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One or more keywords matched the following properties of Lazaridis, Themis
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overview Biophysical Chemistry and Molecular Biophysics aim to understand how biological systems work in terms of the fundamental laws of Physics and Chemistry. Biomolecules, such as proteins and nucleic acids, usually have well defined conformations which often change in the course of their function. Our goal is to understand the forces that operate within and between biomolecules and develop quantitative mathematical models for their energy as a function of conformation. Such models are useful in many ways, such as predicting the three-dimensional structure from sequence, characterizing conformational changes involved in biological function, or predicting the binding affinity between two biomolecules. One of the most difficult interactions to model is that between biomolecules and solvent. A simple analytical function that gives the solvation free energy for an arbitrary conformation would be highly desirable. Several years ago we developed a model (EEF1) based on the idea that solute atoms exclude solvent from the region they occupy. More recently we extended this model to biological membranes, which are essentially a heterogeneous solvent. This has allowed a much more efficient study of the interaction of peptides and soluble proteins with membranes, a process that is implicated in many biological processes such as membrane fusion, innate immunity, or signal transduction.
One or more keywords matched the following items that are connected to Lazaridis, Themis
Item TypeName
Academic Article Antimicrobial peptides bind more strongly to membrane pores.
Academic Article Computational analysis of residue contributions to coiled-coil topology.
Academic Article Antimicrobial peptides in toroidal and cylindrical pores.
Academic Article Influence of the membrane dipole potential on peptide binding to lipid bilayers.
Academic Article Membrane interactions and pore formation by the antimicrobial peptide protegrin.
Academic Article Activity determinants of helical antimicrobial peptides: a large-scale computational study.
Academic Article Charge distribution and imperfect amphipathicity affect pore formation by antimicrobial peptides.
Academic Article Implicit membrane treatment of buried charged groups: application to peptide translocation across lipid bilayers.
Academic Article Protein arcs may form stable pores in lipid membranes.
Academic Article Implicit Membrane Investigation of the Stability of Antimicrobial Peptide ?-Barrels and Arcs.
Academic Article Computational prediction of the optimal oligomeric state for membrane-inserted ?-barrels of protegrin-1 and related mutants.
Academic Article Pore Structure and Synergy in Antimicrobial Peptides of the Magainin Family.
Academic Article Computational studies of peptide-induced membrane pore formation.
Academic Article Membrane Curvature Sensing by Amphipathic Helices: Insights from Implicit Membrane Modeling.
Academic Article Transmembrane Pore Structures of ?-Hairpin Antimicrobial Peptides by All-Atom Simulations.
Academic Article The value of antimicrobial peptides in the age of resistance.
Academic Article What Makes a Good Pore Former: A Study of Synthetic Melittin Derivatives.
Academic Article Experimental and Computational Characterization of Oxidized and Reduced Protegrin Pores in Lipid Bilayers.
Academic Article Effective energy function for proteins in lipid membranes.
Academic Article Contributions to the binding free energy of ligands to avidin and streptavidin.
Academic Article Implicit solvent simulations of peptide interactions with anionic lipid membranes.
Academic Article Calculations of pH-dependent binding of proteins to biological membranes.
Academic Article Water at biomolecular binding interfaces.
Academic Article Modeling a spin-labeled fusion peptide in a membrane: implications for the interpretation of EPR experiments.
Concept Peptides
Concept Peptides, Cyclic
Concept Antimicrobial Cationic Peptides
Academic Article Putative Pore Structures of Amyloid ? 25-35 in Lipid Bilayers.
Search Criteria
  • Peptides
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