Small angle x-ray scattering studies of magnetically oriented lipid bilayers.

PubWeight™: 0.88‹?›

🔗 View Article (PMC 1236422)

Published in Biophys J on November 01, 1995

Authors

B J Hare1, J H Prestegard, D M Engelman

Author Affiliations

1: Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, Connecticut 06520, USA.

Articles cited by this

Lipid bilayer thickness varies linearly with acyl chain length in fluid phosphatidylcholine vesicles. J Mol Biol (1983) 6.67

Structure of a fluid dioleoylphosphatidylcholine bilayer determined by joint refinement of x-ray and neutron diffraction data. III. Complete structure. Biophys J (1992) 6.46

Bilayer structure in membranes. Nat New Biol (1971) 4.12

Magnetically orientable phospholipid bilayers containing small amounts of a bile salt analogue, CHAPSO. Biophys J (1990) 1.95

Quasielastic light-scattering studies of aqueous biliary lipid systems. Mixed micelle formation in bile salt-lecithin solutions. Biochemistry (1980) 1.80

Magnetic anisotropy of lecithin membranes. A new anisotropy susceptometer. Biophys J (1984) 1.58

Magnetic orientation of sphingomyelin-lecithin bilayers. Biophys J (1987) 1.43

X-ray diffraction studies of retinal rods. I. Structure of the disc membrane, effect of illumination. Biochim Biophys Acta (1975) 1.43

Intermediate structures in the cholate-phosphatidylcholine vesicle-micelle transition. Biophys J (1991) 1.27

Structural dimorphism of bile salt/lecithin mixed micelles. A possible regulatory mechanism for cholesterol solubility in bile? X-ray structure analysis. Biochemistry (1981) 1.19

Biological membrane structure as "seen" by X-ray and neutron diffraction techniques. J Membr Biol (1985) 0.94

The induction of lamellar stacking by cholesterol in lecithin-bile salt model systems and human bile studied by synchrotron X-radiation. FEBS Lett (1991) 0.88

Solution behavior of DNA studied with magnetically induced birefringence. Methods Enzymol (1992) 0.80

Articles by these authors

Identifying nonpolar transbilayer helices in amino acid sequences of membrane proteins. Annu Rev Biophys Biophys Chem (1986) 11.00

The spontaneous insertion of proteins into and across membranes: the helical hairpin hypothesis. Cell (1981) 7.77

Lipid bilayer thickness varies linearly with acyl chain length in fluid phosphatidylcholine vesicles. J Mol Biol (1983) 6.67

A transmembrane helix dimer: structure and implications. Science (1997) 6.46

The GxxxG motif: a framework for transmembrane helix-helix association. J Mol Biol (2000) 5.09

Membrane protein folding and oligomerization: the two-stage model. Biochemistry (1990) 4.86

Path of the polypeptide in bacteriorhodopsin. Proc Natl Acad Sci U S A (1980) 4.76

Nuclear magnetic dipole interactions in field-oriented proteins: information for structure determination in solution. Proc Natl Acad Sci U S A (1995) 4.20

Sequence specificity in the dimerization of transmembrane alpha-helices. Biochemistry (1992) 4.19

Bilayer structure in membranes. Nat New Biol (1971) 4.12

Statistical analysis of amino acid patterns in transmembrane helices: the GxxxG motif occurs frequently and in association with beta-branched residues at neighboring positions. J Mol Biol (2000) 3.95

Helical membrane protein folding, stability, and evolution. Annu Rev Biochem (2000) 3.63

Glycophorin A dimerization is driven by specific interactions between transmembrane alpha-helices. J Biol Chem (1992) 3.52

Order matrix analysis of residual dipolar couplings using singular value decomposition. J Magn Reson (1999) 3.49

Current models for the structure of biological membranes. J Cell Biol (1969) 3.47

X-ray diffraction studies of phase transitions in the membrane of Mycoplasma laidlawii. J Mol Biol (1970) 3.31

The effect of point mutations on the free energy of transmembrane alpha-helix dimerization. J Mol Biol (1997) 3.16

Interhelical hydrogen bonding drives strong interactions in membrane proteins. Nat Struct Biol (2000) 3.12

The Calpha ---H...O hydrogen bond: a determinant of stability and specificity in transmembrane helix interactions. Proc Natl Acad Sci U S A (2001) 2.97

A dimerization motif for transmembrane alpha-helices. Nat Struct Biol (1994) 2.82

Lipid bilayer structure in the membrane of Mycoplasma laidlawii. J Mol Biol (1971) 2.81

NMR evidence for slow collective motions in cyanometmyoglobin. Nat Struct Biol (1997) 2.77

TOXCAT: a measure of transmembrane helix association in a biological membrane. Proc Natl Acad Sci U S A (1999) 2.76

Bacteriorhodopsin is an inside-out protein. Proc Natl Acad Sci U S A (1980) 2.72

The planar organization of lecithin-cholesterol bilayers. J Biol Chem (1972) 2.62

