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Kinetic basis for the competitive recruitment of TolB by the intrinsically disordered translocation domain of colicin E9

机译:大肠菌素E9内在无序易位域竞争性募集TolB的动力学基础

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摘要

TolB and Pal are members of the Tol-Pal system that spans the cell envelope of Gram-negative bacteria and contributes to the stability and integrity of the bacterial outer membrane (OM). Lipoylated Pal is tethered to the OM and binds the β-propeller domain of periplasmic TolB, which, as recent evidence suggests, disengages TolB from its interaction with other components of the Tol system in the inner membrane. Antibacterial nuclease colicins such as colicin E9 (ColE9) also bind the β-propeller domain of TolB in order to catalyze their translocation across the bacterial OM. In contrast to Pal, however, colicin binding to TolB promotes its interaction with other components of the Tol system. Here, through a series of pre-steady-state kinetic experiments utilizing fluorescence resonance energy transfer pairs within the individual protein-protein complexes, we establish the kinetic basis for such 'competitive recruitment' by the TolB-binding epitope (TBE) of ColE9. Surprisingly, the 16-residue disordered ColE9 TBE associates more rapidly with TolB than Pal, a folded 13-kDa protein. Moreover, we demonstrate that calcium ions, which bind within the confines of the TolB β-propeller domain tunnel and are known to increase the affinity of the TolB-ColE9 complex, do not exert their influence through long-range electrostatic effects, as had been predicted, but through short-range effects that slow the dissociation rate of ColE9 TBE from its complex with TolB. Our study demonstrates that an intrinsically disordered protein undergoing binding-induced folding can compete effectively with a globular protein for a common target by associating more rapidly than the globular protein. © 2012 Elsevier Ltd. All rights reserved.
机译:TolB和Pal是Tol-Pal系统的成员,该系统跨越革兰氏阴性细菌的细胞包膜,并有助于细菌外膜(OM)的稳定性和完整性。脂酰化的Pal被束缚在OM上,并与周质TolB的β-螺旋结构域结合,正如最近的证据表明的那样,它使TolB与内膜中Tol系统其他成分的相互作用脱离了。抗菌核酸酶大肠菌素(例如大肠菌素E9(ColE9))也结合TolB的β-螺旋结构域,以催化它们在细菌OM中的转运。但是,与Pal相比,大肠菌素与TolB的结合促进了其与Tol系统其他组件的相互作用。在这里,通过在各个蛋白质-蛋白质复合物中利用荧光共振能量转移对进行的一系列稳态前动力学实验,我们通过ColE9的TolB结合表位(TBE)建立了这种“竞争性募集”的动力学基础。令人惊讶的是,与残基13kDa的蛋白Pal相比,具有16个残基的无序ColE9 TBE与TolB的结合速度更快。此外,我们证明,结合在TolBβ-螺旋桨结构域隧道范围内的钙离子,已知会增加TolB-ColE9复合物的亲和力,不会像过去那样通过远程静电作用发挥其影响。预测,但通过短程效应减慢了ColE9 TBE从其与TolB的复合物中的解离速率。我们的研究表明,经历结合诱导折叠的内在无序的蛋白质可以比球形蛋白质更快地与球形蛋白质有效竞争共同目标。 ©2012 ElsevierLtd。保留所有权利。

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