薄膜内部:使用弹性散射技术和朋友更近距离观察。

IF 2.2 4区 生物学 Q3 BIOPHYSICS
Michael Kaltenegger, Enrico F Semeraro, Georg Pabst
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引用次数: 0

摘要

生物膜是高度动态和自适应的界面,定义了细胞区室,对详细表征提出了重大挑战。在各种各样的实验和计算技术中,小角度散射作为一种无标记、非侵入性的方法出现,能够探测从微米到亚纳米的长度尺度上的膜结构。通过利用x射线和中子散射的互补对比,结合先进的优化算法,该方法为具有明确定义的脂质和蛋白质结构的膜提供了独特的见解。在这篇综述中,我们重点介绍了Pabst实验室最近的研究,包括脂质结构域、不对称脂质膜和固有脂质曲率的研究。此外,我们还探讨了这些发现的功能意义,如整体膜酶的活性和活细胞中抗菌肽的作用。这些例子强调了小角度散射技术在阐明膜功能方面的多功能性,为理解细胞过程和推进药物应用提供了有价值的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inside the membrane: a closer look using elastic scattering techniques and friends.

Biological membranes are highly dynamic and adaptive interfaces that define cellular compartments, posing significant challenges for detailed characterization. Among the diverse range of experimental and computational techniques, small-angle scattering emerges as a label-free, non-invasive method capable of probing membrane structures across length scales from micrometers to subnanometers. By exploiting the complementary contrasts of X-ray and neutron scattering, combined with advanced optimization algorithms, this approach has provided unique insights into membranes with well-defined lipid and protein architectures. In this review, we highlight recent studies from the Pabst Lab, including investigations of lipid domains, asymmetric lipid membranes, and intrinsic lipid curvature. Furthermore, we explore the functional implications of these findings, such as the activity of an integral membrane enzyme and the effects of antimicrobial peptides in live cells. These examples underscore the versatility of small-angle scattering techniques in elucidating membrane functions, offering valuable perspectives for understanding cellular processes and advancing pharmaceutical applications.

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来源期刊
European Biophysics Journal
European Biophysics Journal 生物-生物物理
CiteScore
4.30
自引率
0.00%
发文量
43
审稿时长
6-12 weeks
期刊介绍: The journal publishes papers in the field of biophysics, which is defined as the study of biological phenomena by using physical methods and concepts. Original papers, reviews and Biophysics letters are published. The primary goal of this journal is to advance the understanding of biological structure and function by application of the principles of physical science, and by presenting the work in a biophysical context. Papers employing a distinctively biophysical approach at all levels of biological organisation will be considered, as will both experimental and theoretical studies. The criteria for acceptance are scientific content, originality and relevance to biological systems of current interest and importance. Principal areas of interest include: - Structure and dynamics of biological macromolecules - Membrane biophysics and ion channels - Cell biophysics and organisation - Macromolecular assemblies - Biophysical methods and instrumentation - Advanced microscopics - System dynamics.
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