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通过酶分析和分子动力学模拟分析ATP结合盒转运蛋白MsbA中偶联螺旋的结构和功能作用。

Analysis of the structural and functional roles of coupling helices in the ATP-binding cassette transporter MsbA through enzyme assays and molecular dynamics simulations.

作者信息

Furuta Tadaomi, Yamaguchi Tomohiro, Kato Hiroaki, Sakurai Minoru

机构信息

Center for Biological Resources and Informatics, Tokyo Institute of Technology , B-62 4259 Nagatsuta-cho, Midori-ku, Yokohama 226-8501, Japan.

出版信息

Biochemistry. 2014 Jul 8;53(26):4261-72. doi: 10.1021/bi500255j. Epub 2014 Jun 25.

DOI:10.1021/bi500255j
PMID:24937232
Abstract

ATP-binding cassette (ABC) transporters are constructed from some common structural units: the highly conserved nucleotide-binding domains (NBDs), which work as a nucleotide-dependent engine for driving substrate transport, the diverse transmembrane domains (TMDs), which create the translocation pathway, and the coupling helices (CHs), which are located at the NBD-TMD interface. Although the CHs are believed to be essential for NBD-TMD communication, their roles remain unclear. In this study, we performed enzyme assays and molecular dynamics (MD) simulations of the ABC transporter MsbA and two MsbA mutants in which the amino acid residues of one of the CHs were mutated to alanines: (i) wild type (Wt), (ii) CH1 mutant (Mt1), and (iii) CH2 mutant (Mt2). The experiments show that the CH2 mutation decreases the ATPase activity (kcat) compared with that of the Wt (a decrease of 32%), and a nearly equal degree of decrease in the ATP binding affinity (Km) was observed for both Mt1 and Mt2. The MD simulations successfully accounted for several structural and dynamical origins for these experimental observations. In addition, on the basis of collective motion and morphing analyses, we propose that the reverse-rotational motions and noddinglike motions between the NBDs and TMDs are indispensable for the conformational transition between the inward- and outward-facing conformations. In particular, CH2 is significantly important for the occurrence of the noddinglike motion. These findings provide important insights into the structure-function relationship of ABC transporters.

摘要

ATP结合盒(ABC)转运蛋白由一些常见的结构单元构成:高度保守的核苷酸结合结构域(NBDs),其作为依赖核苷酸的引擎驱动底物转运;多样的跨膜结构域(TMDs),其形成转运途径;以及位于NBD-TMD界面的偶联螺旋(CHs)。尽管人们认为CHs对于NBD-TMD的通讯至关重要,但其作用仍不清楚。在本研究中,我们对ABC转运蛋白MsbA以及两个MsbA突变体进行了酶活性测定和分子动力学(MD)模拟,在这两个突变体中,其中一个CH的氨基酸残基被突变为丙氨酸:(i)野生型(Wt),(ii)CH1突变体(Mt1),以及(iii)CH2突变体(Mt2)。实验表明,与Wt相比,CH2突变降低了ATP酶活性(kcat)(降低了32%),并且观察到Mt1和Mt2的ATP结合亲和力(Km)下降程度几乎相同。MD模拟成功解释了这些实验观察结果的几个结构和动力学起源。此外,基于集体运动和形态分析,我们提出NBDs和TMDs之间的反向旋转运动和点头样运动对于向内和向外构象之间的构象转变是必不可少的。特别是,CH2对于点头样运动的发生非常重要。这些发现为ABC转运蛋白的结构-功能关系提供了重要见解。

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