AbstractA new formalism for the simultaneous determination of the membrane embedment and aggregation of membrane proteins is developed. This method is based on steady-state Förster (or fluorescence) resonance energy transfer (FRET) experiments on site-directed fluorescence labeled proteins in combination with global data analysis utilizing simulation-based fitting. The simulation of FRET was validated by a comparison with a known analytical solution for energy transfer in idealized membrane systems. The applicability of the simulation-based fitting approach was verified on simulated FRET data and then applied to determine the structural properties of the well-known major coat protein from bacteriophage M13 reconstituted into unilamellar DOP...
M13 major coat protein, a 50-amino-acid-long protein, was incorporated into DOPC/DOPG (80/20 molar r...
AbstractA formalism for membrane protein structure determination was developed. This method is based...
AbstractFörster resonance energy transfer (FRET) is an exquisitely sensitive method for detection of...
A new formalism for the simultaneous determination of the membrane embedment and aggregation of memb...
A new formalism for the simultaneous determination of the membrane embedment and aggregation of memb...
AbstractA new formalism for the simultaneous determination of the membrane embedment and aggregation...
ABSTRACT A new formalism for the simultaneous determination of the membrane embedment and aggregatio...
FRET is an indispensable tool for the study of membrane proteins, however the theory to describe the...
AbstractA formalism for membrane protein structure determination was developed. This method is based...
AbstractFörster resonance energy transfer (FRET) experiments are often used to study interactions be...
AbstractQuantification of lipid selectivity by membrane proteins has been previously addressed mainl...
AbstractThe folding reaction of a β-barrel membrane protein, outer membrane protein A (OmpA), is pro...
Analytical and numerical models were developed to describe fluorescence resonance energy transfer (R...
M13 major coat protein, a 50-amino-acid-long protein, was incorporated into DOPC/DOPG (80/20 molar r...
AbstractFluorescence resonance energy transfer (FRET) measurements offer a reliable and noninvasive ...
M13 major coat protein, a 50-amino-acid-long protein, was incorporated into DOPC/DOPG (80/20 molar r...
AbstractA formalism for membrane protein structure determination was developed. This method is based...
AbstractFörster resonance energy transfer (FRET) is an exquisitely sensitive method for detection of...
A new formalism for the simultaneous determination of the membrane embedment and aggregation of memb...
A new formalism for the simultaneous determination of the membrane embedment and aggregation of memb...
AbstractA new formalism for the simultaneous determination of the membrane embedment and aggregation...
ABSTRACT A new formalism for the simultaneous determination of the membrane embedment and aggregatio...
FRET is an indispensable tool for the study of membrane proteins, however the theory to describe the...
AbstractA formalism for membrane protein structure determination was developed. This method is based...
AbstractFörster resonance energy transfer (FRET) experiments are often used to study interactions be...
AbstractQuantification of lipid selectivity by membrane proteins has been previously addressed mainl...
AbstractThe folding reaction of a β-barrel membrane protein, outer membrane protein A (OmpA), is pro...
Analytical and numerical models were developed to describe fluorescence resonance energy transfer (R...
M13 major coat protein, a 50-amino-acid-long protein, was incorporated into DOPC/DOPG (80/20 molar r...
AbstractFluorescence resonance energy transfer (FRET) measurements offer a reliable and noninvasive ...
M13 major coat protein, a 50-amino-acid-long protein, was incorporated into DOPC/DOPG (80/20 molar r...
AbstractA formalism for membrane protein structure determination was developed. This method is based...
AbstractFörster resonance energy transfer (FRET) is an exquisitely sensitive method for detection of...