The Experts below are selected from a list of 8094 Experts worldwide ranked by ideXlab platform
Alexander V Nemukhin - One of the best experts on this subject based on the ideXlab platform.
-
Mechanism of Guanosine Triphosphate Hydrolysis by the Visual Proteins Arl3-RP2: Free Energy Reaction Profiles Computed with Ab Initio Type QM/MM Potentials
'MDPI AG', 2021Co-Authors: Maria G Khrenova, Egor S. Bulavko, Fedor D. Mulashkin, Alexander V NemukhinAbstract:We report the results of calculations of the Gibbs energy profiles of the Guanosine Triphosphate (GTP) hydrolysis by the Arl3-RP2 protein complex using molecular dynamics (MD) simulations with ab initio type QM/MM potentials. The chemical reaction of GTP hydrolysis to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) is catalyzed by GTPases, the enzymes, which are responsible for signal transduction in live cells. A small GTPase Arl3, catalyzing the GTP → GDP reaction in complex with the activating protein RP2, constitute an essential part of the human vision cycle. To simulate the reaction mechanism, a model system is constructed by motifs of the crystal structure of the Arl3-RP2 complexed with a substrate analog. After selection of reaction coordinates, energy profiles for elementary steps along the reaction pathway GTP + H2O → GDP + Pi are computed using the umbrella sampling and umbrella integration procedures. QM/MM MD calculations are carried out, interfacing the molecular dynamics program NAMD and the quantum chemistry program TeraChem. Ab initio type QM(DFT)/MM potentials are computed with atom-centered basis sets 6-31G** and two hybrid functionals (PBE0-D3 and ωB97x-D3) of the density functional theory, describing a large QM subsystem. Results of these simulations of the reaction mechanism are compared to those obtained with QM/MM calculations on the potential energy surface using a similar description of the QM part. We find that both approaches, QM/MM and QM/MM MD, support the mechanism of GTP hydrolysis by GTPases, according to which the catalytic glutamine side chain (Gln71, in this system) actively participates in the reaction. Both approaches distinguish two parts of the reaction: the cleavage of the phosphorus-oxygen bond in GTP coupled with the formation of Pi, and the enzyme regeneration. Newly performed QM/MM MD simulations confirmed the profile predicted in the QM/MM minimum energy calculations, called here the pathway-I, and corrected its relief at the first elementary step from the enzyme–substrate complex. The QM/MM MD simulations also revealed another mechanism at the part of enzyme regeneration leading to pathway-II. Pathway-II is more consistent with the experimental kinetic data of the wild-type complex Arl3-RP2, whereas pathway-I explains the role of the mutation Glu138Gly in RP2 slowing down the hydrolysis rate
-
hydrolysis of Guanosine Triphosphate gtp by the ras gap protein complex reaction mechanism and kinetic scheme
Journal of Physical Chemistry B, 2015Co-Authors: Maria G Khrenova, B L Grigorenko, Anatoly B Kolomeisky, Alexander V NemukhinAbstract:Molecular mechanisms of the hydrolysis of Guanosine Triphosphate (GTP) to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) by the Ras·GAP protein complex are fully investigated by using modern modeling tools. The previously hypothesized stages of the cleavage of the phosphorus–oxygen bond in GTP and the formation of the imide form of catalytic Gln61 from Ras upon creation of Pi are confirmed by using the higher-level quantum-based calculations. The steps of the enzyme regeneration are modeled for the first time, providing a comprehensive description of the catalytic cycle. It is found that for the reaction Ras·GAP·GTP·H2O → Ras·GAP·GDP·Pi, the highest barriers correspond to the process of regeneration of the active site but not to the process of substrate cleavage. The specific shape of the energy profile is responsible for an interesting kinetic mechanism of the GTP hydrolysis. The analysis of the process using the first-passage approach and consideration of kinetic equations suggest that the ove...
