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纳米盘膜蛋白的生物物理特性分析。

Biophysical characterization of membrane proteins in nanodiscs.

机构信息

Membrane Protein Structure Function Unit, National Institute of Neurological Disorders and Stroke, National Institutes of Health, 5625 Fishers Lane, Room 4S12, Rockville, MD 20852, USA.

出版信息

Methods. 2013 Mar;59(3):287-300. doi: 10.1016/j.ymeth.2012.11.006. Epub 2012 Dec 3.

Abstract

Nanodiscs are self-assembled discoidal phospholipid bilayers surrounded and stabilized by membrane scaffold proteins (MSPs), that have become a powerful and promising tool for the study of membrane proteins. Even though their reconstitution is highly regulated by the type of MSP and phospholipid input, a biophysical characterization leading to the determination of the stoichiometry of MSP, lipid and membrane protein is essential. This is important for biological studies, as the oligomeric state of membrane proteins often correlates with their functional activity. Typically combinations of several methods are applied using, for example, modified samples that incorporate fluorescent labels, along with procedures that result in nanodisc disassembly and lipid dissolution. To obtain a comprehensive understanding of the native properties of nanodiscs, modification-free analysis methods are required. In this work we provide a strategy, using a combination of dynamic light scattering and analytical ultracentrifugation, for the biophysical characterization of unmodified nanodiscs. In this manner we characterize the nanodisc preparation in terms of its overall polydispersity and characterize the hydrodynamically resolved nanodisc of interest in terms of its sedimentation coefficient, Stokes' radius and overall protein and lipid stoichiometry. Functional and biological applications are also discussed for the study of the membrane protein embedded in nanodiscs under defined experimental conditions.

摘要

纳米盘是由膜支架蛋白(MSP)环绕和稳定的自组装盘状磷脂双层,已成为研究膜蛋白的强大而有前途的工具。尽管它们的重组受到 MSP 和磷脂输入类型的高度调节,但进行生物物理特性分析以确定 MSP、脂质和膜蛋白的化学计量比是至关重要的。这对于生物学研究很重要,因为膜蛋白的寡聚状态通常与其功能活性相关。通常使用几种方法的组合来进行,例如,使用掺入荧光标记的改良样品,并结合导致纳米盘解组装和脂质溶解的程序。为了全面了解纳米盘的天然特性,需要使用无修饰的分析方法。在这项工作中,我们提供了一种使用动态光散射和分析超速离心相结合的策略,用于对未修饰的纳米盘进行生物物理特性分析。通过这种方式,我们可以根据总体多分散性来描述纳米盘制剂的特征,并根据沉降系数、Stokes 半径以及总蛋白和脂质化学计量比来描述水力解析的纳米盘。还讨论了在定义的实验条件下研究嵌入纳米盘中的膜蛋白的功能和生物学应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8217/3608844/2468b436fc42/nihms426987f1.jpg

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