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通过π-阳离子相互作用调节无辅腺嘌呤激酶的构象动力学。

Modulation of the Conformational Dynamics of Apo-Adenylate Kinase through a π-Cation Interaction.

机构信息

Department of Physical Chemistry, Indian Association for the Cultivation of Science , Jadavpur, Kolkata 700032, India.

出版信息

J Phys Chem B. 2017 Jun 15;121(23):5699-5708. doi: 10.1021/acs.jpcb.7b01736. Epub 2017 Jun 6.

Abstract

Large-scale conformational transition from open to closed state of adenylate kinase (ADK) is essential for its catalytic cycle. Apo-ADK undergoes conformational transition in a way that closely resembles an open-to-closed conformational transition. Here, equilibrium simulations, free-energy simulations, and quantum mechanics/molecular mechanics (QM/MM) calculations in combination with several bioinformatics approaches have been used to explore the molecular origin of this conformational transition in apo-ADK. In addition to its conventional open state, Escherichia coli apo-ADK adopts conformations that resemble a closed-like intermediate, the "half-open-half-closed" (HOHC) state, and a π-cation interaction can account for the stability of this HOHC state. Energetics and the electronic properties of this π-cation interaction have been explored using QM/MM calculations. Upon rescinding the π-cation interaction, the conformational landscape of the apo-ADK changes completely. The apo-ADK population is shifted completely toward the open state. This π-cation interaction is highly conserved in bacterial ADK; the cationic guanidinium moiety of a conserved ARG interacts with the delocalized π-electron cloud of either PHE or TYR. Interestingly, this study demonstrates the modulation of a principal protein dynamics by a conserved specific π-cation interaction across different organisms.

摘要

腺嘌呤激酶(ADK)从开放状态到关闭状态的大规模构象转变对于其催化循环至关重要。无配体 ADK 以类似于开放到关闭构象转变的方式发生构象转变。在这里,使用平衡模拟、自由能模拟和量子力学/分子力学(QM/MM)计算以及几种生物信息学方法来探索无配体 ADK 中这种构象转变的分子起源。除了其传统的开放状态外,大肠杆菌无配体 ADK 还采用类似于关闭样中间态的构象,即“半开半闭”(HOHC)状态,π-阳离子相互作用可以解释这种 HOHC 状态的稳定性。使用 QM/MM 计算探索了这种 π-阳离子相互作用的能量学和电子性质。在取消 π-阳离子相互作用后,无配体 ADK 的构象景观完全改变。无配体 ADK 种群完全向开放状态转移。这种 π-阳离子相互作用在细菌 ADK 中高度保守;保守 ARG 的胍基部分与 PHE 或 TYR 的离域π 电子云相互作用。有趣的是,这项研究表明,在不同生物体中,通过保守的特定 π-阳离子相互作用来调节主要蛋白质动力学。

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