活细胞中蛋白质相互作用的可视化。

Tomasz Zal
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引用次数: 15

摘要

配体与细胞膜受体的结合引发了一系列蛋白质相互作用,将配体身份的细微差别传递给细胞内部。这些信息可以通过构象变化、相互作用动力学以及在多链免疫受体的情况下通过链重排进行编码。这些信号可能受到细胞膜的动态区隔化、细胞结构、运动和激活等因素的调节,而这些因素在体外的受体信号研究中都很难重构。在本文中,我们将讨论如何通过不同的荧光成像技术在活细胞中研究蛋白质相互作用和受体信号传导。特别通用的方法是利用Förster共振能量转移(FRET),这是非常敏感的纳米范围接近和荧光团之间的方向。荧光相关显微镜(FCM)可以提供有关大配合物的化学计量学和扩散动力学的补充信息,而双分子荧光互补(BiFC)和其他互补技术可以捕获瞬态相互作用。一个持续的挑战是从成像数据中提取定量信息,这是验证不同信号转导模型所必需的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Visualization of Protein Interactions in Living Cells.

Ligand binding to cell membrane receptors sets off a series of protein interactions that convey the nuances of ligand identity to the cell interior. The information may be encoded in conformational changes, the interaction kinetics and, in the case of multichain immunoreceptors, by chain rearrangements. The signals may be modulated by dynamic compartmentalization of the cell membrane, cellular architecture, motility, and activation-all of which are difficult to reconstitute for studies of receptor signaling in vitro. In this paper, we will discuss how protein interactions in general and receptor signaling in particular can be studied in living cells by different fluorescence imaging techniques. Particularly versatile are methods that exploit Förster resonance energy transfer (FRET), which is exquisitely sensitive to the nanometer-range proximity and orientation between fluorophores. Fluorescence correlation microscopy (FCM) can provide complementary information about the stoichiometry and diffusion kinetics of large complexes, while bimolecular fluorescence complementation (BiFC) and other complementation techniques can capture transient interactions. A continuing challenge is extracting from the imaging data the quantitative information that is necessary to verify different models of signal transduction.

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