Binding of small basic peptides to membranes containing acidic lipids: theoretical models and experimental results.
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B Honig | N. Ben-Tal | B. Honig | R. M. Peitzsch | S. McLaughlin | R. Peitzsch | G. Denisov | N Ben-Tal | S McLaughlin | R M Peitzsch | G Denisov
[1] B. Tidor,et al. Do salt bridges stabilize proteins? A continuum electrostatic analysis , 1994, Protein science : a publication of the Protein Society.
[2] S. McLaughlin,et al. The electrostatic properties of membranes. , 1989, Annual review of biophysics and biophysical chemistry.
[3] S. McLaughlin,et al. Thermodynamic characterization of the association of small basic peptides with membranes containing acidic lipids. , 1993, Biochimica et biophysica acta.
[4] H. Hauser,et al. Preferred conformation and molecular packing of phosphatidylethanolamine and phosphatidylcholine. , 1981, Biochimica et biophysica acta.
[5] W. Sundquist,et al. Three-dimensional structure of the human immunodeficiency virus type 1 matrix protein. , 1994, Journal of molecular biology.
[6] L. Yang,et al. Membrane domains containing phosphatidylserine and substrate can be important for the activation of protein kinase C. , 1995, Biochemistry.
[7] B. de Kruijff,et al. The role of charge and hydrophobicity in peptide-lipid interaction: a comparative study based on tryptophan fluorescence measurements combined with the use of aqueous and hydrophobic quenchers. , 1990, Biochemistry.
[8] R. M. Peitzsch,et al. Binding of acylated peptides and fatty acids to phospholipid vesicles: pertinence to myristoylated proteins. , 1993, Biochemistry.
[9] B Honig,et al. Salt effects on ligand-DNA binding. Minor groove binding antibiotics. , 1994, Journal of molecular biology.
[10] S. O. Smith,et al. Interfacial conformation of dipalmitoylglycerol and dipalmitoylphosphatidylcholine in phospholipid bilayers. , 1992, Biochemistry.
[11] A. Seelig. Interaction of a substance P agonist and of substance P antagonists with lipid membranes. A thermodynamic analysis. , 1992, Biochemistry.
[12] A. Aderem. The Marcks brothers: A family of protein kinase C substrates , 1992, Cell.
[13] R. Pearson,et al. The molecular structure of lecithin dihydrate , 1979, Nature.
[14] M. Resh,et al. Membrane binding of myristylated peptides corresponding to the NH2 terminus of Src. , 1994, Biochemistry.
[15] M. Resh,et al. Amino-terminal basic residues of Src mediate membrane binding through electrostatic interaction with acidic phospholipids. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[16] A. Newton. Protein Kinase C: Seeing two domains , 1995, Current Biology.
[17] H. Akutsu,et al. Conformational analysis of the polar head group in phosphatidylcholine bilayers: a structural change induced by cations. , 1991, Biochemistry.
[18] L. Tamm. Membrane insertion and lateral mobility of synthetic amphiphilic signal peptides in lipid model membranes. , 1991, Biochimica et biophysica acta.
[19] J. Kim,et al. Does the binding of clusters of basic residues to acidic lipids induce domain formation in membranes? , 1995, Molecular membrane biology.
[20] K. Sharp,et al. Calculations of the electrostatic potential adjacent to model phospholipid bilayers. , 1995, Biophysical journal.
[21] A. Seelig,et al. Local anesthetics and pressure: a comparison of dibucaine binding to lipid monolayers and bilayers. , 1987, Biochimica et biophysica acta.
[22] J. Hancock,et al. N-terminally myristoylated Ras proteins require palmitoylation or a polybasic domain for plasma membrane localization , 1994, Molecular and cellular biology.
[23] A. Parsegian,et al. Energy of an Ion crossing a Low Dielectric Membrane: Solutions to Four Relevant Electrostatic Problems , 1969, Nature.
[24] J A McCammon,et al. Poisson-Boltzmann analysis of the lambda repressor-operator interaction. , 1992, Biophysical journal.
[25] J. Seelig,et al. Structure and dynamics of the phosphatidylcholine and the phosphatidylethanolamine head group in L‐M fibroblasts as studied by deuterium nuclear magnetic resonance. , 1987, The EMBO journal.
[26] H. Coster,et al. The molecular organisation of bimolecular lipid membranes. The dielectric structure of the hydrophilic/hydrophobic interface. , 1981, Biochimica et biophysica acta.
[27] H. Wu,et al. Binding of peptides with basic residues to membranes containing acidic phospholipids. , 1991, Biophysical journal.
[28] C. Roumestand,et al. Analysis of side-chain organization on a refined model of charybdotoxin: structural and functional implications. , 1992, Biochemistry.
[29] E. Evans,et al. Osmotic properties of large unilamellar vesicles prepared by extrusion. , 1993, Biophysical journal.
[30] T. Thorgeirsson,et al. A limiting law for the electrostatics of the binding of polypeptides to phospholipid bilayers. , 1995, Biochemistry.
