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确定钙离子的原子电荷需要其在 EF 手基序中的配位几何形状的信息。

Determining the atomic charge of calcium ion requires the information of its coordination geometry in an EF-hand motif.

机构信息

Department of Physics, University of Houston, Houston, Texas 77204, USA.

Sanford Burnham Prebys Medical Discovery Institute, La Jolla, California 92037, USA.

出版信息

J Chem Phys. 2021 Mar 28;154(12):124104. doi: 10.1063/5.0037517.

Abstract

It is challenging to parameterize the force field for calcium ions (Ca) in calcium-binding proteins because of their unique coordination chemistry that involves the surrounding atoms required for stability. In this work, we observed a wide variation in Ca binding loop conformations of the Ca-binding protein calmodulin, which adopts the most populated ternary structures determined from the molecular dynamics simulations, followed by ab initio quantum mechanical (QM) calculations on all 12 amino acids in the loop that coordinate Ca in aqueous solution. Ca charges were derived by fitting to the electrostatic potential in the context of a classical or polarizable force field (PFF). We discovered that the atomic radius of Ca in conventional force fields is too large for the QM calculation to capture the variation in the coordination geometry of Ca in its ionic form, leading to unphysical charges. Specifically, we found that the fitted atomic charges of Ca in the context of PFF depend on the coordinating geometry of electronegative atoms from the amino acids in the loop. Although nearby water molecules do not influence the atomic charge of Ca, they are crucial for compensating for the coordination of Ca due to the conformational flexibility in the EF-hand loop. Our method advances the development of force fields for metal ions and protein binding sites in dynamic environments.

摘要

由于钙结合蛋白中涉及稳定性所需的周围原子,钙离子(Ca)的力场参数化具有挑战性。在这项工作中,我们观察到钙结合蛋白钙调蛋白的 Ca 结合环构象有很大变化,它采用了从分子动力学模拟确定的最流行的三元结构,然后对环中所有 12 个与水溶液中的 Ca 配位的氨基酸进行从头量子力学(QM)计算。Ca 电荷是通过拟合静电势得出的,该静电势是在经典或极化力场(PFF)的背景下得出的。我们发现,传统力场中 Ca 的原子半径对于 QM 计算来说太大,无法捕捉其离子形式的配位几何形状的变化,从而导致不合理的电荷。具体来说,我们发现 PFF 背景下的 Ca 拟合原子电荷取决于来自环中氨基酸的带负电原子的配位几何形状。尽管附近的水分子不会影响 Ca 的原子电荷,但它们对于补偿 EF 手环中的构象灵活性导致的 Ca 配位至关重要。我们的方法推进了在动态环境中用于金属离子和蛋白质结合位点的力场的发展。

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