Agnieszka Krzemińska1, Vicent Moliner2, Katarzyna Świderek1,2. 1. Institute of Applied Radiation Chemistry, Faculty of Chemistry, Lodz University of Technology , Zeromskiego 116, 90-924 Lodz, Poland. 2. Departament de Química Física i Analítica, Universitat Jaume I , 12071 Castelló, Spain.
Abstract
HIV-1 Protease (HIV-1 PR) is one of the three enzymes essential for the replication process of HIV-1 virus, which explains why it has been the main target for design of drugs against acquired immunodeficiency syndrome (AIDS). This work is focused on exploring the proteolysis reaction catalyzed by HIV-1 PR, with special attention to the dynamic and electrostatic effects governing its catalytic power. Free energy surfaces for all possible mechanisms have been computed in terms of potentials of mean force (PMFs) within hybrid QM/MM potentials, with the QM subset of atoms described at semiempirical (AM1) and DFT (M06-2X) level. The results suggest that the most favorable reaction mechanism involves formation of a gem-diol intermediate, whose decomposition into the product complex would correspond to the rate-limiting step. The agreement between the activation free energy of this step with experimental data, as well as kinetic isotope effects (KIEs), supports this prediction. The role of the protein dynamic was studied by protein isotope labeling in the framework of the Variational Transition State Theory. The predicted enzyme KIEs, also very close to the values measured experimentally, reveal a measurable but small dynamic effect. Our calculations show how the contribution of dynamic effects to the effective activation free energy appears to be below 1 kcal·mol-1. On the contrary, the electric field created by the protein in the active site of the enzyme emerges as being critical for the electronic reorganization required during the reaction. These electrostatic properties of the active site could be used as a mold for future drug design.
HIV-1 Protease (n class="Species">HIV-1 PR) is one of the three enzymes essential for the replication process of HIV-1 virus, which explains why it has been the main target for design of drugs against acquired immunodeficiency syndrome (AIDS). This work is focused on exploring the proteolysis reaction catalyzed by HIV-1 PR, with special attention to the dynamic and electrostatic effects governing its catalytic power. Free energy surfaces for all possible mechanisms have been computed in terms of potentials of mean force (PMFs) within hybrid QM/MM potentials, with the QM subset of atoms described at semiempirical (AM1) and DFT (M06-2X) level. The results suggest that the most favorable reaction mechanism involves formation of a gem-diol intermediate, whose decomposition into the product complex would correspond to the rate-limiting step. The agreement between the activation free energy of this step with experimental data, as well as kinetic isotope effects (KIEs), supports this prediction. The role of the protein dynamic was studied by protein isotope labeling in the framework of the Variational Transition State Theory. The predicted enzyme KIEs, also very close to the values measured experimentally, reveal a measurable but small dynamic effect. Our calculations show how the contribution of dynamic effects to the effective activation free energy appears to be below 1 kcal·mol-1. On the contrary, the electric field created by the protein in the active site of the enzyme emerges as being critical for the electronic reorganization required during the reaction. These electrostatic properties of the active site could be used as a mold for future drug design.
Authors: D Randal Kipp; Jennifer S Hirschi; Aya Wakata; Harris Goldstein; Vern L Schramm Journal: Proc Natl Acad Sci U S A Date: 2012-04-09 Impact factor: 11.205
Authors: Darón I Freedberg; Rieko Ishima; Jaison Jacob; Yun-Xing Wang; Irina Kustanovich; John M Louis; Dennis A Torchia Journal: Protein Sci Date: 2002-02 Impact factor: 6.725
Authors: Miquel À Galmés; Alexander R Nödling; Kaining He; Louis Y P Luk; Katarzyna Świderek; Vicent Moliner Journal: Chem Sci Date: 2022-03-15 Impact factor: 9.969
Authors: Katarzyna Świderek; Alexander R Nödling; Yu-Hsuan Tsai; Louis Y P Luk; Vicent Moliner Journal: J Phys Chem A Date: 2018-01-02 Impact factor: 2.781
Authors: Robrecht M A Vergauwe; Anoop Thomas; Kalaivanan Nagarajan; Atef Shalabney; Jino George; Thibault Chervy; Marcus Seidel; Eloïse Devaux; Vladimir Torbeev; Thomas W Ebbesen Journal: Angew Chem Int Ed Engl Date: 2019-09-17 Impact factor: 15.336
Authors: Mukesh Kumar; Kalyaneswar Mandal; Matthew P Blakeley; Troy Wymore; Stephen B H Kent; John M Louis; Amit Das; Andrey Kovalevsky Journal: ACS Omega Date: 2020-05-14
Authors: Antonio Angelastro; J Javier Ruiz-Pernía; Iñaki Tuñón; Vicent Moliner; Louis Y P Luk; Rudolf K Allemann Journal: ACS Catal Date: 2019-09-23 Impact factor: 13.084
Authors: Enas M Behiry; J Javier Ruiz-Pernia; Louis Luk; Iñaki Tuñón; Vicent Moliner; Rudolf K Allemann Journal: Angew Chem Int Ed Engl Date: 2018-02-19 Impact factor: 15.336