[31] A. Warshel,et al. Electrostatic control of the efficiency of light-induced electron transfer across membranes. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[32] J Novotny,et al. Electrostatic fields in antibodies and antibody/antigen complexes. , 1992, Progress in biophysics and molecular biology.
[33] D. Roush,et al. Electrostatic potentials and electrostatic interaction energies of rat cytochrome b5 and a simulated anion-exchange adsorbent surface. , 1994, Biophysical journal.
[34] A. Aderem,et al. The myristoyl-electrostatic switch: a modulator of reversible protein-membrane interactions. , 1995, Trends in biochemical sciences.
[35] A. Warshel,et al. Calculations of electrostatic interactions in biological systems and in solutions , 1984, Quarterly Reviews of Biophysics.
[36] B. Honig,et al. Classical electrostatics in biology and chemistry. , 1995, Science.
[37] S. McLaughlin,et al. Phosphoinositide-specific phospholipase C-delta 1 binds with high affinity to phospholipid vesicles containing phosphatidylinositol 4,5-bisphosphate. , 1992, Biochemistry.
[38] S H White,et al. Structure of a fluid dioleoylphosphatidylcholine bilayer determined by joint refinement of x-ray and neutron diffraction data. III. Complete structure. , 1992, Biophysical journal.
[39] G Büldt,et al. Neutron diffraction studies on phosphatidylcholine model membranes. I. Head group conformation. , 1979, Journal of molecular biology.
[40] P. Blackshear. The MARCKS family of cellular protein kinase C substrates. , 1993, The Journal of biological chemistry.
[41] Barry Honig,et al. Salt Effects on Protein-DNA Interactions: The λcI Repressor and EcoRI Endonuclease , 1994 .
[42] M. Resh,et al. Identification of a membrane-binding domain within the amino-terminal region of human immunodeficiency virus type 1 Gag protein which interacts with acidic phospholipids , 1994, Journal of virology.
[43] S. Lifson,et al. Energy functions for peptides and proteins. I. Derivation of a consistent force field including the hydrogen bond from amide crystals. , 1974, Journal of the American Chemical Society.
[44] C. Marshall,et al. A polybasic domain or palmitoylation is required in addition to the CAAX motif to localize p21 ras to the plasma membrane , 1990, Cell.
[45] B. Honig,et al. Stability of "salt bridges" in membrane proteins. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[46] A. Nairn,et al. Activation of protein kinase C results in the displacement of its myristoylated, alanine-rich substrate from punctate structures in macrophage filopodia , 1990, The Journal of experimental medicine.
[47] S. McLaughlin,et al. Electrostatics and reduction of dimensionality produce apparent cooperativity when basic peptides bind to acidic lipids in membranes. , 1992, Biochimica et biophysica acta.
[48] B. de Kruijff,et al. Molecular aspects of the bilayer stabilization induced by poly(L-lysines) of varying size in cardiolipin liposomes. , 1985, Biochimica et biophysica acta.
[49] C. Chothia. The nature of the accessible and buried surfaces in proteins. , 1976, Journal of molecular biology.
[50] P. Blackshear,et al. Phosphorylation reverses the membrane association of peptides that correspond to the basic domains of MARCKS and neuromodulin. , 1994, Biophysical journal.
[51] C. Tanford,et al. The solubility of amino acids and two glycine peptides in aqueous ethanol and dioxane solutions. Establishment of a hydrophobicity scale. , 1971, The Journal of biological chemistry.
[52] J. Seelig,et al. Phospholipid head groups as sensors of electric charge in membranes. , 1987, Biochemistry.
[53] S. McLaughlin,et al. Effect of monolayer surface pressure on the activities of phosphoinositide-specific phospholipase C-beta 1, -gamma 1, and -delta 1. , 1994, Biochemistry.
[54] Håkan Wennerström,et al. Role of hydration and water structure in biological and colloidal interactions , 1996, Nature.
[55] S. Sprang,et al. Structure of the first C2 domain of synaptotagmin I: A novel Ca2+/phospholipid-binding fold , 1995, Cell.
[56] J. Killian,et al. The membrane interaction of amphiphilic model peptides affects phosphatidylserine headgroup and acyl chain order and dynamics. Application of the "phospholipid headgroup electrometer" concept to phosphatidylserine. , 1991, Biochemistry.
[57] S. McLaughlin,et al. Binding of basic peptides to acidic lipids in membranes: effects of inserting alanine(s) between the basic residues. , 1992, Biochemistry.
[58] E. Jakobsson,et al. Incorporation of surface tension into molecular dynamics simulation of an interface: a fluid phase lipid bilayer membrane. , 1995, Biophysical journal.
[59] M. Resh,et al. Myristylation and palmitylation of Src family members: The fats of the matter , 1994, Cell.
[60] M. Resh. Interaction of tyrosine kinase oncoproteins with cellular membranes. , 1993, Biochimica et biophysica acta.
[61] Barry Honig,et al. Focusing of electric fields in the active site of Cu‐Zn superoxide dismutase: Effects of ionic strength and amino‐acid modification , 1986, Proteins.
[62] T. McIntosh,et al. Hydration and steric pressures between phospholipid bilayers. , 1994, Annual review of biophysics and biomolecular structure.