of the unfolding a...
AbstractThe combination of high-resolution atomic force microscopy imaging and single-molecule force...
Membrane proteins are designed to fold and function in a lipid membrane, yet folding experiments wit...
AbstractRecent advances in atomic force microscopy allowed globular and membrane proteins to be mech...
AbstractIn the last decade atomic force microscopy has been used to measure the mechanical stability...
AbstractMechanical single-molecule techniques offer exciting possibilities to investigate protein fo...
Atomic force microscopy (AFM) was used to measure the forces stabilizing human aquaporin-1 (hAQP1), ...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...
Single-molecule force spectroscopy (SMFS) with atomic force microscope (AFM) has advanced our knowle...