Can we predict biological activity of antimicrobial peptides from their interactions with model phospholipid membranes?
暂无分享,去创建一个
Niv Papo | Y. Shai | N. Papo | Yechiel Shai
[1] Y. Shai,et al. Interaction of the mammalian antibacterial peptide cecropin P1 with phospholipid vesicles. , 1995, Biochemistry.
[2] P. Storici,et al. A novel cDNA sequence encoding a pig leukocyte antimicrobial peptide with a cathelin-like pro-sequence. , 1993, Biochemical and biophysical research communications.
[3] Y. Shai,et al. Diastereomers of Cytolysins, a Novel Class of Potent Antibacterial Peptides (*) , 1996, The Journal of Biological Chemistry.
[4] M. Salzet,et al. Antimicrobial peptides versus parasitic infections? , 2002, Trends in parasitology.
[5] J. Fox,et al. Sequencing and synthesis of pardaxin, a polypeptide from the Red Sea Moses sole with ionophore activity , 1988, FEBS letters.
[6] Robert E W Hancock,et al. Role of membranes in the activities of antimicrobial cationic peptides. , 2002, FEMS microbiology letters.
[7] D. Barra,et al. Structure-function relationships of temporins, small antimicrobial peptides from amphibian skin. , 2000, European journal of biochemistry.
[8] Katsumi Matsuzaki,et al. Position-dependent hydrophobicity of the antimicrobial magainin peptide affects the mode of peptide-lipid interactions and selective toxicity. , 2002, Biochemistry.
[9] R. B. Merrifield,et al. Binding and action of cecropin and cecropin analogues: antibacterial peptides from insects. , 1988, Biochimica et biophysica acta.
[10] Juan R. Granja,et al. Antibacterial agents based on the cyclic d,l-α-peptide architecture , 2001, Nature.
[11] Y. Shai,et al. Channel formation properties of synthetic pardaxin and analogues. , 1990, The Journal of biological chemistry.
[12] A. Waring,et al. Direct comparison of membrane interactions of model peptides composed of only Leu and Lys residues , 2003, Biopolymers.
[13] Niv Papo,et al. New lytic peptides based on the D,L-amphipathic helix motif preferentially kill tumor cells compared to normal cells. , 2003, Biochemistry.
[14] Y. Shai,et al. From “carpet” mechanism to de-novo designed diastereomeric cell-selective antimicrobial peptides , 2001, Peptides.
[15] Y. Shai,et al. A class of highly potent antibacterial peptides derived from pardaxin, a pore-forming peptide isolated from Moses sole fish Pardachirus marmoratus. , 1996, European journal of biochemistry.
[16] Y. Shai,et al. A comparative study on the structure and function of a cytolytic α‐helical peptide and its antimicrobial β‐sheet diastereomer , 1999 .
[17] J. Blazyk,et al. Interactions between the antimicrobial peptide, magainin 2, and Salmonella typhimurium lipopolysaccharides , 1991, FEBS letters.
[18] Y. Shai,et al. Effect of multiple aliphatic amino acids substitutions on the structure, function, and mode of action of diastereomeric membrane active peptides. , 2001, Biochemistry.
[19] Jiang Hong,et al. A Repertoire of Novel Antibacterial Diastereomeric Peptides with Selective Cytolytic Activity* , 1997, The Journal of Biological Chemistry.
[20] I. Kubota,et al. Melittin-Like Peptides from the Shark-Repelling Defense Secretion of the Sole Pardachirus pavoninus , 1986, Science.
[21] T. Ganz,et al. Interaction of human defensins with Escherichia coli. Mechanism of bactericidal activity. , 1989, The Journal of clinical investigation.
[22] R. Hancock,et al. The role of antimicrobial peptides in animal defenses. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[23] J. Werkmeister,et al. Analysis of antimicrobial peptide interactions with hybrid bilayer membrane systems using surface plasmon resonance. , 2001, Biochimica et biophysica acta.
[24] P. A. Raj,et al. Membrane-induced helical conformation of an active candidacidal fragment of salivary histatins. , 1994, The Journal of biological chemistry.
