Refinement of the drude polarizable force field for hexose monosaccharides: capturing ring conformational dynamics with enhanced accuracy

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dc.contributor.author J. N., Chythra
dc.contributor.author Guvench, Olgun
dc.contributor.author MacKerell Jr, Alexander D.
dc.contributor.author Yamaguchi, Takumi
dc.contributor.author Mallajosyula, Sairam S.
dc.coverage.spatial United States of America
dc.date.accessioned 2024-10-30T10:20:31Z
dc.date.available 2024-10-30T10:20:31Z
dc.date.issued 2024-10
dc.identifier.citation J. N., Chythra; Guvench, Olgun; MacKerell Jr, Alexander D.; Yamaguchi, Takumi and Mallajosyula, Sairam S., "Refinement of the drude polarizable force field for hexose monosaccharides: capturing ring conformational dynamics with enhanced accuracy", Journal of Chemical Theory and Computation, DOI: 10.1021/acs.jctc.4c00656, vol. 20, no. 20, pp. 9161-9177, Oct. 2024.
dc.identifier.issn 1549-9618
dc.identifier.issn 1549-9626
dc.identifier.uri https://doi.org/10.1021/acs.jctc.4c00656
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/10656
dc.description.abstract We present a revised version of the Drude polarizable carbohydrate force field (FF), focusing on refining the ring and exocyclic torsional parameters for hexopyranose monosaccharides. This refinement addresses the previously observed discrepancies between calculated and experimental NMR 3J coupling values, particularly in describing ring dynamics and exocyclic rotamer populations within major hexose monosaccharides and their anomers. Specifically, α-MAN, β-MAN, α-GLC, β-GLC, α-GAL, β-GAL, α-ALT, β-ALT, α-IDO, and β-IDO were targeted for optimization. The optimization process involved potential energy scans (PES) of the ring and exocyclic dihedral angles computed using quantum mechanical (QM) methods. The target data for the reoptimization included PES of the inner ring dihedrals (C1–C2–C3–C4, C2–C3–C4–C5, C5–O5–C1–C2, C4–C5–O5–C1, O5–C1–C2–C3, C3–C4–C5–O5) and the exocyclic torsions, other than the pseudo ring dihedrals (O1–C1–O5–C5, O2–C2–C1–O5, and O4–C4–C5–O5) and hydroxyl torsions used in the previous parametrization efforts. These parameters, in conjunction with previously developed Drude parameters for hexopyranose monosaccharides, were validated against experimental observations, including NMR data and conformational energetics, in aqueous environments. The resulting polarizable model is shown to be in good agreement with a range of QM data, experimental NMR data, and conformational energetics of monosaccharides in aqueous solutions. This offers a significant improvement of the Drude carbohydrate force field, wherein the refinement enhances the accuracy of accessing the conformational dynamics of carbohydrates in biomolecular simulations.
dc.description.statementofresponsibility by Chythra J. N., Olgun Guvench, Alexander D. MacKerell Jr, Takumi Yamaguchi and Sairam S. Mallajosyula
dc.format.extent vol. 20, no. 20, pp. 9161-9177
dc.language.iso en_US
dc.publisher American Chemical Society
dc.title Refinement of the drude polarizable force field for hexose monosaccharides: capturing ring conformational dynamics with enhanced accuracy
dc.type Article
dc.relation.journal Journal of Chemical Theory and Computation


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