Published in Biochemistry on September 10, 2002
Recognition of Staphylococcus aureus by the innate immune system. Clin Microbiol Rev (2005) 2.50
Mechanisms of antimicrobial, cytolytic, and cell-penetrating peptides: from kinetics to thermodynamics. Biochemistry (2009) 1.72
A quantitative model for the all-or-none permeabilization of phospholipid vesicles by the antimicrobial peptide cecropin A. Biophys J (2007) 1.64
Mechanism of the cell-penetrating peptide transportan 10 permeation of lipid bilayers. Biophys J (2007) 1.50
Temperature and composition dependence of the interaction of delta-lysin with ternary mixtures of sphingomyelin/cholesterol/POPC. Biophys J (2006) 1.42
Magainin 2 revisited: a test of the quantitative model for the all-or-none permeabilization of phospholipid vesicles. Biophys J (2009) 1.40
Investigation of domain formation in sphingomyelin/cholesterol/POPC mixtures by fluorescence resonance energy transfer and Monte Carlo simulations. Biophys J (2007) 1.33
Phenol-soluble modulins--critical determinants of staphylococcal virulence. FEMS Microbiol Rev (2014) 1.21
Antimicrobial peptides with cell-penetrating peptide properties and vice versa. Eur Biophys J (2011) 1.12
The activity of the amphipathic peptide delta-lysin correlates with phospholipid acyl chain structure and bilayer elastic properties. Biophys J (2008) 1.00
Solution structure and interaction of the antimicrobial polyphemusins with lipid membranes. Biochemistry (2005) 0.95
A thermodynamic approach to the mechanism of cell-penetrating peptides in model membranes. Biochemistry (2011) 0.95
Phase separation and fluctuations in mixtures of a saturated and an unsaturated phospholipid. Biophys J (2012) 0.95
Translocation of cationic amphipathic peptides across the membranes of pure phospholipid giant vesicles. J Am Chem Soc (2013) 0.94
What determines the activity of antimicrobial and cytolytic peptides in model membranes. Biochemistry (2011) 0.91
Small changes in the primary structure of transportan 10 alter the thermodynamics and kinetics of its interaction with phospholipid vesicles. Biochemistry (2008) 0.89
Wasp mastoparans follow the same mechanism as the cell-penetrating peptide transportan 10. Biochemistry (2009) 0.89
High cholesterol obviates a prolonged hemifusion intermediate in fast SNARE-mediated membrane fusion. Biophys J (2015) 0.89
Molecular dynamics studies of transportan 10 (tp10) interacting with a POPC lipid bilayer. J Phys Chem B (2010) 0.87
Insight into structure-function relationship in phenol-soluble modulins using an alanine screen of the phenol-soluble modulin (PSM) α3 peptide. FASEB J (2013) 0.86
Peptides and Peptidomimetics for Antimicrobial Drug Design. Pharmaceuticals (Basel) (2015) 0.85
Interaction of phenol-soluble modulins with phosphatidylcholine vesicles. Pathogens (2012) 0.84
A common landscape for membrane-active peptides. Protein Sci (2013) 0.83
Kinetic models for peptide-induced leakage from vesicles and cells. Eur Biophys J (2007) 0.83
Detergent-like activity and alpha-helical structure of warnericin RK, an anti-Legionella peptide. Biophys J (2009) 0.82
Lysylated phospholipids stabilize models of bacterial lipid bilayers and protect against antimicrobial peptides. Biochim Biophys Acta (2014) 0.81
On the origin of multiphasic kinetics in peptide binding to phospholipid vesicles. J Phys Chem B (2012) 0.81
Assembly and Comparison of Plasma Membrane SNARE Acceptor Complexes. Biophys J (2016) 0.81
Membrane-active peptides: binding, translocation, and flux in lipid vesicles. Biochim Biophys Acta (2014) 0.80
Fluctuations and the rate-limiting step of peptide-induced membrane leakage. Biophys J (2010) 0.79
Peptides with the same composition, hydrophobicity, and hydrophobic moment bind to phospholipid bilayers with different affinities. J Phys Chem B (2014) 0.78
Role of pore-forming toxins in neonatal sepsis. Clin Dev Immunol (2013) 0.78
Dye-release assay for investigation of antimicrobial peptide activity in a competitive lipid environment. Eur Biophys J (2014) 0.78
Branched phospholipids render lipid vesicles more susceptible to membrane-active peptides. Biochim Biophys Acta (2015) 0.76
Complexin Binding to Membranes and Acceptor t-SNAREs Explains Its Clamping Effect on Fusion. Biophys J (2017) 0.76
Charge Distribution Fine-Tunes the Translocation of α-Helical Amphipathic Peptides across Membranes. Biophys J (2016) 0.75
The potential roles of cell surface pHs in bioactive peptide activation. Chem Biol Drug Des (2014) 0.75
Hemolytic activity of membrane-active peptides correlates with the thermodynamics of binding to 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine bilayers. J Membr Biol (2013) 0.75
Mechanism of Four de Novo Designed Antimicrobial Peptides. J Biol Chem (2016) 0.75
Coarse-grained simulations of hemolytic peptide δ-lysin interacting with a POPC bilayer. Biochim Biophys Acta (2016) 0.75
Editorial: Antimicrobial Peptides - Interaction with Membrane Lipids and Proteins. Front Cell Dev Biol (2017) 0.75
A quantitative model for the all-or-none permeabilization of phospholipid vesicles by the antimicrobial peptide cecropin A. Biophys J (2007) 1.64
Mechanism of the cell-penetrating peptide transportan 10 permeation of lipid bilayers. Biophys J (2007) 1.50
Kinetics of dye efflux and lipid flip-flop induced by delta-lysin in phosphatidylcholine vesicles and the mechanism of graded release by amphipathic, alpha-helical peptides. Biochemistry (2004) 1.45
Temperature and composition dependence of the interaction of delta-lysin with ternary mixtures of sphingomyelin/cholesterol/POPC. Biophys J (2006) 1.42
Magainin 2 revisited: a test of the quantitative model for the all-or-none permeabilization of phospholipid vesicles. Biophys J (2009) 1.40
Investigation of domain formation in sphingomyelin/cholesterol/POPC mixtures by fluorescence resonance energy transfer and Monte Carlo simulations. Biophys J (2007) 1.33
Permeabilization of raft-containing lipid vesicles by delta-lysin: a mechanism for cell sensitivity to cytotoxic peptides. Biochemistry (2005) 1.09
Lipid modulation of protein-induced membrane domains as a mechanism for controlling signal transduction. Biochemistry (2004) 1.06
Lipid diffusion, free area, and molecular dynamics simulations. Biophys J (2005) 1.03
The activity of the amphipathic peptide delta-lysin correlates with phospholipid acyl chain structure and bilayer elastic properties. Biophys J (2008) 1.00
Wasp mastoparans follow the same mechanism as the cell-penetrating peptide transportan 10. Biochemistry (2009) 0.89
Small changes in the primary structure of transportan 10 alter the thermodynamics and kinetics of its interaction with phospholipid vesicles. Biochemistry (2008) 0.89
The cooperative response of synaptotagmin I C2A. A hypothesis for a Ca2+-driven molecular hammer. Biophys J (2006) 0.84
Bacterial influences on Atlantic halibut Hippoglossus hippoglossus yolk-sac larval survival and start-feed response. Dis Aquat Organ (2003) 0.76
T-cell antigen receptor genes in turbot (Scophthalmus maximus L.). Fish Shellfish Immunol (2005) 0.75