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JOURNALS // Mendeleev Communications // Archive

Mendeleev Commun., 2024 Volume 34, Issue 1, Pages 1–7 (Mi mendc26)

This article is cited in 3 papers

Focus Article

Modeling of enzyme-catalyzed P–O bond cleavage in the adenosine triphosphate molecule

M. G. Khrenovaabc, T. I. Mulashkinaa, R. A. Stepanyukabc, A. V. Nemukhinac

a Department of Chemistry, M.V. Lomonosov Moscow State University, Moscow, Russian Federation
b Federal Research Centre 'Fundamentals of Biotechnology' of the Russian Academy of Sciences, Moscow, Russian Federation
c N.M. Emanuel Institute of Biochemical Physics, Russian Academy of Sciences, Moscow, Russian Federation

Abstract: Recent achievements in molecular modeling of reaction mechanisms of the enzymatic ATP conversion to ADP or cAMP are discussed. Both of these reactions are initiated by the nucleophilic attack of an oxygen atom, but the P–O bridging bond cleavage occurs via different mechanisms, dissociative and associative. These mechanisms differ in the order of formation and cleavage of P–O bonds. For ATP ases, the dissociative mechanism is assumed, whereas ATP conversion to the cAMP occurs via associative mechanism. We suggest a novel approach based on the molecular dynamics simulations with combined quantum mechanics/molecular mechanics potentials of the enzyme–substrate complexes that can discriminate dissociative and associative reaction pathways by analysis of length distributions of the cleaving and forming P–O bonds.

Keywords: ATP, ATPase, adenylate cyclases, dissociative mechanism, associative mechanism, molecular dynamics, QM/MM.

Language: English

DOI: 10.1016/j.mencom.2024.01.001



© Steklov Math. Inst. of RAS, 2025