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  ATP-magnesium coordination: Protein structure-based force field evaluation and corrections

Buelens, F. P., Leonov, H., de Groot, B. L., & Grubmüller, H. (2021). ATP-magnesium coordination: Protein structure-based force field evaluation and corrections. Journal of Chemical Theory and Computation, 17(3), 1922-1930. doi:10.1021/acs.jctc.0c01205.

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アイテムのパーマリンク: https://hdl.handle.net/21.11116/0000-0008-5119-1 版のパーマリンク: https://hdl.handle.net/21.11116/0000-0008-511D-D
資料種別: 学術論文

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3311303.pdf (出版社版), 6MB
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https://hdl.handle.net/21.11116/0000-0008-511C-E
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3311303.pdf
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 作成者:
Buelens, F. P.1, 著者           
Leonov, H.1, 著者           
de Groot, B. L.2, 著者           
Grubmüller, H.1, 著者           
所属:
1Department of Theoretical and Computational Biophysics, MPI for biophysical chemistry, Max Planck Society, ou_578631              
2Research Group of Computational Biomolecular Dynamics, MPI for biophysical chemistry, Max Planck Society, ou_578573              

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キーワード: Free energy, Protein structure, Molecular mechanics, Cluster chemistry, Computer simulations
 要旨: In the numerous molecular recognition and catalytic processes across biochemistry involving adenosine triphosphate (ATP), the common bioactive form is its magnesium chelate, ATP·Mg2+. In aqueous solution, two chelation geometries predominate, distinguished by bidentate and tridentate Mg2+–phosphate coordination. These are approximately isoenergetic but separated by a high energy barrier. Force field-based atomistic simulation studies of this complex require an accurate representation of its structure and energetics. Here we focused on the energetics of ATP·Mg2+ coordination. Applying an enhanced sampling scheme to circumvent prohibitively slow sampling of transitions between coordination modes, we observed striking contradictions between Amber and CHARMM force field descriptions, most prominently in opposing predictions of the favored coordination mode. Through further configurational free energy calculations, conducted against a diverse set of ATP·Mg2+–protein complex structures to supplement otherwise limited experimental data, we quantified systematic biases for each force field. The force field calculations were strongly predictive of experimentally observed coordination modes, enabling additive corrections to the coordination free energy that deliver close agreement with experiment. We reassessed the applicability of the thus corrected force field descriptions of ATP·Mg2+ for biomolecular simulation and observed that, while the CHARMM parameters display an erroneous preference for overextended triphosphate configurations that will affect many common biomolecular simulation applications involving ATP, the force field energy landscapes broadly agree with experimental measurements of solution geometry and the distribution of ATP·Mg2+ structures found in the Protein Data Bank. Our force field evaluation and correction approach, based on maximizing consistency with the large and heterogeneous collection of structural information encoded in the PDB, should be broadly applicable to many other systems.

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言語: eng - English
 日付: 2021-02-222021-03-09
 出版の状態: 出版
 ページ: -
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 目次: -
 査読: 査読あり
 識別子(DOI, ISBNなど): DOI: 10.1021/acs.jctc.0c01205
 学位: -

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出版物 1

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出版物名: Journal of Chemical Theory and Computation
種別: 学術雑誌
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出版社, 出版地: -
ページ: - 巻号: 17 (3) 通巻号: - 開始・終了ページ: 1922 - 1930 識別子(ISBN, ISSN, DOIなど): -