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MD 和 QM/MM 研究带 mRNA、l-组氨酸配体和 Mg 的四聚体 HutP 同六聚体复合物

MD and QM/MM Study of the Quaternary HutP Homohexamer Complex with mRNA, l-Histidine Ligand, and Mg.

机构信息

Institute of Biophysics of the Czech Academy of Sciences, Královopolská 135, 612 65 Brno, Czech Republic.

Regional Centre of Advanced Technologies and Materials, Department of Physical Chemistry, Faculty of Science, Palacky University Olomouc , 17. listopadu 12, 771 46 Olomouc, Czech Republic.

出版信息

J Chem Theory Comput. 2017 Nov 14;13(11):5658-5670. doi: 10.1021/acs.jctc.7b00598. Epub 2017 Nov 1.

Abstract

The HutP protein from B. subtilis regulates histidine metabolism by interacting with an antiterminator mRNA hairpin in response to the binding of l-histidine and Mg. We studied the functional ligand-bound HutP hexamer complexed with two mRNAs using all-atom microsecond-scale explicit-solvent MD simulations performed with the Amber force fields. The experimentally observed protein-RNA interface exhibited good structural stability in the simulations with the exception of some fluctuations in an unusual adenine-threonine interaction involving two closely spaced H-bonds. We further investigated this interaction by comparing QM/MM and MM optimizations, using the QM region comprising almost 350 atoms described at the DFT-D3 level. The QM/MM method clearly improved the adenine-threonine interaction compared to MM, especially when the X-H bond lengths were frozen during the MM optimization to mimic the use of SHAKE in the MD simulations. Thus, both the MM approximation and the use of SHAKE can compromise the description of H-bonds at protein-RNA interfaces. The simulations also revealed a notable Mg-parameter dependence in the behavior of the ligand-binding pocket (LBP). With the SPC/E water model, the 12-6 Åqvist and Li&Merz parameters provided an entirely stable LBP structure, but the 12-6 Allnér and 12-6-4 Li&Merz parametrizations resulted in a progressive loss of direct nitrogen-Mg LBP coordination. The Allnér and Li&Merz 12-6 parametrizations were also tested with the TIP3P water model; the LBP was destabilized in both cases. This illustrates the difficulty of consistently describing different Mg interactions using nonpolarizable force fields. Overall, the simulations support the hypothesis that HutP protein becomes fully structured upon ligand binding. Subsequent RNA binding does not affect the protein structure, in keeping with the mechanism inferred from experimental structures.

摘要

枯草芽孢杆菌的 HutP 蛋白通过与反终止子 mRNA 发夹相互作用来调节组氨酸代谢,这种相互作用响应于 l-组氨酸和 Mg 的结合。我们使用 Amber 力场进行了全原子微秒尺度显式溶剂 MD 模拟,研究了功能配体结合的 HutP 六聚体与两个 mRNA 的复合物。除了涉及两个紧密间隔的氢键的不寻常腺嘌呤-苏氨酸相互作用中的一些波动外,实验观察到的蛋白质-RNA 界面在模拟中表现出良好的结构稳定性。我们通过比较使用 DFT-D3 水平描述的近 350 个原子的 QM 区域的 QM/MM 和 MM 优化,进一步研究了这种相互作用。与 MM 相比,QM/MM 方法明显改善了腺嘌呤-苏氨酸相互作用,尤其是当 MM 优化过程中冻结 X-H 键长以模拟 MD 模拟中 SHAKE 的使用时。因此,MM 近似和 SHAKE 的使用都可能影响蛋白质-RNA 界面氢键的描述。模拟还揭示了配体结合口袋 (LBP) 行为中明显的 Mg 参数依赖性。使用 SPC/E 水模型时,12-6 Åqvist 和 Li&Merz 参数提供了完全稳定的 LBP 结构,但 12-6 Allnér 和 12-6-4 Li&Merz 参数化导致直接氮-Mg LBP 配位的逐渐丧失。Allnér 和 Li&Merz 12-6 参数化也在 TIP3P 水模型中进行了测试;在这两种情况下,LBP 都不稳定。这说明了使用非极化力场一致描述不同 Mg 相互作用的困难。总体而言,模拟支持了这样的假设,即配体结合后 HutP 蛋白完全形成结构。随后的 RNA 结合不会影响蛋白质结构,这与从实验结构推断出的机制一致。

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