首页> 美国卫生研究院文献>PLoS Neglected Tropical Diseases >Antimicrobial Action of the Cyclic Peptide Bactenecin on Burkholderia pseudomallei Correlates with Efficient Membrane Permeabilization
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Antimicrobial Action of the Cyclic Peptide Bactenecin on Burkholderia pseudomallei Correlates with Efficient Membrane Permeabilization

机译:环肽菌素对伯克霍尔德氏菌的抗菌作用与有效的膜通透性相关。

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摘要

Burkholderia pseudomallei is a category B agent that causes Melioidosis, an acute and chronic disease with septicemia. The current treatment regimen is a heavy dose of antibiotics such as ceftazidime (CAZ); however, the risk of a relapse is possible. Peptide antibiotics are an alternative to classical antibiotics as they exhibit rapid action and are less likely to result in the development of resistance. The aim of this study was to determine the bactericidal activity against B. pseudomallei and examine the membrane disrupting abilities of the potent antimicrobial peptides: bactenecin, RTA3, BMAP-18 and CA-MA. All peptides exhibited >97% bactericidal activity at 20 µM, with bactenecin having slightly higher activity. Long term time-kill assays revealed a complete inhibition of cell growth at 50 µM bactenecin and CA-MA. All peptides inhibited biofilm formation comparable to CAZ, but exhibited faster kinetics (within 1 h). Bactenecin exhibited stronger binding to LPS and induced perturbation of the inner membrane of live cells. Interaction of bactenecin with model membranes resulted in changes in membrane fluidity and permeability, leading to leakage of dye across the membrane at levels two-fold greater than that of other peptides. Modeling of peptide binding on the membrane showed stable and deep insertion of bactenecin into the membrane (up to 9 Å). We propose that bactenecin is able to form dimers or large β-sheet structures in a concentration dependent manner and subsequently rapidly permeabilize the membrane, leading to cytosolic leakage and cell death in a shorter period of time compared to CAZ. Bactenecin might be considered as a potent antimicrobial agent for use against B. pseudomallei.
机译:假伯克霍尔德氏菌是引起类痔疮的B类病原体,这是一种带有败血症的急慢性疾病。目前的治疗方案是大剂量使用抗生素,例如头孢他啶(CAZ);但是,可能会复发。肽类抗生素是传统抗生素的替代品,因为它们显示出快速的作用并且不太可能导致耐药性的发展。这项研究的目的是确定对假芽孢杆菌的杀菌活性,并检查有效的抗菌肽:细菌素,RTA3,BMAP-18和CA-MA的膜破坏能力。在20 µM时,所有肽均具有> 97%的杀菌活性,而细菌素的活性稍高。长期的时间杀灭试验表明,在50 µM的细菌素和CA-MA下,细胞的生长受到了完全抑制。与CAZ相比,所有肽都抑制了生物膜的形成,但显示出更快的动力学(1小时内)。细菌素显示出对LPS的更强结合,并引起活细胞内膜的扰动。细菌素与模型膜的相互作用导致膜流动性和渗透性的变化,导致染料在膜上的渗漏程度是其他肽的两倍。膜上肽结合的模型表明,细菌素稳定且深入地插入了膜中(最大9Å)。我们建议,细菌素能够以浓度依赖性的方式形成二聚体或大的β-折叠结构,并随后迅速渗透膜,从而导致细胞质泄漏和细胞死亡的时间比CAZ短。细菌素可以被认为是针对假苹果芽孢杆菌的有效抗菌剂。

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