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Conformational coupling of the nucleotide-binding and the transmembrane domains in ABC transporters.

机译:ABC转运蛋白中核苷酸结合和跨膜结构域的构象偶联。

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Basic architecture of ABC transporters includes two transmembrane domains (TMDs) and two nucleotide-binding domains (NBDs). Although the transport process takes place in the TMDs, which provide the substrate translocation pathway across the cell membrane and control its accessibility between the two sides of the membrane, the energy required for the process is provided by conformational changes induced in the NBDs by binding and hydrolysis of ATP. Nucleotide-dependent conformational changes in the NBDs, therefore, need to be coupled to structural changes in the TMDs. Using molecular dynamics simulations, we have investigated the structural elements involved in the conformational coupling between the NBDs and the TMDs in the Escherichia coli maltose transporter, an ABC importer for which an intact structure is available both in inward-facing and outward-facing conformations. The prevailing model of coupling is primarily based on a single structural motif, known as the coupling helices, as the main structural element for the NBD-TMD coupling. Surprisingly, we find that in the absence of the NBDs the coupling helices can be conformationally decoupled from the rest of the TMDs, despite their covalent connection. That is, the structural integrity of the coupling helices and their tight coupling to the core of the TMDs rely on the contacts provided by the NBDs. Based on the conformational and dynamical analysis of the simulation trajectories, we propose that the core coupling elements in the maltose transporter involve contributions from several structural motifs located at the NBD-TMD interface, namely, the EAA loops from the TMDs, and the Q-loop and the ENI motifs from the NBDs. These three structural motifs in small ABC importers show a high degree of correlation in motion and mediate the necessary conformational coupling between the core of TMDs and the helical subdomains of NBDs. A comprehensive analysis of the structurally known ABC transporters shows a high degree of conservation of the identified 3-motif coupling elements only in the subfamily of small ABC importers, suggesting a distinct mode of NBD-TMD coupling from the other two major ABC transporter folds, namely large ABC importers and ABC exporters.
机译:ABC转运蛋白的基本体系结构包括两个跨膜域(TMD)和两个核苷酸结合域(NBD)。尽管转运过程发生在TMD中,TMD提供了跨细胞膜的底物转运途径并控制其在膜两侧之间的可及性,但该过程所需的能量是由NBD中通过结合和诱导形成的构象变化提供的。 ATP水解。因此,需要将NBD中依赖核苷酸的构象变化与TMD中的结构变化结合起来。使用分子动力学模拟,我们研究了大肠杆菌麦芽糖转运蛋白中NBD和TMD之间构象偶联的结构元素,这是一种ABC进口商,其完整结构既可以面向内也可以面向外。流行的耦合模型主要基于单个结构基序,称为耦合螺旋,作为NBD-TMD耦合的主要结构元素。出乎意料的是,我们发现,在没有NBD的情况下,尽管它们是共价连接的,但它们的螺旋结构仍可以与其余TMD构象分离。也就是说,耦合螺旋的结构完整性及其与TMD核心的紧密耦合取决于NBD提供的接触。基于模拟轨迹的构象和动力学分析,我们建议麦芽糖转运蛋白中的核心耦合元件涉及位于NBD-TMD界面的几个结构基序的贡献,即TMD的EAA环和Q-环和NBD的ENI图案。小型ABC进口商中的这三个结构图案在运动中表现出高度相关性,并介导TMD核心与NBD螺旋亚结构域之间必要的构象偶联。对结构已知的ABC转运蛋白的全面分析显示,仅在小型ABC进口商的亚科中,高度识别的3-motif偶联元件具有保守性,这表明NBD-TMD偶联与其他两个主要ABC转运蛋白折叠方式不同,即大型ABC进口商和ABC出口商。

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