[25] Y. Shai. Pardaxin: channel formation by a shark repellant peptide from fish. , 1994, Toxicology.
[26] Y. Shai,et al. Structure and organization of the human antimicrobial peptide LL-37 in phospholipid membranes: relevance to the molecular basis for its non-cell-selective activity. , 1999, The Biochemical journal.
[27] K. Miyajima,et al. Kinetics of pore formation by an antimicrobial peptide, magainin 2, in phospholipid bilayers. , 1995, Biochemistry.
[28] P. Nicolas,et al. Covalent Structure, Synthesis, and Structure-Function Studies of Mesentericin Y 10537, a Defensive Peptide from Gram-positive Bacteria Leuconostoc mesenteroides* , 1996, The Journal of Biological Chemistry.
[29] R. J. Doerksen,et al. De novo design of biomimetic antimicrobial polymers , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[30] Niv Papo,et al. A Novel Lytic Peptide Composed of dl-Amino Acids Selectively Kills Cancer Cells in Culture and in Mice* , 2003, Journal of Biological Chemistry.
[31] Y. Shai,et al. Mode of action of the antibacterial cecropin B2: a spectrofluorometric study. , 1994, Biochemistry.
[32] A. Molina,et al. Plant defense peptides. , 1998, Biopolymers.
[33] D. Andreu,et al. Animal antimicrobial peptides: an overview. , 1998, Biopolymers.
[34] N. Fujii,et al. Magainin 1-induced leakage of entrapped calcein out of negatively-charged lipid vesicles. , 1989, Biochimica et biophysica acta.
[35] Y. Shai,et al. Interaction of antimicrobial dermaseptin and its fluorescently labeled analogues with phospholipid membranes. , 1992, Biochemistry.
[36] A. Mor,et al. Structure-Activity Relationship Study of Antimicrobial Dermaseptin S4 Showing the Consequences of Peptide Oligomerization on Selective Cytotoxicity* , 2000, The Journal of Biological Chemistry.
[37] R. Gennaro,et al. Cathelicidin peptides as candidates for a novel class of antimicrobials. , 2002, Current pharmaceutical design.
[38] D. Barra,et al. Antibacterial and haemolytic peptides containing D‐alloisoleucine from the skin of Bombina variegata. , 1993, The EMBO journal.
[39] S. Gellman,et al. Mimicry of Host-Defense Peptides by Unnatural Oligomers: Antimicrobial β-Peptides , 2002 .
[40] A. Schmidtchen,et al. SIC, a Secreted Protein of Streptococcus pyogenesThat Inactivates Antibacterial Peptides* , 2003, The Journal of Biological Chemistry.
[41] T. Ganz,et al. Cathelicidins: a family of endogenous antimicrobial peptides , 2002, Current opinion in hematology.
[42] B. Roelofsen,et al. The asymmetric distribution of phospholipids in the human red cell membrane. A combined study using phospholipases and freeze-etch electron microscopy. , 1973, Biochimica et biophysica acta.
[43] J. Odeberg,et al. The human gene FALL39 and processing of the cathelin precursor to the antibacterial peptide LL-37 in granulocytes. , 1996, European journal of biochemistry.
[44] K. Lee,et al. Effect of D-amino acid substitution on the stability, the secondary structure, and the activity of membrane-active peptide. , 1999, Biochemical pharmacology.
[45] H. Wigzell,et al. The Expression of the Gene Coding for the Antibacterial Peptide LL-37 Is Induced in Human Keratinocytes during Inflammatory Disorders* , 1997, The Journal of Biological Chemistry.
[46] Y. Shai,et al. Mode of action of membrane active antimicrobial peptides. , 2002, Biopolymers.
[47] D. Hultmark,et al. Sequence and specificity of two antibacterial proteins involved in insect immunity , 1981, Nature.
[48] M. Dathe,et al. Structural features of helical antimicrobial peptides: their potential to modulate activity on model membranes and biological cells. , 1999, Biochimica et biophysica acta.
