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Micromanipulation Techniques Allowing Analysis of Morphogenetic Dynamics and Turnover of Cytoskeletal Regulators

机译:显微操纵技术可进行形态发生动力学分析和细胞骨架调节剂的转换

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摘要

Examining the spatiotemporal dynamics of proteins can reveal their functional importance in various contexts. In this article, it is discussed how fluorescent recovery after photobleaching (FRAP) and photoactivation techniques can be used to study the spatiotemporal dynamics of proteins in subcellular locations. We also show how these techniques enable straightforward determination of various parameters linked to actin cytoskeletal regulation and cell motility. Moreover, the microinjection of cells is additionally described as an alternative treatment (potentially preceding or complementing the aforementioned photomanipulation techniques) to trigger instantaneous effects of translocated proteins on cell morphology and function. Micromanipulation such as protein injection or local application of plasma membrane-permeable drugs or cytoskeletal inhibitors can serve as powerful tool to record immediate consequences of a given treatment on cell behavior at the single cell and subcellular level. This is exemplified here by immediate induction of lamellipodial cell edge protrusion by the injection of recombinant Rac1 protein, as established a quarter-century ago. In addition, we provide a protocol for determining the turnover of enhanced green fluorescent protein (EGFP)-VASP, an actin filament polymerase prominently accumulating at lamellipodial tips of B16-F1 cells, employing FRAP and including associated data analysis and curve fitting. We also present guidelines for estimating the rates of lamellipodial actin network polymerization, as exemplified by cells expressing EGFP-tagged β-actin. Finally, instructions are given for how to investigate the rates of actin monomer mobility within the cell cytoplasm, followed by actin incorporation at sites of rapid filament assembly, such as the tips of protruding lamellipodia, using photoactivation approaches. None of these protocols is restricted to components or regulators of the actin cytoskeleton, but can easily be extended to explore in analogous fashion the spatiotemporal dynamics and function of proteins in various different subcellular structures or functional contexts.
机译:检查蛋白质的时空动态可以揭示它们在各种情况下的功能重要性。在本文中,将讨论如何使用光漂白后的荧光恢复(FRAP)和光活化技术来研究亚细胞位置蛋白质的时空动态。我们还展示了这些技术如何能够直接确定与肌动蛋白细胞骨架调节和细胞运动相关的各种参数。此外,细胞的显微注射还被描述为替代疗法(可能在上述光操纵技术之前或对其进行补充),以触发转位蛋白对细胞形态和功能的瞬时作用。显微操作(例如蛋白质注射或质膜可渗透性药物或细胞骨架抑制剂的局部应用)可以作为强大的工具来记录给定治疗对单细胞和亚细胞水平细胞行为的直接后果。如通过四分之一世纪以前建立的重组Rac1蛋白的注射立即诱导层状脂质体细胞边缘突出来举例说明。此外,我们提供了确定FRAP并使用FRAP并包括相关数据分析和曲线拟合的增强型绿色荧光蛋白(EGFP)-VASP(肌动蛋白丝聚合酶主要在B16-F1细胞的层状脂质体尖端聚集)的周转率的协议。我们还提出了用于估计层状脂蛋白肌动蛋白网络聚合速率的指南,例如表达EGFP标记的β-肌动蛋白的细胞。最后,给出了如何使用光活化方法研究肌动蛋白单体在细胞质内迁移率的信息,然后研究肌动蛋白在快速长丝装配位点(如突出的片状脂膜的尖端)掺入肌动蛋白的速率。这些协议都不限于肌动蛋白细胞骨架的组成部分或调节子,但可以轻松扩展以类似方式探索蛋白质在各种不同的亚细胞结构或功能环境中的时空动力学和功能。

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