Literature DB >> 17636466

Computational study of the phosphoryl transfer catalyzed by a cyclin-dependent kinase.

Marco De Vivo1, Andrea Cavalli, Paolo Carloni, Maurizio Recanatini.   

Abstract

A cyclin-dependent kinase, Cdk2, catalyzes the transfer of the gamma-phosphate from ATP to a threonine or serine residue of its polypeptide substrates. Here, we investigate aspects of the reaction mechanism of Cdk2 by gas-phase density functional calculations, classical molecular dynamics, and Car-Parrinello QM/MM simulations. We focus on the role of the conserved Asp127 and on the nature of the phosphoryl transfer reaction mechanism catalyzed by Cdk2. Our findings suggest that Asp127 is active in its deprotonated form by assisting the formation of the near-attack orientation of the substrate serine or threonine. Therefore, the residue does not act as a general base during the catalysis. The mechanism for the phosphoryl transfer is a single SN2-like concerted step, which shows a phosphorane-like transition state geometry. Although the resulting reaction mechanism is in agreement with a previous density functional study of the same catalytic reaction mechanism (Cavalli et al., Chem. Comm. 2003, 1308-1309), the reaction barrier is considerably lower when QM/MM calculations are performed, as in this study ( approximately 42 kcal mol(-1) QM vs. approximately 24 kcal mol(-1) QM/MM); this indicates that important roles for the catalysis are played by the protein environment and solvent waters. Because of the high amino acid sequence conservation among the whole family of cyclin-dependent kinases (CDKs), these results could be general for the CDK family.

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Year:  2007        PMID: 17636466     DOI: 10.1002/chem.200700044

Source DB:  PubMed          Journal:  Chemistry        ISSN: 0947-6539            Impact factor:   5.236


  13 in total

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Review 5.  Why nature really chose phosphate.

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8.  Regulatory phosphorylation of cyclin-dependent kinase 2: insights from molecular dynamics simulations.

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9.  How mitogen-activated protein kinases recognize and phosphorylate their targets: A QM/MM study.

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10.  Kinase Activation by Small Conformational Changes.

Authors:  Elias D Lopez; Osvaldo Burastero; Juan P Arcon; Lucas A Defelipe; Natalie G Ahn; Marcelo A Marti; Adrian G Turjanski
Journal:  J Chem Inf Model       Date:  2019-11-27       Impact factor: 4.956

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