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Mechanistic insights into the phosphoryl transfer reaction in cyclin-dependent kinase 2: a QM/MM study

Rodrigo Recabarren, Edison H. Osorio, View ORCID ProfileJulio Caballero, Iñaki Tuñón, View ORCID ProfileJans Alzate-Morales
doi: https://doi.org/10.1101/605048
Rodrigo Recabarren
1Centro de Bioinformática y Simulación Molecular (CBSM), Facultad de Ingeniería, Universidad de Talca, Talca, Chile
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Edison H. Osorio
2Facultad de Ciencias Naturales y Matemáticas, Universidad de Ibagué, Ibagué, Colombia
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Julio Caballero
1Centro de Bioinformática y Simulación Molecular (CBSM), Facultad de Ingeniería, Universidad de Talca, Talca, Chile
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Iñaki Tuñón
3Departament de Química Física, Universitat de València, Valencia, Spain
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  • For correspondence: jalzate@utalca.cl ignacio.tunon@uv.es
Jans Alzate-Morales
1Centro de Bioinformática y Simulación Molecular (CBSM), Facultad de Ingeniería, Universidad de Talca, Talca, Chile
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  • ORCID record for Jans Alzate-Morales
  • For correspondence: jalzate@utalca.cl ignacio.tunon@uv.es
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Abstract

Cyclin-dependent kinase 2 (CDK2) is an important member of the CDK family exerting its most important function in the regulation of the cell cycle. It catalyzes the transfer of the gamma phosphate group from an ATP (adenosine triphosphate) molecule to a Serine/Threonine residue of a peptide substrate. Due to the importance of this enzyme, and protein kinases in general, a detailed understanding of the reaction mechanism is desired. Thus, in this work the phosphoryl transfer reaction catalyzed by CDK2 was revisited and studied by means of hybrid quantum mechanics/molecular mechanics (QM/MM) calculations. Our results show that the base-assisted mechanism is preferred over the substrate-assisted pathway, in agreement with a previous theoretical study. The base-assisted mechanism resulted to be dissociative, with a potential energy barrier of 14.3 kcal/mol, very close to the experimental derived value. An interesting feature of the mechanism is the proton transfer from Lys129 to the phosphoryl group at the second transition state, event that could be helping in neutralizing the charge on the phosphoryl group upon the absence of a second Mg2+ ion. Furthermore, important insights into the mechanisms in terms of bond order and charge analysis were provided. These descriptors helped to characterize the synchronicity of bond forming and breaking events, and to characterize charge transfer effects. Local interactions at the active site are key to modulate the charge distribution on the phosphoryl group and therefore alter its reactivity.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY 4.0 International license.
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Posted April 10, 2019.
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Mechanistic insights into the phosphoryl transfer reaction in cyclin-dependent kinase 2: a QM/MM study
Rodrigo Recabarren, Edison H. Osorio, Julio Caballero, Iñaki Tuñón, Jans Alzate-Morales
bioRxiv 605048; doi: https://doi.org/10.1101/605048
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Mechanistic insights into the phosphoryl transfer reaction in cyclin-dependent kinase 2: a QM/MM study
Rodrigo Recabarren, Edison H. Osorio, Julio Caballero, Iñaki Tuñón, Jans Alzate-Morales
bioRxiv 605048; doi: https://doi.org/10.1101/605048

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