Crystal structure and functional mechanism of a human antimicrobial membrane channel
Author(s) -
Chen Song,
Conrad Weichbrodt,
Evgeniy S. Salnikov,
Marek Dynowski,
Björn Forsberg,
Burkhard Bechinger,
Claudia Steinem,
Bert L. de Groot,
Ulrich Zachariae,
Kornelius Zeth
Publication year - 2013
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1214739110
Subject(s) - antimicrobial peptides , antiparallel (mathematics) , biophysics , membrane , peptide , antimicrobial , ion channel , transmembrane protein , biology , chemistry , biochemistry , microbiology and biotechnology , receptor , quantum mechanics , physics , magnetic field
Multicellular organisms fight bacterial and fungal infections by producing peptide-derived broad-spectrum antibiotics. These host-defense peptides compromise the integrity of microbial cell membranes and thus evade pathways by which bacteria develop rapid antibiotic resistance. Although more than 1,700 host-defense peptides have been identified, the structural and mechanistic basis of their action remains speculative. This impedes the desired rational development of these agents into next-generation antibiotics. We present the X-ray crystal structure as well as solid-state NMR spectroscopy, electrophysiology, and MD simulations of human dermcidin in membranes that reveal the antibiotic mechanism of this major human antimicrobial, found to suppressStaphylococcus aureus growth on the epidermal surface. Dermcidin forms an architecture of high-conductance transmembrane channels, composed of zinc-connected trimers of antiparallel helix pairs. Molecular dynamics simulations elucidate the unusual membrane permeation pathway for ions and show adjustment of the pore to various membranes. Our study unravels the comprehensive mechanism for the membrane-disruptive action of this mammalian host-defense peptide at atomistic level. The results may form a foundation for the structure-based design of peptide antibiotics.
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