Membrane protein folding and oligomerization: the two-stage model.
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[1] A. Fersht,et al. Contribution of hydrophobic interactions to protein stability , 1988, Nature.
[2] J. Rivier,et al. Transmembrane topography of nicotinic acetylcholine receptor: immunochemical tests contradict theoretical predictions based on hydrophobicity profiles. , 1986, Biochemistry.
[3] Y. Jan,et al. Sequence of a probable potassium channel component encoded at Shaker locus of Drosophila. , 1987, Science.
[4] D. Engelman,et al. Bacteriorhodopsin is an inside-out protein. , 1980, Proceedings of the National Academy of Sciences of the United States of America.
[5] An artificial hydrophobic sequence functions as either an anchor or a signal sequence at only one of two positions within the Escherichia coli outer membrane protein OmpA. , 1988, The Journal of biological chemistry.
[6] R. Henderson,et al. Three-dimensional model of purple membrane obtained by electron microscopy , 1975, Nature.
[7] B. Honig,et al. Destabilization of an alpha-helix-bundle protein by helix dipoles. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[8] D. Oesterhelt,et al. The ‘light’ and ‘medium’ subunits of the photosynthetic reaction centre from Rhodopseudomonas viridis: isolation of the genes, nucleotide and amino acid sequence , 1986, The EMBO journal.
[9] F. Young. Biochemistry , 1955, The Indian Medical Gazette.
[10] D. Eisenberg. Three-dimensional structure of membrane and surface proteins. , 1984, Annual review of biochemistry.
[11] T O Yeates,et al. Structure of the reaction center from Rhodobacter sphaeroides R-26: membrane-protein interactions. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[12] B. Bormann,et al. Synthetic peptides mimic the assembly of transmembrane glycoproteins. , 1989, The Journal of biological chemistry.
[13] E. Padlan,et al. Three-dimensional structure of the tryptophan synthase alpha 2 beta 2 multienzyme complex from Salmonella typhimurium. , 1988, The Journal of biological chemistry.
[14] J. Changeux,et al. The noncompetitive blocker [3H]chlorpromazine labels segment M2 but not segment M 1 of the nicotinic acetylcholine receptor α‐subunit , 1989 .
[15] G. Semenza,et al. Membrane protein topology: amino acid residues in a putative transmembrane .alpha.-helix of bacteriorhodopsin labeled with the hydrophobic carbene-generating reagent 3-(trifluoromethyl)-3-(m-[125I]iodophenyl)diazirine , 1985 .
[16] S. Singer. The Properties of Proteins in Nonaqueous Solvents , 1963 .
[17] C. Chothia,et al. Principles of protein–protein recognition , 1975, Nature.
[18] F M Richards,et al. Areas, volumes, packing and protein structure. , 1977, Annual review of biophysics and bioengineering.
[19] M J Sternberg,et al. Electrostatic interactions in globular proteins. Different dielectric models applied to the packing of alpha-helices. , 1984, Journal of molecular biology.
[20] P. Model,et al. An artificial anchor domain: hydrophobicity suffices to stop transfer , 1985, Cell.
[21] Donald M. Engelman,et al. [11] The identification of helical segments in the polypeptide chain of bacteriorhodopsin , 1982 .
[22] S. Singer. 4 – THE MOLECULAR ORGANIZATION OF BIOLOGICAL MEMBRANES , 1971 .
[23] R. Henderson. The structure of the purple membrane from Halobacterium hallobium: analysis of the X-ray diffraction pattern. , 1975, Journal of molecular biology.
[24] C DeLisi,et al. The detection and classification of membrane-spanning proteins. , 1985, Biochimica et biophysica acta.
[25] D. Engelman,et al. Reformation of crystalline purple membrane from purified bacteriorhodopsin fragments. , 1986, The EMBO journal.
[26] B. Sakmann,et al. Rings of negatively charged amino acids determine the acetylcholine receptor channel conductance , 1988, Nature.
[27] L. Rothfield. Structure and function of biological membranes , 1971 .
[28] R. Henderson. The purple membrane from Halobacterium halobium. , 1977, Annual review of biophysics and bioengineering.
[29] Paul J. Flory,et al. Theory of Elastic Mechanisms in Fibrous Proteins , 1956 .
[30] Wim G. J. Hol,et al. The role of the α-helix dipole in protein function and structure , 1985 .
[31] A. Karlin,et al. The sidedness of the COOH terminus of the acetylcholine receptor delta subunit. , 1989, The Journal of biological chemistry.
[32] E. Gundelfinger,et al. The strychnine-binding subunit of the glycine receptor shows homology with nicotinic acetylcholine receptors , 1987, Nature.
[33] J. Changeux,et al. Nicotinic receptor of acetylcholine: structure of an oligomeric integral membrane protein. , 1984, Physiological reviews.
[34] B. Honig,et al. Electrostatic interactions in membranes and proteins. , 1986, Annual review of biophysics and biophysical chemistry.
[35] W. DeGrado,et al. Synthetic amphiphilic peptide models for protein ion channels. , 1988, Science.
[36] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[37] A. Pullman,et al. A possible model for the inner wall of the acetylcholine receptor channel. , 1989, Biochimica et biophysica acta.
[38] R. Henderson,et al. Structural comparison of native and deoxycholate-treated purple membrane. , 1985, Biophysical journal.
[39] V. Flockerzi,et al. Primary structure of the receptor for calcium channel blockers from skeletal muscle , 1987, Nature.
[40] H. Khorana,et al. Refolding of an integral membrane protein. Denaturation, renaturation, and reconstitution of intact bacteriorhodopsin and two proteolytic fragments. , 1981, The Journal of biological chemistry.
