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蜂毒素插入细胞膜的方式:构象变化、肽间合作以及对膜的干扰。

How Melittin Inserts into Cell Membrane: Conformational Changes, Inter-Peptide Cooperation, and Disturbance on the Membrane.

机构信息

Center for Soft Condensed Matter Physics and Interdisciplinary Research & School of Physical Science and Technology, Soochow University, Suzhou 215006, China.

出版信息

Molecules. 2019 May 7;24(9):1775. doi: 10.3390/molecules24091775.

Abstract

Antimicrobial peptides (AMPs), as a key component of the immune defense systems of organisms, are a promising solution to the serious threat of drug-resistant bacteria to public health. As one of the most representative and extensively studied AMPs, melittin has exceptional broad-spectrum activities against microorganisms, including both Gram-positive and Gram-negative bacteria. Unfortunately, the action mechanism of melittin with bacterial membranes, especially the underlying physics of peptide-induced membrane poration behaviors, is still poorly understood, which hampers efforts to develop melittin-based drugs or agents for clinical applications. In this mini-review, we focus on recent advances with respect to the membrane insertion behavior of melittin mostly from a computational aspect. Membrane insertion is a prerequisite and key step for forming transmembrane pores and bacterial killing by melittin, whose occurrence is based on overcoming a high free-energy barrier during the transition of melittin molecules from a membrane surface-binding state to a transmembrane-inserting state. Here, intriguing simulation results on such transition are highlighted from both kinetic and thermodynamic aspects. The conformational changes and inter-peptide cooperation of melittin molecules, as well as melittin-induced disturbances to membrane structure, such as deformation and lipid extraction, are regarded as key factors influencing the insertion of peptides into membranes. The associated intermediate states in peptide conformations, lipid arrangements, membrane structure, and mechanical properties during this process are specifically discussed. Finally, potential strategies for enhancing the poration ability and improving the antimicrobial performance of AMPs are included as well.

摘要

抗菌肽 (AMPs) 作为生物体免疫防御系统的关键组成部分,是解决耐药细菌对公共健康造成严重威胁的一种有前途的方法。作为最具代表性和广泛研究的 AMP 之一,蜂毒素对微生物具有出色的广谱活性,包括革兰氏阳性和革兰氏阴性细菌。然而,蜂毒素与细菌膜的作用机制,特别是肽诱导膜穿孔行为的潜在物理机制,仍未得到充分理解,这阻碍了基于蜂毒素的药物或制剂的开发,以应用于临床。在这篇迷你综述中,我们主要从计算的角度关注蜂毒素的膜插入行为的最新进展。膜插入是蜂毒素形成跨膜孔和杀死细菌的前提和关键步骤,其发生是基于在蜂毒素分子从膜表面结合状态向跨膜插入状态的转变过程中克服高自由能障碍。在这里,从动力学和热力学两个方面突出显示了这种转变的有趣模拟结果。蜂毒素分子的构象变化和肽间协同作用,以及蜂毒素对膜结构的干扰,如变形和脂质提取,被认为是影响肽插入膜的关键因素。特别讨论了在这个过程中肽构象、脂质排列、膜结构和机械性能的相关中间状态。最后,还包括了增强 AMP 穿孔能力和提高其抗菌性能的潜在策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/23ff/6539814/89074d3267da/molecules-24-01775-g001.jpg

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