[49] Y. Shai,et al. Selective Cytotoxicity of Dermaseptin S3 toward IntraerythrocyticPlasmodium falciparum and the Underlying Molecular Basis* , 1997, The Journal of Biological Chemistry.
[50] D. Barra,et al. Amphibian skin: a promising resource for antimicrobial peptides. , 1995, Trends in biotechnology.
[51] E. Habermann,et al. Sequenzanalyse des Melittins aus den tryptischen und peptischen Spaltstücken , 1967 .
[52] K. Miyajima,et al. Interactions of an antimicrobial peptide, magainin 2, with lipopolysaccharide‐containing liposomes as a model for outer membranes of Gram‐negative bacteria , 1999, FEBS letters.
[53] H. Sahl,et al. New insights into the mechanism of action of lantibiotics--diverse biological effects by binding to the same molecular target. , 2000, The Journal of antimicrobial chemotherapy.
[54] F C Kafatos,et al. Phylogenetic perspectives in innate immunity. , 1999, Science.
[55] R I Lehrer,et al. Antimicrobial peptides in mammalian and insect host defence. , 1999, Current opinion in immunology.
[56] Y. Shai,et al. Mechanism of the binding, insertion and destabilization of phospholipid bilayer membranes by alpha-helical antimicrobial and cell non-selective membrane-lytic peptides. , 1999, Biochimica et biophysica acta.
[57] S J Ludtke,et al. Membrane pores induced by magainin. , 1996, Biochemistry.
[58] B. Bechinger. Biophysical investigations of membrane perturbations by polypeptides using solid-state NMR spectroscopy (Review) , 2000, Molecular membrane biology.
[59] L. Loew,et al. Purification and pore-forming activity of two hydrophobic polypeptides from the secretion of the Red Sea Moses sole (Pardachirus marmoratus). , 1986, The Journal of biological chemistry.
[60] M. Zasloff. Antimicrobial peptides of multicellular organisms , 2002, Nature.
[61] M. Aguilar,et al. Surface plasmon resonance spectroscopy: an emerging tool for the study of peptide-membrane interactions. , 2002, Biopolymers.
[62] W. DeGrado,et al. De Novo Design, Synthesis, and Characterization of Antimicrobial β-Peptides , 2001 .
[63] Y. Shai,et al. Mode of action of linear amphipathic α-helical antimicrobial peptides , 1998 .
[64] G. Tegos,et al. Multidrug Pump Inhibitors Uncover Remarkable Activity of Plant Antimicrobials , 2002, Antimicrobial Agents and Chemotherapy.
[65] J. Porter. Patent confusion in law on new plant varieties , 2000, Nature.
[66] R. Hodges,et al. Nonlamellar phases induced by the interaction of gramicidin S with lipid bilayers. A possible relationship to membrane-disrupting activity. , 1997, Biochemistry.
[67] C. Deber,et al. Transmembrane segment peptides with double D‐amino acid replacements: Helicity, hydrophobicity, and antimicrobial activity , 2003, Biopolymers.
[68] H Lecar,et al. Electrically gated ionic channels in lipid bilayers , 1977, Quarterly Reviews of Biophysics.
[69] A. Mor,et al. Isolation, amino acid sequence, and synthesis of dermaseptin, a novel antimicrobial peptide of amphibian skin. , 1991, Biochemistry.
[70] T. Unger,et al. The effect of cyclization of magainin 2 and melittin analogues on structure, function, and model membrane interactions: implication to their mode of action. , 2001, Biochemistry.
[71] Y. Shai,et al. Interaction of D-amino acid incorporated analogues of pardaxin with membranes. , 1992, Biochemistry.
[72] Neta Sal-Man,et al. Preassembly of membrane-active peptides is an important factor in their selectivity toward target cells. , 2002, Biochemistry.
[73] S. White,et al. 'Detergent-like' permeabilization of anionic lipid vesicles by melittin. , 2001, Biochimica et biophysica acta.