Polar residues drive association of polyleucine transmembrane helices. Proc Natl Acad Sci U S A (2001) 2.47

A complete mapping of the proteins in the small ribosomal subunit of Escherichia coli. Science (1987) 2.43

Refolding of bacteriorhodopsin in lipid bilayers. A thermodynamically controlled two-stage process. J Mol Biol (1987) 2.23

Two EGF molecules contribute additively to stabilization of the EGFR dimer. EMBO J (1997) 2.16

Computational searching and mutagenesis suggest a structure for the pentameric transmembrane domain of phospholamban. Nat Struct Biol (1995) 2.15

Spontaneous, pH-dependent membrane insertion of a transbilayer alpha-helix. Biochemistry (1997) 2.11

Bacteriorhodopsin remains dispersed in fluid phospholipid bilayers over a wide range of bilayer thicknesses. J Mol Biol (1983) 2.07

Structural and dynamic analysis of residual dipolar coupling data for proteins. J Am Chem Soc (2001) 2.01

The length of the flexible SNAREpin juxtamembrane region is a critical determinant of SNARE-dependent fusion. Mol Cell (1999) 1.99

Magnetically orientable phospholipid bilayers containing small amounts of a bile salt analogue, CHAPSO. Biophys J (1990) 1.95

Detergents modulate dimerization, but not helicity, of the glycophorin A transmembrane domain. J Mol Biol (1999) 1.94

Characterization of the plasma membrane of Mycoplasma laidlawii. I. Sodium dodecyl sulfate solubilization. Biochim Biophys Acta (1967) 1.90

Glycophorin A helical transmembrane domains dimerize in phospholipid bilayers: a resonance energy transfer study. Biochemistry (1994) 1.87

Characterization of the plasma membrane of Mycoplasma laidlawii. II. Modes of aggregation of solubilized membrane components. Biochim Biophys Acta (1967) 1.85

Molecular mechanism for the interaction of phospholipid with cholesterol. Nat New Biol (1972) 1.81

Specificity and promiscuity in membrane helix interactions. Q Rev Biophys (1994) 1.79

Specificity in transmembrane helix-helix interactions can define a hierarchy of stability for sequence variants. Proc Natl Acad Sci U S A (2001) 1.77

Domain orientation and dynamics in multidomain proteins from residual dipolar couplings. Biochemistry (1999) 1.77

Improved prediction for the structure of the dimeric transmembrane domain of glycophorin A obtained through global searching. Proteins (1996) 1.75

Truncated staphylococcal nuclease is compact but disordered. Proc Natl Acad Sci U S A (1992) 1.72

Mutations can cause large changes in the conformation of a denatured protein. Biochemistry (1993) 1.69

Surface area per lipid molecule in the intact membrane of the human red cell. Nature (1969) 1.65

Variation of molecular alignment as a means of resolving orientational ambiguities in protein structures from dipolar couplings. J Magn Reson (2000) 1.64

Structural model of the phospholamban ion channel complex in phospholipid membranes. J Mol Biol (1995) 1.62

Improved dilute bicelle solutions for high-resolution NMR of biological macromolecules. J Biomol NMR (1998) 1.62

The glycophorin A transmembrane domain dimer: sequence-specific propensity for a right-handed supercoil of helices. Biochemistry (1992) 1.57

Structure-based prediction of the stability of transmembrane helix-helix interactions: the sequence dependence of glycophorin A dimerization. Proc Natl Acad Sci U S A (1998) 1.56

A neutron scattering study of the distribution of protein and RNA in the 30 S ribosomal subunit of Escherichia coli. J Mol Biol (1975) 1.54

Pair distribution functions of bacteriorhodopsin and rhodopsin in model bilayers. Biophys J (1983) 1.54

A zinc-binding domain involved in the dimerization of RAG1. J Mol Biol (1996) 1.53

Structural organization of the pentameric transmembrane alpha-helices of phospholamban, a cardiac ion channel. EMBO J (1994) 1.52

Dimerization of the p185neu transmembrane domain is necessary but not sufficient for transformation. Oncogene (1997) 1.52

Positions of S2, S13, S16, S17, S19 and S21 in the 30 S ribosomal subunit of Escherichia coli. J Mol Biol (1988) 1.50

Inelastic neutron scattering analysis of hexokinase dynamics and its modification on binding of glucose. Nature (1982) 1.45

Amphipols: polymeric surfactants for membrane biology research. Cell Mol Life Sci (2003) 1.42

1H and 15N magnetic resonance assignments, secondary structure, and tertiary fold of Escherichia coli DnaJ(1-78). Biochemistry (1995) 1.36

Modulation of glycophorin A transmembrane helix interactions by lipid bilayers: molecular dynamics calculations. J Mol Biol (2000) 1.35

