Multiscale lipid membrane dynamics as revealed by neutron spectroscopy

IF 14 1区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Progress in lipid research Pub Date : 2022-07-01 DOI:10.1016/j.plipres.2022.101179
V.K. Sharma , E. Mamontov
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引用次数: 8

Abstract

The plasma membrane is one of the principal structural components of the cell and, therefore, one of the key components of the cellular life. Because the membrane's dynamics links the membrane's structure and function, the complexity and the broad range of the membrane's motions are essential for the enormously diverse functionality of the cell membrane. Even for the main membrane component, the lipid bilayer, considered alone, the range and complexity of the lipid motions are remarkable. Spanning the time scale from sub-picosecond to minutes and hours, the lipid motion in a bilayer is challenging to study even when a broad array of dynamic measurement techniques is employed. Neutron scattering plays a special role among such dynamic measurement techniques, particularly, because it involves the energy transfers commensurate with the typical intra- and inter- molecular dynamics and the momentum transfers commensurate with intra- and inter-molecular distances. Thus, using neutron scattering-based techniques, the spatial and temporal information on the lipid motion can be obtained and analysed simultaneously. Protium vs. deuterium sensitivity and non-destructive character of the neutron probe add to the remarkable prowess of neutron scattering for elucidating the lipid dynamics. Herein we present an overview of the neutron scattering-based studies of lipid dynamics in model membranes, with a discussion of the direct relevance and implications to the real-life cell membranes. The latter are much more complex systems than simple model membranes, consisting of heterogeneous non-stationary domains composed of lipids, proteins, and other small molecules, such as carbohydrates. Yet many fundamental aspects of the membrane behavior and membrane interactions with other molecules can be understood from neutron scattering measurements of the model membranes. For example, such studies can provide a great deal of information on the interactions of antimicrobial compounds with the lipid matrix of a pathogen membrane, or the interactions of drug molecules with the plasma membrane. Finally, we briefly discuss the recently emerging field of neutron scattering membrane studies with a reach far beyond the model membrane systems.

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中子光谱学揭示的多尺度脂膜动力学
质膜是细胞的主要结构成分之一,因此是细胞生命的关键成分之一。由于膜的动力学联系着膜的结构和功能,膜运动的复杂性和广泛的范围对于细胞膜的巨大多样性的功能是必不可少的。即使对于主要的膜组分,脂质双分子层,单独考虑,脂质运动的范围和复杂性是显著的。跨越从亚皮秒到分和小时的时间尺度,即使采用了广泛的动态测量技术,双分子层中的脂质运动也具有挑战性。中子散射在这些动态测量技术中起着特殊的作用,特别是因为它涉及与典型的分子内和分子间动力学相适应的能量转移和与分子内和分子间距离相适应的动量转移。因此,利用基于中子散射的技术,可以同时获得和分析脂质运动的时空信息。质子对氘的敏感性和中子探针的非破坏性特性增加了中子散射在阐明脂质动力学方面的非凡能力。在此,我们概述了基于中子散射的模型膜中脂质动力学研究,并讨论了与现实生活中的细胞膜的直接相关性和意义。后者是比简单模型膜复杂得多的系统,由由脂质、蛋白质和其他小分子(如碳水化合物)组成的异质非固定结构域组成。然而,膜行为和膜与其他分子相互作用的许多基本方面可以从模型膜的中子散射测量中理解。例如,这些研究可以提供大量关于抗菌化合物与病原体膜的脂质基质相互作用或药物分子与质膜相互作用的信息。最后,我们简要讨论了中子散射膜研究的新领域,其研究范围远远超出了模型膜系统。
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来源期刊
Progress in lipid research
Progress in lipid research 生物-生化与分子生物学
CiteScore
24.50
自引率
2.20%
发文量
37
审稿时长
14.6 weeks
期刊介绍: The significance of lipids as a fundamental category of biological compounds has been widely acknowledged. The utilization of our understanding in the fields of biochemistry, chemistry, and physiology of lipids has continued to grow in biotechnology, the fats and oils industry, and medicine. Moreover, new aspects such as lipid biophysics, particularly related to membranes and lipoproteins, as well as basic research and applications of liposomes, have emerged. To keep up with these advancements, there is a need for a journal that can evaluate recent progress in specific areas and provide a historical perspective on current research. Progress in Lipid Research serves this purpose.
期刊最新文献
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