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通过荧光相关光谱法(FCS)测定活细胞中荧光标记探针的脂筏分配情况。

Determination of lipid raft partitioning of fluorescently-tagged probes in living cells by Fluorescence Correlation Spectroscopy (FCS).

作者信息

Marquer Catherine, Lévêque-Fort Sandrine, Potier Marie-Claude

机构信息

Centre de Recherche de l'Institut du Cerveau et de la Moelle Épinière, Hôpital de la Pitié-Salpêtrière.

出版信息

J Vis Exp. 2012 Apr 6(62):e3513. doi: 10.3791/3513.

Abstract

In the past fifteen years the notion that cell membranes are not homogenous and rely on microdomains to exert their functions has become widely accepted. Lipid rafts are membrane microdomains enriched in cholesterol and sphingolipids. They play a role in cellular physiological processes such as signalling, and trafficking but are also thought to be key players in several diseases including viral or bacterial infections and neurodegenerative diseases. Yet their existence is still a matter of controversy. Indeed, lipid raft size has been estimated to be around 20 nm, far under the resolution limit of conventional microscopy (around 200 nm), thus precluding their direct imaging. Up to now, the main techniques used to assess the partition of proteins of interest inside lipid rafts were Detergent Resistant Membranes (DRMs) isolation and co-patching with antibodies. Though widely used because of their rather easy implementation, these techniques were prone to artefacts and thus criticized. Technical improvements were therefore necessary to overcome these artefacts and to be able to probe lipid rafts partition in living cells. Here we present a method for the sensitive analysis of lipid rafts partition of fluorescently-tagged proteins or lipids in the plasma membrane of living cells. This method, termed Fluorescence Correlation Spectroscopy (FCS), relies on the disparity in diffusion times of fluorescent probes located inside or outside of lipid rafts. In fact, as evidenced in both artificial membranes and cell cultures, probes would diffuse much faster outside than inside dense lipid rafts. To determine diffusion times, minute fluorescence fluctuations are measured as a function of time in a focal volume (approximately 1 femtoliter), located at the plasma membrane of cells with a confocal microscope (Fig. 1). The auto-correlation curves can then be drawn from these fluctuations and fitted with appropriate mathematical diffusion models. FCS can be used to determine the lipid raft partitioning of various probes, as long as they are fluorescently tagged. Fluorescent tagging can be achieved by expression of fluorescent fusion proteins or by binding of fluorescent ligands. Moreover, FCS can be used not only in artificial membranes and cell lines but also in primary cultures, as described recently. It can also be used to follow the dynamics of lipid raft partitioning after drug addition or membrane lipid composition change.

摘要

在过去的十五年里,细胞膜并非均匀一致、而是依赖微结构域发挥功能这一观念已被广泛接受。脂筏是富含胆固醇和鞘脂的膜微结构域。它们在细胞生理过程如信号传导和运输中发挥作用,但也被认为是包括病毒或细菌感染以及神经退行性疾病在内的多种疾病的关键因素。然而,它们的存在仍存在争议。实际上,脂筏大小估计约为20纳米,远低于传统显微镜的分辨率极限(约200纳米),因此无法对其进行直接成像。到目前为止,用于评估目标蛋白在脂筏内分配情况的主要技术是抗去污剂膜(DRMs)分离以及与抗体的共定位。尽管由于其实施相对容易而被广泛使用,但这些技术容易产生假象,因此受到批评。因此,需要技术改进来克服这些假象,并能够在活细胞中探测脂筏的分配情况。在此,我们介绍一种用于灵敏分析活细胞质膜中荧光标记蛋白或脂质的脂筏分配情况的方法。这种方法称为荧光相关光谱法(FCS),它依赖于位于脂筏内部或外部的荧光探针扩散时间的差异。事实上,正如在人工膜和细胞培养中所证明的那样,探针在致密脂筏外部的扩散速度比在内部快得多。为了确定扩散时间,使用共聚焦显微镜在位于细胞质膜的焦体积(约1飞升)中测量微小的荧光波动随时间的变化(图1)。然后可以从这些波动中绘制出自相关曲线,并使用适当的数学扩散模型进行拟合。只要探针带有荧光标记,FCS就可用于确定各种探针的脂筏分配情况。荧光标记可通过荧光融合蛋白的表达或荧光配体的结合来实现。此外,如最近所述,FCS不仅可用于人工膜和细胞系,还可用于原代培养。它还可用于跟踪药物添加或膜脂质组成变化后脂筏分配的动态情况。

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