A biophysical study of integral membrane protein folding. Biochemistry (1997) 1.35

Nuclear magnetic resonance characterization of the myristoylated, N-terminal fragment of ADP-ribosylation factor 1 in a magnetically oriented membrane array. Biochemistry (1998) 1.34

Magnetic field induced ordering of bile salt/phospholipid micelles: new media for NMR structural investigations. Biochim Biophys Acta (1988) 1.33

Characterization of the plasma membrane of Mycoplasma laidlawii. IV. Structure and composition of membrane and aggregated components. Biochim Biophys Acta (1968) 1.33

Positions of proteins S6, S11 and S15 in the 30 S ribosomal subunit of Escherichia coli. J Mol Biol (1981) 1.31

Visual arrestin activity may be regulated by self-association. J Biol Chem (1999) 1.31

High-resolution proton NMR studies of gangliosides. 1. Use of homonuclear two-dimensional spin-echo J-correlated spectroscopy for determination of residue composition and anomeric configurations. Biochemistry (1983) 1.30

Yeast hexokinase in solution exhibits a large conformational change upon binding glucose or glucose 6-phosphate. Biochemistry (1979) 1.28

Calcium-induced increase in the radius of gyration and maximum dimension of calmodulin measured by small-angle X-ray scattering. Biochemistry (1985) 1.28

Refinement of the NMR structures for acyl carrier protein with scalar coupling data. Proteins (1990) 1.27

Orientational behavior of phosphatidylcholine bilayers in the presence of aromatic amphiphiles and a magnetic field. Biophys J (1993) 1.27

Are there dominant membrane protein families with a given number of helices? Proteins (1997) 1.26

Application of neural networks to automated assignment of NMR spectra of proteins. J Biomol NMR (1994) 1.24

Substrate binding closes the cleft between the domains of yeast phosphoglycerate kinase. J Biol Chem (1979) 1.24

Intramembrane helix-helix association in oligomerization and transmembrane signaling. Annu Rev Biophys Biomol Struct (1992) 1.24

Tertiary structure of bacteriorhodopsin. Positions and orientations of helices A and B in the structural map determined by neutron diffraction. J Mol Biol (1989) 1.24

A dipolar coupling based strategy for simultaneous resonance assignment and structure determination of protein backbones. J Am Chem Soc (2001) 1.23

NMR studies of pH-induced transport of carboxylic acids across phospholipid vesicle membranes. Biochem Biophys Res Commun (1977) 1.21

Leucine side-chain rotamers in a glycophorin A transmembrane peptide as revealed by three-bond carbon-carbon couplings and 13C chemical shifts. J Biomol NMR (1996) 1.21

A dynamic model for the structure of acyl carrier protein in solution. Biochemistry (1989) 1.17

Fourier transform infrared spectroscopy and site-directed isotope labeling as a probe of local secondary structure in the transmembrane domain of phospholamban. Biophys J (1996) 1.16

Rapid determination of protein folds using residual dipolar couplings. J Mol Biol (2000) 1.14

Three-dimensional structure of acyl carrier protein determined by NMR pseudoenergy and distance geometry calculations. Biochemistry (1988) 1.14

A new method for the determination of biological quarternary structure by neutron scattering. Proc Natl Acad Sci U S A (1972) 1.14

NMR and computational studies of interactions between remote residues in gangliosides. Biochemistry (1990) 1.13

Performance of a neural-network-based determination of amino acid class and secondary structure from 1H-15N NMR data. J Biomol NMR (1997) 1.12

Asymmetry in the 50S ribosomal subunit of Escherichia coli. Proc Natl Acad Sci U S A (1974) 1.12

Forces involved in the assembly and stabilization of membrane proteins. FASEB J (1992) 1.10

Surface point mutations that significantly alter the structure and stability of a protein's denatured state. Protein Sci (1996) 1.09

A view of dynamics changes in the molten globule-native folding step by quasielastic neutron scattering. J Mol Biol (2000) 1.09

Coassembly of synthetic segments of shaker K+ channel within phospholipid membranes. Biochemistry (1996) 1.09

Melittin binding causes a large calcium-dependent conformational change in calmodulin. Proc Natl Acad Sci U S A (1989) 1.08

Neutron-scattering studies of the ribosome of Escherichia coli: a provisional map of the locations of proteins S3, S4, S5, S7, S8 and S9 in the 30 S subunit. J Mol Biol (1978) 1.08

Neutron scattering measurements of separation and shape of proteins in 30S ribosomal subunit of Escherichia coli: S2-S5, S5-S8, S3-S7. Proc Natl Acad Sci U S A (1975) 1.07

Bacteriorhodopsin can be refolded from two independently stable transmembrane helices and the complementary five-helix fragment. Biochemistry (1992) 1.07

Cholesterol-phosphatidylcholine interactions in vesicle systems. Implication of vesicle size and proton magnetic resonance line-width changes. Biochemistry (1974) 1.07