[74] C. B. Park,et al. A novel antimicrobial peptide from Bufo bufo gargarizans. , 1996, Biochemical and biophysical research communications.
[75] B. de Kruijff,et al. The lantibiotic nisin, a special case or not? , 1999, Biochimica et biophysica acta.
[76] Y. Shai,et al. Selective lysis of bacteria but not mammalian cells by diastereomers of melittin: structure-function study. , 1997, Biochemistry.
[77] R A Houghten,et al. Design of model amphipathic peptides having potent antimicrobial activities. , 1992, Biochemistry.
[78] J. Hoffmann,et al. Cysteine-rich antimicrobial peptides in invertebrates. , 1998, Biopolymers.
[79] O. Kuipers,et al. Use of the cell wall precursor lipid II by a pore-forming peptide antibiotic. , 1999, Science.
[80] J. Hoffmann,et al. Drosophila innate immunity: an evolutionary perspective , 2002, Nature Immunology.
[81] Wayne L. Smith,et al. Indolicidin, a novel bactericidal tridecapeptide amide from neutrophils. , 1992, The Journal of biological chemistry.
[82] Terry D. Lee,et al. Determination of disulphide bridges in PG‐2, an antimicrobial peptide from porcine leukocytes , 1995, Journal of peptide science : an official publication of the European Peptide Society.
[83] R. Hancock,et al. The role of cationic antimicrobial peptides in innate host defences. , 2000, Trends in microbiology.
[84] Alessandro Tossi,et al. Amphipathic, α‐helical antimicrobial peptides , 2000 .
[85] S. Gellman,et al. Antibiotics: Non-haemolytic β-amino-acid oligomers , 2000, Nature.
[86] A. Mor,et al. Peptides as weapons against microorganisms in the chemical defense system of vertebrates. , 1995, Annual review of microbiology.
[87] S. Gellman,et al. Interactions of the antimicrobial β‐peptide β‐17 with phospholipid vesicles differ from membrane interactions of magainins , 2003 .
[88] T. McIntosh,et al. Lipopolysaccharides in bacterial membranes act like cholesterol in eukaryotic plasma membranes in providing protection against melittin-induced bilayer lysis. , 2003, Biochemistry.
[89] Y. Shai,et al. The Consequence of Sequence Alteration of an Amphipathic α-Helical Antimicrobial Peptide and Its Diastereomers* , 2002, The Journal of Biological Chemistry.
[90] S. Gellman,et al. Structure-activity studies of 14-helical antimicrobial beta-peptides: probing the relationship between conformational stability and antimicrobial potency. , 2002, Journal of the American Chemical Society.
[91] H. G. Boman,et al. Peptide antibiotics and their role in innate immunity. , 1995, Annual review of immunology.
[92] S. Gellman,et al. Synthesis and 12-helical secondary structure of beta-peptides containing (2R,3R)-aminoproline. , 2002, Organic letters.
[93] P. Bulet,et al. Antimicrobial peptides in insects; structure and function. , 1999, Developmental and comparative immunology.
[94] K. Berndt,et al. Conformation-dependent Antibacterial Activity of the Naturally Occurring Human Peptide LL-37* , 1998, The Journal of Biological Chemistry.
[95] J. Odeberg,et al. FALL-39, a putative human peptide antibiotic, is cysteine-free and expressed in bone marrow and testis. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[96] M. Zasloff,et al. Magainins, a class of antimicrobial peptides from Xenopus skin: isolation, characterization of two active forms, and partial cDNA sequence of a precursor , 1987 .
[97] Niv Papo,et al. Exploring peptide membrane interaction using surface plasmon resonance: differentiation between pore formation versus membrane disruption by lytic peptides. , 2003, Biochemistry.
[98] R. Hancock,et al. Interaction of polyphemusin I and structural analogs with bacterial membranes, lipopolysaccharide, and lipid monolayers. , 2000, Biochemistry.
[99] Y. Shai,et al. Cyclization of a cytolytic amphipathic alpha-helical peptide and its diastereomer: effect on structure, interaction with model membranes, and biological function. , 2000, Biochemistry.