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微流控扩散式粒径检测探头用于脂质纳米碟的形成。

Microfluidic diffusional sizing probes lipid nanodiscs formation.

机构信息

Univ Bordeaux, CNRS, CBMN UMR 5248, Bat B14 Allée Geoffroy St Hilaire, F-33600 Pessac, France.

Fluidic Analytics Ltd, Unit A, The Paddocks Business Centre, Cherry Hinton Rd, Cambridge CB1 8DH, United Kingdom.

出版信息

Biochim Biophys Acta Biomembr. 2020 Jun 1;1862(6):183215. doi: 10.1016/j.bbamem.2020.183215. Epub 2020 Feb 20.

Abstract

The biophysical characterisation of membrane proteins and their interactions with lipids in native membrane habitat remains a major challenge. Indeed, traditional solubilisation procedures with detergents often causes the loss of native lipids surrounding membrane proteins, which ultimately impacts structural and functional properties. Recently, copolymer-based nanodiscs have emerged as a highly promising tool, thanks to their unique ability of solubilising membrane proteins directly from native membranes, in the shape of discoidal patches of lipid bilayers. While this methodology finally set us free from the use of detergents, some limitations are however associated with the use of such copolymers. Among them, one can cite the tedious control of the nanodiscs size, their instability in basic pH and in the presence of divalent cations. In this respect, many variants of the widely used Styrene Maleic Acid (SMA) copolymer have been developed to specifically address those limitations. With the multiplication of new SMA copolymer variants and the growing interest in copolymer-based nanodiscs for the characterisation of membrane proteins, there is a need to better understand and control their formation. Among the techniques used to characterise the solubilisation of lipid bilayer by amphipathic molecules, cryo-TEM, P NMR, DLS, ITC and fluorescence spectroscopy are the most widely used, with a consensus made in the sense that a combination of these techniques is required. In this work, we propose to evaluate the capacity of Microfluidic Diffusional Sizing (MDS) as a new method to follow copolymer nanodiscs formation. Originally designed to determine protein size through laminar flow diffusion, we present a novel application along with a protocol development to observe nanodiscs formation by MDS. We show that MDS allows to precisely measure the size of nanodiscs, and to determine the copolymer/lipid ratio at the onset of solubilisation. Finally, we use MDS to characterise peptide/nanodisc interaction. The technique shows a promising ability to highlight the pivotal role of lipids in promoting interactions through a case study with an aggregating peptide. This confirmed the relevance of using the MDS and nanodiscs as biomimetic models for such investigations.

摘要

膜蛋白的生物物理特性及其与天然膜环境中脂质的相互作用仍然是一个主要挑战。事实上,传统的去污剂增溶程序通常会导致围绕膜蛋白的天然脂质丢失,这最终会影响结构和功能特性。最近,基于共聚物的纳米盘作为一种极具前途的工具出现了,这要归功于它们独特的能力,即能够直接从天然膜中溶解膜蛋白,形成脂质双层的盘状斑块。虽然这种方法最终使我们摆脱了去污剂的使用,但使用这种共聚物也存在一些局限性。其中,可以举出纳米盘尺寸的繁琐控制、在碱性 pH 值和存在二价阳离子时的不稳定性等。在这方面,已经开发了许多广泛使用的苯乙烯马来酸(SMA)共聚物的变体,以专门解决这些限制。随着新的 SMA 共聚物变体的增加以及对用于膜蛋白表征的共聚物纳米盘的兴趣不断增加,需要更好地理解和控制它们的形成。在用于表征两亲分子溶解脂质双层的技术中,冷冻透射电镜、P NMR、DLS、ITC 和荧光光谱是最广泛使用的技术,人们达成了共识,即需要结合使用这些技术。在这项工作中,我们提议评估微流控扩散尺寸(MDS)作为一种新方法来跟踪共聚物纳米盘的形成。MDS 最初是为了通过层流扩散来确定蛋白质的大小而设计的,我们提出了一种新的应用以及一个新的方案来通过 MDS 观察纳米盘的形成。我们表明,MDS 可以精确测量纳米盘的大小,并确定增溶开始时共聚物/脂质的比例。最后,我们使用 MDS 来表征肽/纳米盘相互作用。该技术显示出通过使用具有聚集肽的案例研究来突出脂质在促进相互作用中的关键作用的有前途的能力。这证实了使用 MDS 和纳米盘作为此类研究的仿生模型的相关性。

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