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

Authors :
Zhang, Pengzhi
Han, Jaebeom
Cieplak, Piotr
Cheung, Margaret. S.
Source :
Journal of Chemical Physics. 3/28/2021, Vol. 154 Issue 12, p1-12. 12p.
Publication Year :
2021

Abstract

It is challenging to parameterize the force field for calcium ions (Ca2+) 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 Ca2+ binding loop conformations of the Ca2+-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 Ca2+ in aqueous solution. Ca2+ 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 Ca2+ in conventional force fields is too large for the QM calculation to capture the variation in the coordination geometry of Ca2+ in its ionic form, leading to unphysical charges. Specifically, we found that the fitted atomic charges of Ca2+ 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 Ca2+, they are crucial for compensating for the coordination of Ca2+ 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. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219606
Volume :
154
Issue :
12
Database :
Academic Search Index
Journal :
Journal of Chemical Physics
Publication Type :
Academic Journal
Accession number :
149619905
Full Text :
https://doi.org/10.1063/5.0037517