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Recalibrating the Calcium Trap in Amino Acid Carboxyl Groups Classical Molecular Dynamics Simulations

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Specialties Biophysics
Chemistry
Date 2022 Dec 16
PMID 36524712
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Abstract

In order to use classical molecular dynamics to complement experiments accurately, it is important to use robust descriptions of the system. The interactions between biomolecules, like aspartic and glutamic acid, and dissolved ions are often studied using standard biomolecular force-fields, where the interactions between biomolecules and cations are often not parameterized explicitly. In this study, we have employed metadynamics simulations to investigate different interactions of Ca with aspartic and glutamic acid and constructed the free energy profiles of Ca-carboxylate association. Starting from a generally accepted, AMBER-based force field, the association was substantially over and under-estimated, depending on the choice of water model (TIP3P and SPC/fw, respectively). To rectify this discrepancy, we have replaced the default calcium parameters. Additionally, we modified the value in the hetero-atomic Lennard-Jones interaction by 0.5% to further improve the interaction between Ca and carboxylate, based on comparison with the experimentally determined association constant for Ca with the carboxylate group of L-aspartic acid. The corrected description retrieved the structural properties of the ion pair in agreement with the original biomolecule - Ca interaction in AMBER, whilst also producing an association constant comparable to experimental observations. This refined force field was then used to investigate the interactions between amino acids, calcium and carbonate ions during biogenic and biomimetic calcium carbonate mineralisation.

References
1.
Zou Z, Polishchuk I, Bertinetti L, Pokroy B, Politi Y, Fratzl P . Additives influence the phase behavior of calcium carbonate solution by a cooperative ion-association process. J Mater Chem B. 2020; 6(3):449-457. DOI: 10.1039/c7tb03170j. View

2.
Babu C, Lim C . Empirical force fields for biologically active divalent metal cations in water. J Phys Chem A. 2006; 110(2):691-9. DOI: 10.1021/jp054177x. View

3.
Tribello G, Bruneval F, Liew C, Parrinello M . A molecular dynamics study of the early stages of calcium carbonate growth. J Phys Chem B. 2009; 113(34):11680-7. DOI: 10.1021/jp902606x. View

4.
MacKerell A, Bashford D, Bellott M, Dunbrack R, Evanseck J, Field M . All-atom empirical potential for molecular modeling and dynamics studies of proteins. J Phys Chem B. 2014; 102(18):3586-616. DOI: 10.1021/jp973084f. View

5.
Tang N, Skibsted L . Calcium Binding to Amino Acids and Small Glycine Peptides in Aqueous Solution: Toward Peptide Design for Better Calcium Bioavailability. J Agric Food Chem. 2016; 64(21):4376-89. DOI: 10.1021/acs.jafc.6b01534. View