Lipid-mediated antimicrobial resistance: a phantom menace or a new hope?

被引:0
|
作者
Hugo I. MacDermott-Opeskin
Vrinda Gupta
Megan L. O’Mara
机构
[1] The Australian National University,Research School of Chemistry, College of Science
来源
Biophysical Reviews | 2022年 / 14卷
关键词
Bacterial lipids; Antimicrobial resistance; Lipidomics; Bacterial membranes; Antimicrobial peptides; Molecular dynamics simulation; Experimental characterisation;
D O I
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中图分类号
学科分类号
摘要
The proposition of a post-antimicrobial era is all the more realistic with the continued rise of antimicrobial resistance. The development of new antimicrobials is failing to counter the ever-increasing rates of bacterial antimicrobial resistance. This necessitates novel antimicrobials and drug targets. The bacterial cell membrane is an essential and highly conserved cellular component in bacteria and acts as the primary barrier for entry of antimicrobials into the cell. Although previously under-exploited as an antimicrobial target, the bacterial cell membrane is attractive for the development of novel antimicrobials due to its importance in pathogen viability. Bacterial cell membranes are diverse assemblies of macromolecules built around a central lipid bilayer core. This lipid bilayer governs the overall membrane biophysical properties and function of its membrane-embedded proteins. This mini-review will outline the mechanisms by which the bacterial membrane causes and controls resistance, with a focus on alterations in the membrane lipid composition, chemical modification of constituent lipids, and the efflux of antimicrobials by membrane-embedded efflux systems. Thorough insight into the interplay between membrane-active antimicrobials and lipid-mediated resistance is needed to enable the rational development of new antimicrobials. In particular, the union of computational approaches and experimental techniques for the development of innovative and efficacious membrane-active antimicrobials is explored.
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页码:145 / 162
页数:17
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