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MinE conformational switching confers robustness on self-organized Min protein patterns

机译:MinE构象转换赋予自组织Min蛋白模式稳健性

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摘要

Protein patterning is vital for many fundamental cellular processes. This raises two intriguing questions: Can such intrinsically complex processes be reduced to certain core principles and, if so, what roles do the molecular details play in individual systems? A prototypical example for protein patterning is the bacterial Min system, in which self-organized pole-to-pole oscillations of MinCDE proteins guide the cell division machinery to midcell. These oscillations are based on cycling of the ATPase MinD and its activating protein MinE between the membrane and the cytoplasm. Recent biochemical evidence suggests that MinE undergoes a reversible, MinD-dependent conformational switch from a latent to a reactive state. However, the functional relevance of this switch for the Min network and pattern formation remains unclear. By combining mathematical modeling and in vitro reconstitution of mutant proteins, we dissect the two aspects of MinE’s switch, persistent membrane binding and a change in MinE’s affinity for MinD. Our study shows that the MinD-dependent change in MinE’s binding affinity for MinD is essential for patterns to emerge over a broad and physiological range of protein concentrations. Mechanistically, our results suggest that conformational switching of an ATPase-activating protein can lead to the spatial separation of its distinct functional states and thereby confer robustness on an intracellular protein network with vital roles in bacterial cell division.
机译:蛋白质模式对于许多基本细胞过程至关重要。这就提出了两个有趣的问题:这种内在复杂的过程是否可以归结为某些核心原理?蛋白质Mining的系统就是一个典型的例子,其中MinCDE蛋白质的自组织极对极振动将细胞分裂机制引导至中细胞。这些振荡是基于ATPase MinD及其活化蛋白MinE在膜和细胞质之间的循环。最近的生化证据表明,MinE经历了从潜伏状态到反应状态的可逆,依赖MinD的构象转换。但是,此开关对于Min网络和模式形成的功能相关性仍不清楚。通过结合数学模型和突变蛋白的体外重建,我们剖析了MinE转换的两个方面,持久的膜结合以及MinE对MinD亲和力的变化。我们的研究表明,MinE对MinD的结合亲和力的依赖MinD的变化对于在较大的生理范围内的蛋白质浓度范围内出现模式至关重要。从机理上讲,我们的结果表明,ATPase激活蛋白的构象转换可导致其不同功能状态的空间分离,从而使在细菌细胞分裂中起重要作用的细胞内蛋白网络具有鲁棒性。

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