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Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study

[Image: see text] The mechanism of action of molnupiravir, a novel antiviral drug, was analyzed from the point of view of its tautomerism by means of quantum-mechanical calculations. It was established that although the uracil-like tautomer M(u) (3 kcal/mol in the water environment) is the most ther...

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Autores principales: Oziminski, Wojciech Piotr, Bycul, Agata
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10563131/
https://www.ncbi.nlm.nih.gov/pubmed/37755327
http://dx.doi.org/10.1021/acs.joc.3c01580
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author Oziminski, Wojciech Piotr
Bycul, Agata
author_facet Oziminski, Wojciech Piotr
Bycul, Agata
author_sort Oziminski, Wojciech Piotr
collection PubMed
description [Image: see text] The mechanism of action of molnupiravir, a novel antiviral drug, was analyzed from the point of view of its tautomerism by means of quantum-mechanical calculations. It was established that although the uracil-like tautomer M(u) (3 kcal/mol in the water environment) is the most thermodynamically stable, in fact, it is the cytosine-like tautomer M(c) that plays the main role. There are several reasons, as follows: (1) A large part of M(u) exists as a more stable but inactive form M(u)-m that is unable to pair with adenine. (2) The phosphorylated form of M(c) is only 1 kcal/mol less stable than M(u) in the water environment and thus is readily available for building into the RNA strand, where the M(u)/M(c) energy gap increases and the probability of M(c) → M(u) interconversion leading to C → U mutation is high. (3) The guanine-M(c) complex has similar stability to guanine-cytosine, but the adenine-M(u) complex has lower stability than adenine-uracil. Additionally, the guanine-M(c) complex has a suboptimal distorted geometry that further facilitates the mutations. (4) The activation barrier for proton transfer leading to M(u)-m interconversion into a cytosine-like tautomer is higher than for M(u), which makes the uracil-like form even less available. These facts confirm an intriguing experimental observation that molnupiravir competes mainly with cytosine and not uracil.
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spelling pubmed-105631312023-10-11 Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study Oziminski, Wojciech Piotr Bycul, Agata J Org Chem [Image: see text] The mechanism of action of molnupiravir, a novel antiviral drug, was analyzed from the point of view of its tautomerism by means of quantum-mechanical calculations. It was established that although the uracil-like tautomer M(u) (3 kcal/mol in the water environment) is the most thermodynamically stable, in fact, it is the cytosine-like tautomer M(c) that plays the main role. There are several reasons, as follows: (1) A large part of M(u) exists as a more stable but inactive form M(u)-m that is unable to pair with adenine. (2) The phosphorylated form of M(c) is only 1 kcal/mol less stable than M(u) in the water environment and thus is readily available for building into the RNA strand, where the M(u)/M(c) energy gap increases and the probability of M(c) → M(u) interconversion leading to C → U mutation is high. (3) The guanine-M(c) complex has similar stability to guanine-cytosine, but the adenine-M(u) complex has lower stability than adenine-uracil. Additionally, the guanine-M(c) complex has a suboptimal distorted geometry that further facilitates the mutations. (4) The activation barrier for proton transfer leading to M(u)-m interconversion into a cytosine-like tautomer is higher than for M(u), which makes the uracil-like form even less available. These facts confirm an intriguing experimental observation that molnupiravir competes mainly with cytosine and not uracil. American Chemical Society 2023-09-27 /pmc/articles/PMC10563131/ /pubmed/37755327 http://dx.doi.org/10.1021/acs.joc.3c01580 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Oziminski, Wojciech Piotr
Bycul, Agata
Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study
title Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study
title_full Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study
title_fullStr Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study
title_full_unstemmed Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study
title_short Thermodynamic and Kinetic Characteristics of Molnupiravir Tautomers and Its Complexes with RNA Purine Bases as an Explanation of the Possible Mechanism of Action of This Novel Antiviral Medicine: A Quantum-Chemical Study
title_sort thermodynamic and kinetic characteristics of molnupiravir tautomers and its complexes with rna purine bases as an explanation of the possible mechanism of action of this novel antiviral medicine: a quantum-chemical study
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10563131/
https://www.ncbi.nlm.nih.gov/pubmed/37755327
http://dx.doi.org/10.1021/acs.joc.3c01580
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