[41] J. Popot,et al. On the microassembly of integral membrane proteins. , 1990, Annual review of biophysics and biophysical chemistry.
[42] S. Oiki,et al. M2 delta, a candidate for the structure lining the ionic channel of the nicotinic cholinergic receptor. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[43] Y. Ovchinnikov,et al. The antigenic structure and topography of bacteriorhodopsin in purple membranes as determined by interaction with monoclonal antibodies , 1985 .
[44] J. Changeux,et al. Amino acids of the Torpedo marmorata acetylcholine receptor alpha subunit labeled by a photoaffinity ligand for the acetylcholine binding site. , 1988, Biochemistry.
[45] F. Lottspeich,et al. The ion channel of the nicotinic acetylcholine receptor is formed by the homologous helices M II of the receptor subunits , 1986 .
[46] F. Hucho,et al. The nicotinic acetylcholine receptor and its ion channel. , 1986, European journal of biochemistry.
[47] M. Mckeown,et al. Molecular structure of the chick cerebellar kainate-binding subunit of a putative glutamate receptor , 1989, Nature.
[48] Yuichi Kanaoka,et al. Primary structure of Electrophorus electricus sodium channel deduced from cDNA sequence , 1984, Nature.
[49] R. Garavito,et al. The orientation of beta-sheets in porin. A polarized Fourier transform infrared spectroscopic investigation. , 1988, Biophysical journal.
[50] J. Deisenhofer,et al. Pigment—protein interactions in the photosynthetic reaction centre from Rhodopseudomonas viridis , 1986, The EMBO journal.
[51] B. Sakmann,et al. Location of a δ-subunit region determining ion transport through the acetylcholine receptor channel , 1986, Nature.
[52] B Honig,et al. Internal cavities and buried waters in globular proteins. , 1986, Biochemistry.
[53] P. Seeburg,et al. Glycine vs GABA receptors , 1987, Nature.
[54] P. Seeburg,et al. Sequence and functional expression of the GABAA receptor shows a ligand-gated receptor super-family , 1987, Nature.
[55] D. Engelman,et al. Tertiary structure of bacteriorhodopsin. Positions and orientations of helices A and B in the structural map determined by neutron diffraction. , 1989, Journal of molecular biology.
[56] D. Engelman,et al. Transmembrane topography of the nicotinic acetylcholine receptor delta subunit. , 1987, The EMBO journal.
[57] T. Dwyer,et al. The permeability of the endplate channel to organic cations in frog muscle , 1980, The Journal of general physiology.
[58] H. Khorana. Bacteriorhodopsin, a membrane protein that uses light to translocate protons. , 1988, The Journal of biological chemistry.
[59] L. Nilsson,et al. Structural fluctuations of a helical polypeptide traversing a lipid bilayer. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[60] R. Wenthold,et al. Sequence and expression of a frog brain complementary DNA encoding a kainate-binding protein , 1989, Nature.
[61] H. Lester,et al. Evidence that the M2 membrane-spanning region lines the ion channel pore of the nicotinic receptor. , 1988, Science.
[62] T. Steitz,et al. Identifying nonpolar transbilayer helices in amino acid sequences of membrane proteins. , 1986, Annual review of biophysics and biophysical chemistry.
[63] J. Deisenhofer,et al. Structure of the protein subunits in the photosynthetic reaction centre of Rhodopseudomonas viridis at 3Å resolution , 1985, Nature.
[64] M. Jennings. Topography of membrane proteins. , 1989, Annual review of biochemistry.
[65] S. Heinemann,et al. Cloning by functional expression of a member of the glutamate receptor family , 1989, Nature.
[66] S. Numa. A molecular view of neurotransmitter receptors and ionic channels. , 1987, Harvey lectures.
[67] Elmer S. West. From the U. S. A. , 1965 .
[68] J. Changeux,et al. Structure of the high-affinity binding site for noncompetitive blockers of the acetylcholine receptor: [3H]chlorpromazine labels homologous residues in the beta and delta chains. , 1987, Biochemistry.
[69] Jagdeepkaur Dani,et al. Open channel structure and ion binding sites of the nicotinic acetylcholine receptor channel , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[70] J. A. Dani,et al. Monovalent and divalent cation permeation in acetylcholine receptor channels. Ion transport related to structure , 1987, The Journal of general physiology.
[71] D. Engelman,et al. Refolding of bacteriorhodopsin in lipid bilayers. A thermodynamically controlled two-stage process. , 1987, Journal of molecular biology.
[72] F. Heitz,et al. Ionophore properties of a synthetic alpha-helical transmembrane fragment of the mitochondrial H+ ATP synthetase of Saccharomyces cerevisiae. Comparison with alamethicin. , 1988, Biophysical Journal.
[73] L. C. Allen,et al. A model for the hydrogen bond. , 1975, Proceedings of the National Academy of Sciences of the United States of America.
[74] J. Changeux,et al. Structure of the high-affinity binding site for noncompetitive blockers of the acetylcholine receptor: serine-262 of the delta subunit is labeled by [3H]chlorpromazine. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[75] K. Kinosita,et al. Location and orientation of the chromophore in bacteriorhodopsin. Analysis by fluorescence energy transfer. , 1981, Journal of molecular biology.
[76] T. Maéno,et al. Permeability of the endplate membrane activated by acetylcholine to some organic cations. , 1977, Journal of neurobiology.
[77] T. Steitz,et al. The spontaneous insertion of proteins into and across membranes: The helical hairpin hypothesis , 1981, Cell.
[78] G. Feher,et al. The bacterial photosynthetic reaction center as a model for membrane proteins. , 1989, Annual review of biochemistry.
[79] O. Ptitsyn,et al. Why do globular proteins fit the limited set of folding patterns? , 1987, Progress in biophysics and molecular biology.