Premium
Effects of net charge and the number of positively charged residues on the biological activity of amphipathic α‐helical cationic antimicrobial peptides
Author(s) -
Jiang Ziqing,
Vasil Adriana I.,
Hale John D.,
Hancock Robert E. W.,
Vasil Michael L.,
Hodges Robert S.
Publication year - 2008
Publication title -
peptide science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.556
H-Index - 125
eISSN - 1097-0282
pISSN - 0006-3525
DOI - 10.1002/bip.20911
Subject(s) - chemistry , hemolysis , antimicrobial , amphiphile , peptide , antimicrobial peptides , residue (chemistry) , cationic polymerization , stereochemistry , biochemistry , biophysics , organic chemistry , copolymer , biology , immunology , polymer
In our previous study, we utilized a 26‐residue amphipathic α‐helical antimicrobial peptide L‐V13K (Chen et al., Antimicrob Agents Chemother 2007, 51, 1398–1406) as the framework to study the effects of peptide hydrophobicity on the mechanism of its antimicrobial action. In this study, we explored the effects of net charge and the number of positively charged residues on the hydrophilic/polar face of L‐V13K on its biological activity (antimicrobial and hemolytic) and biophysical properties (hydrophobicity, amphipathicity, helicity, and peptide self‐association). The net charge of V13K analogs at pH 7 varied between −5 and +10 and the number of positively charged residues varied from 1 to 10. The minimal inhibitory concentrations (MIC) against six strains of Pseudomonas aeruginosa as well as other gram‐negative and gram‐positive bacteria were determined along with the maximal peptide concentration that produces no hemolysis of human red blood cells (MHC). Our results show that the number of positively charged residues on the polar face and net charge are both important for both antimicrobial activity and hemolytic activity. The most dramatic observation is the sharp transition of hemolytic activity on increasing one positive charge on the polar face of V13K i.e., the change from +8 to +9 resulted in greater than 32‐fold increase in hemolytic activity (250 μg/ml to <7.8 μg/ml, respectively). © 2007 Wiley Periodicals, Inc. Biopolymers (Pept Sci) 90: 369–383, 2008. This article was originally published online as an accepted preprint. The “Published Online” date corresponds to the preprint version. You can request a copy of the preprint by emailing the Biopolymers editorial office at biopolymers@wiley.com