Effect of Non-natural Hydrophobic Amino Acids on the Efficacy and Properties of the Antimicrobial Peptide C18G

被引:0
作者
Morgan A. Hitchner
Matthew R. Necelis
Devanie Shirley
Gregory A. Caputo
机构
[1] Rowan University,Department of Chemistry and Biochemistry
[2] Rowan University,Department of Molecular and Cellular Biosciences
来源
Probiotics and Antimicrobial Proteins | 2021年 / 13卷
关键词
Antimicrobial peptides; Fluorescence; Lipid binding; C18G; Membrane permeabilization;
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摘要
Antimicrobial peptides (AMPs) have been an area of great interest, due to the high selectivity of these molecules toward bacterial targets over host cells and the limited development of bacterial resistance to these molecules through evolution. The peptides are known to selectively bind to bacterial cell surfaces through electrostatic interactions, and subsequently, the peptides insert into the cell membrane and cause local disruptions of membrane integrity leading to cell death. Previous experiments showed that replacing the Leu residues in the AMP C18G with other naturally occurring hydrophobic residues resulted in side-chain-dependent activities. This work extends the investigation to non-natural hydrophobic amino acids and the effect on peptide activity. Minimal inhibitory concentration (MIC) results demonstrated that amino acid substitutions containing long flexible carbon chains maintained or increased antimicrobial activity compared to natural analogues. In solution, the peptide showed aggregation only with the most hydrophobic non-natural amino acid substitutions. Binding assays using Trp fluorescence confirm a binding preference for anionic lipids while quenching experiments demonstrated that the more hydrophobic peptides are more deeply buried in the anionic lipid bilayers compared to the zwitterionic bilayers. The most effective peptides at killing bacteria were also those which showed some level of disruption of bacterial membranes; however, one peptide sequence exhibited very strong activity and very low levels of red blood cell hemolysis, yielding a promising target for future development.
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页码:527 / 541
页数:14
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  • [1] Ventola CL(2015)The antibiotic resistance crisis: part 1: causes and threats P T 40 277-283
  • [2] Spellberg B(2014)The future of antibiotics and resistance: a tribute to a career of leadership by John Bartlett Clin Infect Dis 59 S71-S75
  • [3] Gilbert DN(2017)Natural products as platforms to overcome antibiotic resistance Chem Rev 117 12415-12474
  • [4] Rossiter SE(2013)Antimicrobial polymers as synthetic mimics of host-defense peptides Wiley Interdiscip Rev Nanomed Nanobiotechnol 5 49-66
  • [5] Fletcher MH(2019)Targeting intracellular, multi-drug resistant Biomaterials 217 119249-1906
  • [6] Wuest WM(2019) with guanidinium polymers by elucidating the structure-activity relationship ACS Appl Mater Interfaces 11 1896-6973
  • [7] Kuroda K(2009)Sequence and dispersity are determinants of photodynamic antibacterial activity exerted by peptidomimetic oligo(thiophene)s Proc Natl Acad Sci U S A 106 6968-323
  • [8] Caputo GA(2014)De novo design and ACS Macro Lett 3 319-265
  • [9] Kuroki A(2017) activity of conformationally restrained antimicrobial arylamide foldamers Biomacromolecules 18 257-1202
  • [10] Kengmo Tchoupa A(2020)Antimicrobial polymethacrylates synthesized as mimics of tryptophan-rich cationic peptides J Food Sci 85 1193-1046