University of Graz, Institute of Molecular Biosciences, Biophysics Division, Graz, Austria.
University of Graz, Institute of Molecular Biosciences, Biophysics Division, Graz, Austria.
Biochim Biophys Acta Biomembr. 2020 Aug 1;1862(8):183275. doi: 10.1016/j.bbamem.2020.183275. Epub 2020 Mar 12.
The search for novel compounds to combat multi-resistant bacterial infections includes exploring the potency of antimicrobial peptides and derivatives thereof. Complementary to high-throughput screening techniques, biophysical and biochemical studies of the biological activity of these compounds enable deep insight, which can be exploited in designing antimicrobial peptides with improved efficacy. This approach requires the combination of several techniques to study the effect of such peptides on both bacterial cells and simple mimics of their cell envelope, such as lipid-only vesicles. These efforts carry the challenge of bridging results across techniques and sample systems, including the proper choice of membrane mimics. This review describes some important concepts toward the development of potent antimicrobial peptides and how they translate to frequently applied experimental techniques, along with an outline of the biophysics pertaining to the killing mechanism of antimicrobial peptides.
寻找新型化合物来对抗多耐药菌感染包括探索抗菌肽及其衍生物的功效。除了高通量筛选技术外,对这些化合物的生物学活性进行生物物理和生化研究可以深入了解,这可以用于设计具有更好疗效的抗菌肽。这种方法需要结合多种技术来研究这些肽对细菌细胞和其细胞膜类似物(如仅含脂质的囊泡)的影响。这些努力面临着在技术和样品系统之间架起桥梁的挑战,包括正确选择膜类似物。本文综述了一些关于开发有效抗菌肽的重要概念,以及它们如何转化为常用的实验技术,同时概述了与抗菌肽杀菌机制相关的生物物理学。