Investigating How Lysophosphatidylcholine and Lysophosphatidylethanolamine Enhance the Membrane Permeabilization Efficacy of Host Defense Peptide Piscidin 1.

IF 2.9 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry B Pub Date : 2025-01-09 Epub Date: 2024-12-16 DOI:10.1021/acs.jpcb.4c05845
Amy Rice, Andriana C Zourou, Evan P Goodell, Riqiang Fu, Richard W Pastor, Myriam L Cotten
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Abstract

Lysophospholipids (LPLs) and host defense peptides (HDPs) are naturally occurring membrane-active agents that disrupt key membrane properties, including the hydrocarbon thickness, intrinsic curvature, and molecular packing. Although the membrane activity of these agents has been widely examined separately, their combined effects are largely unexplored. Here, we use experimental and computational tools to investigate how lysophosphatidylcholine (LPC) and lysophosphatidylethanolamine (LPE), an LPL of lower positive spontaneous curvature, influence the membrane activity of piscidin 1 (P1), an α-helical HDP from fish. Four membrane systems are probed: 75:25 C16:0-C18:1 PC (POPC)/C16:0-C18:1 phosphoglycerol (POPG), 50:25:25 POPC/POPG/16:0 LPC, 75:25 C16:0-C18:1 PE (POPE)/POPG, and 50:25:25 POPE/POPG/14:0 LPE. Dye leakage, circular dichroism, and NMR experiments demonstrate that while the presence of LPLs alone does not induce leakage-proficient defects, it boosts the permeabilization capability of P1, resulting in an efficacy order of POPC/POPG/16:0 LPC > POPE/POPG/14:0 LPE > POPC/POPG > POPE/POPG. This enhancement occurs without altering the membrane affinity and conformation of P1. Molecular dynamics simulations feature two types of asymmetric membranes to represent the imbalanced ("area stressed") and balanced ("area relaxed") distribution of lipids and peptides in the two leaflets. The simulations capture the membrane thinning effects of P1, LPC, and LPE, and the positive curvature strain imposed by both LPLs is reflected in the lateral pressure profiles. They also reveal a higher number of membrane defects for the P1/LPC than P1/LPE combination, congruent with the permeabilization experiments. Altogether, these results show that P1 and LPLs disrupt membranes in a concerted fashion, with LPC, the more disruptive LPL, boosting the permeabilization of P1 more than LPE. This mechanistic knowledge is relevant to understanding biological processes where multiple membrane-active agents such as HDPs and LPLs are involved.

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研究溶血磷脂酰胆碱和溶血磷脂酰乙醇胺如何增强宿主防御肽 Piscidin 1 的膜渗透功效
溶血磷脂(LPLs)和宿主防御肽(hdp)是天然存在的膜活性剂,它们会破坏膜的关键特性,包括碳氢化合物的厚度、固有曲率和分子包装。尽管这些药物的膜活性已被广泛地单独研究,但它们的联合作用在很大程度上尚未被探索。在这里,我们使用实验和计算工具来研究溶血磷脂酰胆碱(LPC)和溶血磷脂酰乙醇胺(LPE),一种低正自发曲率的LPL,如何影响piscidin 1 (P1)的膜活性,piscidin 1是一种来自鱼类的α-螺旋HDP。研究了四种膜体系:75:25 C16:0-C18:1 PC (POPC)/C16:0-C18:1磷酸甘油(POPG)、50:25:25 POPC/POPG/16:0 LPC、75:25 C16:0-C18:1 PE (POPE)/POPG和50:25:25 POPE/POPG/14:0 LPE。染料泄漏、圆二色性和核磁共振实验表明,虽然LPLs的单独存在不会诱发泄漏精通缺陷,但它提高了P1的渗透能力,导致效能顺序为POPC/POPG/16:0 LPC > POPE/POPG/14:0 LPE > POPC/POPG > POPE/POPG。这种增强在不改变P1的膜亲和力和构象的情况下发生。分子动力学模拟采用两种类型的不对称膜来表示脂质和肽在两个小叶中的不平衡(“区域受压”)和平衡(“区域松弛”)分布。模拟捕获了P1、LPC和LPE的膜薄效应,并且两种lpl施加的正曲率应变反映在侧压力剖面中。他们还发现P1/LPC比P1/LPE组合有更多的膜缺陷,这与渗透实验一致。综上所述,这些结果表明P1和LPLs以协同的方式破坏膜,LPC,更具破坏性的LPL,比LPE更能促进P1的透性。这种机制知识与理解涉及多种膜活性剂(如hdp和LPLs)的生物过程有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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