Structure and pH Dependence of Membranolytic Mechanisms by Truncated Oxidized Phospholipids

IF 14.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Journal of the American Chemical Society Pub Date : 2025-03-05 DOI:10.1021/jacs.4c12543
Min Xie, Maik G. N. Derks, Eveline H. W. Koch, C. Bjorn van Boven, Minchakarn Janlad, Behnaz Bagheri, Zexi Xu, Daria Kovryzhenko, Cornelis A. van Walree, Ana Sobota, Markus Weingarth, Jirasak Wong-ekkabut, Mikko Karttunen, Eefjan Breukink, J. Antoinette Killian, Andreas F. P. Sonnen, Joseph H. Lorent
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Abstract

Membrane lipid oxidation is a universal process that occurs in situations of oxidative stress and is encountered in numerous physiological and pathological situations. Oxidized truncated phospholipids make up a large part of the oxidation products and alter the membrane properties in a way that can lead to cell death. However, the underlying mechanisms are not well understood nor is it clear whether environmental factors, such as pH, can modulate these effects. Using model membranes, we investigate how individual lipid aldehydes and carboxylic acids with truncated acyl chains alter the membrane structure. Our data shows that lipid aldehydes and carboxylic acids have different permeabilization efficiencies towards molecules of varying charge and size and that ΔC9 truncated lipids are usually more efficient in permeabilizing membranes than ΔC5. In terms of physical mechanisms, the ΔC9 truncated lipid carboxylic acid induces permeabilization and membrane curvature in a pH-dependent fashion. This is explained by ionization-dependent exposure of the carboxyl group to the water–bilayer interface, which increases the intrinsic molecular curvature of the oxidized lipid. Conversely, ΔC9 truncated lipid aldehydes and nonionized carboxyls do not induce curved structures but are more efficient in increasing permeability toward larger molecules. We further show that truncated lipids can escape the bilayer and accumulate at interfaces, implying that they might act on neighboring cells. This study indicates that oxidized phospholipids with truncated acyl chains disrupt membrane structure, depending on their specific molecular structure and the pH of the environment, opening a possible route for the design of lipid nanoparticles with pH-dependent drug release.

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膜脂氧化是氧化应激情况下发生的一个普遍过程,在许多生理和病理情况下都会遇到。氧化截短的磷脂占氧化产物的很大一部分,并以一种可导致细胞死亡的方式改变膜的特性。然而,人们对其基本机制还不甚了解,也不清楚环境因素(如 pH 值)是否能调节这些影响。我们利用模型膜研究了具有截短酰基链的单个脂醛和羧酸如何改变膜结构。我们的数据显示,脂醛和羧酸对不同电荷和大小的分子具有不同的渗透效率,ΔC9截短脂质通常比ΔC5更有效地渗透膜。在物理机制方面,ΔC9 截短脂质羧酸以 pH 依赖性方式诱导渗透和膜弯曲。其原因是羧基电离后暴露于水层界面,从而增加了氧化脂质的固有分子曲率。相反,ΔC9 截短脂质醛基和非电离羧基不会诱发弯曲结构,却能更有效地增加对大分子的渗透性。我们进一步发现,截短的脂质可以逃逸双分子层并在界面处积聚,这意味着它们可能会作用于邻近的细胞。这项研究表明,具有截短酰基链的氧化磷脂会破坏膜结构,这取决于其特定的分子结构和环境的 pH 值,为设计具有 pH 值依赖性药物释放功能的脂质纳米粒子开辟了一条可能的途径。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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