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Macromolecular interactions of the bacterial division FtsZ protein: From quantitative biochemistry and crowding to reconstructing minimal divisomes in the test tube

机译:细菌分裂FtsZ蛋白的大分子相互作用:从定量生化和拥挤到在试管中重建最小的脂质体

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The division of Escherichia coli is an essential process strictly regulated in time and space. It requires the association of FtsZ with other proteins to assemble a dynamic ring during septation, forming part of the functionally active division machinery, the divisome. FtsZ reversibly interacts with FtsA and ZipA at the cytoplasmic membrane to form a proto-ring, the first molecular assembly of the divisome, which is ultimately joined by the rest of the division-specific proteins. In this review we summarize the quantitative approaches used to study the activity, interactions, and assembly properties of FtsZ under well-defined solution conditions, with the aim of furthering our understanding of how the behavior of FtsZ is controlled by nucleotides and physiological ligands. The modulation of the association and assembly properties of FtsZ by excluded-volume effects, reproducing in part the natural crowded environment in which this protein has evolved to function, will be described. The subsequent studies on the reactivity of FtsZ in membrane-like systems using biochemical, biophysical, and imaging technologies are reported. Finally, we discuss the experimental challenges to be met to achieve construction of the minimum protein set needed to initiate bacterial division, without cells, in a cell-like compartment. This integrated approach, combining quantitative and synthetic strategies, will help to support (or dismiss) conclusions already derived from cellular and molecular analysis and to complete our understanding on how bacterial division works.
机译:大肠杆菌的分裂是在时间和空间上严格控制的基本过程。它需要FtsZ与其他蛋白质的缔合,以在分隔过程中组装一个动态环,从而形成功能活跃的分裂机制,即小体。 FtsZ在细胞质膜上与FtsA和ZipA可逆地相互作用,形成原环,这是分裂体的第一个分子组装体,最终由其余的分裂特异性蛋白结合。在这篇综述中,我们总结了用于在定义明确的溶液条件下研究FtsZ的活性,相互作用和装配性质的定量方法,目的是进一步了解核苷酸和生理配体如何控制FtsZ的行为。将描述通过排除体积效应调节FtsZ的缔合和装配特性,部分复制该蛋白质在其中进化成功能的自然拥挤环境。报道了使用生化,生物物理和成像技术对膜状系统中FtsZ反应性的后续研究。最后,我们讨论了在细胞样区室中实现启动细菌分裂而无细胞分裂所需的最小蛋白质组的构建所要面对的实验挑战。这种结合了定量和合成策略的综合方法,将有助于支持(或消除)已经从细胞和分子分析中得出的结论,并有助于我们更好地理解细菌分裂的工作原理。

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