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宿主防御肽鲷抗菌肽与酵母衍生糖脂通过与膜的协同相互作用表现出协同抗菌作用。

Host Defense Peptide Piscidin and Yeast-Derived Glycolipid Exhibit Synergistic Antimicrobial Action through Concerted Interactions with Membranes.

作者信息

Liu Fei, Greenwood Alexander I, Xiong Yawei, Miceli Rebecca T, Fu Riqiang, Anderson Kyle W, McCallum Scott A, Mihailescu Mihaela, Gross Richard, Cotten Myriam L

机构信息

Department of Chemistry, Rensselaer Polytechnic Institute, Troy, New York 12180, United States.

Department of Applied Science, William & Mary, Williamsburg, Virginia 23185, United States.

出版信息

JACS Au. 2023 Oct 19;3(12):3345-3365. doi: 10.1021/jacsau.3c00506. eCollection 2023 Dec 25.

Abstract

Developing new antimicrobials as alternatives to conventional antibiotics has become an urgent race to eradicate drug-resistant bacteria and to save human lives. Conventionally, antimicrobial molecules are studied independently even though they can be cosecreted . In this research, we investigate two classes of naturally derived antimicrobials: sophorolipid (SL) esters as modified yeast-derived glycolipid biosurfactants that feature high biocompatibility and low production cost; piscidins, which are host defense peptides (HDPs) from fish. While HDPs such as piscidins target the membrane of pathogens, and thus result in low incidence of resistance, SLs are not well understood on a mechanistic level. Here, we demonstrate that combining SL-hexyl ester (SL-HE) with subinhibitory concentration of piscidins 1 (P1) and 3 (P3) stimulates strong antimicrobial synergy, potentiating a promising therapeutic window. Permeabilization assays and biophysical studies employing circular dichroism, NMR, mass spectrometry, and X-ray diffraction are performed to investigate the mechanism underlying this powerful synergy. We reveal four key mechanistic features underlying the synergistic action: (1) P1/3 binds to SL-HE aggregates, becoming α-helical; (2) piscidin-glycolipid assemblies synergistically accumulate on membranes; (3) SL-HE used alone or bound to P1/3 associates with phospholipid bilayers where it induces defects; (4) piscidin-glycolipid complexes disrupt the bilayer structure more dramatically and differently than either compound alone, with phase separation occurring when both agents are present. Overall, dramatic enhancement in antimicrobial activity is associated with the use of two membrane-active agents, with the glycolipid playing the roles of prefolding the peptide, coordinating the delivery of both agents to bacterial surfaces, recruiting the peptide to the pathogenic membranes, and supporting membrane disruption by the peptide. Given that SLs are ubiquitously and safely used in consumer products, the SL/peptide formulation engineered and mechanistically characterized in this study could represent fertile ground to develop novel synergistic agents against drug-resistant bacteria.

摘要

开发新型抗菌剂以替代传统抗生素已成为一场根除耐药细菌、拯救人类生命的紧迫竞赛。传统上,抗菌分子即使可能是共分泌的,也都是独立研究的。在本研究中,我们研究了两类天然来源的抗菌剂:槐糖脂(SL)酯,作为经过修饰的酵母来源的糖脂生物表面活性剂,具有高生物相容性和低成本;鱼抗菌肽,是来自鱼类的宿主防御肽(HDP)。虽然像鱼抗菌肽这样的HDP靶向病原体膜,因此耐药发生率较低,但SL在作用机制层面还未得到充分了解。在此,我们证明将SL - 己酯(SL - HE)与亚抑制浓度的鱼抗菌肽1(P1)和3(P3)联合使用可刺激强烈的抗菌协同作用,增强了一个有前景的治疗窗口。进行了通透性测定以及采用圆二色性、核磁共振、质谱和X射线衍射的生物物理研究,以探究这种强大协同作用的潜在机制。我们揭示了协同作用背后的四个关键机制特征:(1)P1/3与SL - HE聚集体结合,形成α - 螺旋;(2)鱼抗菌肽 - 糖脂组装体在膜上协同积累;(3)单独使用或与P1/3结合的SL - HE与磷脂双层结合并在其中诱导缺陷;(4)鱼抗菌肽 - 糖脂复合物比单独的任何一种化合物更显著且不同地破坏双层结构,当两种试剂都存在时会发生相分离。总体而言,抗菌活性的显著增强与使用两种膜活性试剂有关,其中糖脂起到了预折叠肽、协调两种试剂向细菌表面递送、将肽募集到致病膜以及支持肽破坏膜的作用。鉴于SL在消费品中广泛且安全地使用,本研究中设计并在机制上进行了表征的SL/肽配方可能为开发针对耐药细菌的新型协同剂提供沃土。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4fb/10751773/807cf4845502/au3c00506_0001.jpg

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