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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >ATP Hydrolysis Mechanism in a Maltose Transporter Explored by QM/MM Metadynamics Simulation
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ATP Hydrolysis Mechanism in a Maltose Transporter Explored by QM/MM Metadynamics Simulation

机译:QM / MM动力学模拟探讨麦芽糖转运蛋白中的ATP水解机理

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摘要

Translocation of substrates across the cell membrane by adenosine 5'-triphosphate (ATP)-binding cassette (ABC) transporters depends on the energy provided by ATP hydrolysis within the nucleotide binding domains (NBDs). However, the detailed mechanism remains unclear. In this study, we focused on maltose transporter NBDs (MalK(2)) and performed a quantum mechanical/molecular mechanical (QM/MM) well-tempered metadynamics simulation to address this issue. We explored the free-energy profile along an assigned collective variable. As a result, it was determined that the activation free energy is approximately 10.5 kcal/ mol, and the reaction released approximately 3.8 kcal/mol of free energy, indicating that the reaction of interest is a one-step exothermic reaction. The dissociation of the ATP gamma-phosphate seems to be the rate-limiting step, which supports the so-called dissociative model. Moreover, Glu159, located in the Walker B motif, acts as a base to abstract the proton from the lytic water, but is not the catalytic base, which corresponds to an atypical general base catalysis model. We also observed two interesting proton transfers: transfer from the His192 epsilon-position nitrogen to the dissociated inorganic phosphate, Pi, and transfer from the Lys42 side chain to adenosine 5'-diphosphate beta-phosphate. These proton transfers would stabilize the posthydrolysis state. Our study provides significant insight into the ATP hydrolysis mechanism in MalK(2) from a dynamical viewpoint, and this insight would be applicable to other ABC transporters.
机译:5'-三磷酸腺苷(ATP)结合盒(ABC)转运蛋白在细胞膜上转运底物取决于ATP水解在核苷酸结合域(NBD)中提供的能量。但是,具体机制仍不清楚。在这项研究中,我们专注于麦芽糖转运蛋白NBD(MalK(2)),并进行了量子力学/分子力学(QM / MM)合理的元动力学模拟来解决此问题。我们沿着分配的集体变量探索了自由能分布。结果,确定活化自由能为约10.5kcal / mol,并且反应释放了约3.8kcal / mol的自由能,表明目标反应是一步式放热反应。 ATPγ-磷酸的解离似乎是限速步骤,它支持所谓的解离模型。此外,位于Walker B母题中的Glu159充当从裂解水中提取质子的基础,但不是催化性碱,它对应于非典型的一般性碱催化模型。我们还观察到了两个有趣的质子转移:从His192ε位氮转移到离解的无机磷酸盐Pi,以及从Lys42侧链转移到5'-二磷酸β-磷酸腺苷。这些质子转移将稳定后水解状态。我们的研究从动力学的角度提供了对MalK(2)中ATP水解机制的重要见解,这一见解将适用于其他ABC转运蛋白。

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