-
hydrolysis of Guanosine Triphosphate gtp by the ras gap protein complex reaction mechanism and kinetic scheme
Journal of Physical Chemistry B, 2015Co-Authors: Maria G Khrenova, B L Grigorenko, Anatoly B Kolomeisky, Alexander V NemukhinAbstract:Molecular mechanisms of the hydrolysis of Guanosine Triphosphate (GTP) to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) by the Ras·GAP protein complex are fully investigated by using modern modeling tools. The previously hypothesized stages of the cleavage of the phosphorus-oxygen bond in GTP and the formation of the imide form of catalytic Gln61 from Ras upon creation of Pi are confirmed by using the higher-level quantum-based calculations. The steps of the enzyme regeneration are modeled for the first time, providing a comprehensive description of the catalytic cycle. It is found that for the reaction Ras·GAP·GTP·H2O → Ras·GAP·GDP·Pi, the highest barriers correspond to the process of regeneration of the active site but not to the process of substrate cleavage. The specific shape of the energy profile is responsible for an interesting kinetic mechanism of the GTP hydrolysis. The analysis of the process using the first-passage approach and consideration of kinetic equations suggest that the overall reaction rate is a result of the balance between relatively fast transitions and low probability of states from which these transitions are taking place. Our theoretical predictions are in excellent agreement with available experimental observations on GTP hydrolysis rates.
Cynthia J Burrows - One of the best experts on this subject based on the ideXlab platform.
-
synthesis and characterization of the oxidized dgtp lesions spiroiminodihydantoin 2 deoxynucleoside 5 Triphosphate and guanidinohydantoin 2 deoxynucleoside 5 Triphosphate
Journal of Organic Chemistry, 2006Co-Authors: James G Muller, Cynthia J BurrowsAbstract:Two convenient synthetic routes to the oxidized Guanosine Triphosphate lesions spiroiminodihydantoin-2‘-deoxynucleoside-5‘-Triphosphate (dSpTP) and guanidinohydantoin-2‘-deoxynucleoside-5‘-Triphosphate (dGhTP) are reported. Both two-electron oxidation of 2‘-deoxy-7,8-dihydro-8-oxoGuanosine-5‘-Triphosphate (dOGTP) using SO4•- generated photolytically from K2S2O8 or four-electron oxidation of 2‘-deoxyGuanosine-5‘-Triphosphate (dGTP) from singlet oxygen provide either dSpTP or dGhTP at pH 8.0 or 4.4, respectively. Highly purified Triphosphates are obtained by ion pair reversed-phase HPLC.
B L Grigorenko - One of the best experts on this subject based on the ideXlab platform.
-
hydrolysis of Guanosine Triphosphate gtp by the ras gap protein complex reaction mechanism and kinetic scheme
Journal of Physical Chemistry B, 2015Co-Authors: Maria G Khrenova, B L Grigorenko, Anatoly B Kolomeisky, Alexander V NemukhinAbstract:Molecular mechanisms of the hydrolysis of Guanosine Triphosphate (GTP) to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) by the Ras·GAP protein complex are fully investigated by using modern modeling tools. The previously hypothesized stages of the cleavage of the phosphorus–oxygen bond in GTP and the formation of the imide form of catalytic Gln61 from Ras upon creation of Pi are confirmed by using the higher-level quantum-based calculations. The steps of the enzyme regeneration are modeled for the first time, providing a comprehensive description of the catalytic cycle. It is found that for the reaction Ras·GAP·GTP·H2O → Ras·GAP·GDP·Pi, the highest barriers correspond to the process of regeneration of the active site but not to the process of substrate cleavage. The specific shape of the energy profile is responsible for an interesting kinetic mechanism of the GTP hydrolysis. The analysis of the process using the first-passage approach and consideration of kinetic equations suggest that the ove...
-
hydrolysis of Guanosine Triphosphate gtp by the ras gap protein complex reaction mechanism and kinetic scheme
Journal of Physical Chemistry B, 2015Co-Authors: Maria G Khrenova, B L Grigorenko, Anatoly B Kolomeisky, Alexander V NemukhinAbstract:Molecular mechanisms of the hydrolysis of Guanosine Triphosphate (GTP) to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) by the Ras·GAP protein complex are fully investigated by using modern modeling tools. The previously hypothesized stages of the cleavage of the phosphorus-oxygen bond in GTP and the formation of the imide form of catalytic Gln61 from Ras upon creation of Pi are confirmed by using the higher-level quantum-based calculations. The steps of the enzyme regeneration are modeled for the first time, providing a comprehensive description of the catalytic cycle. It is found that for the reaction Ras·GAP·GTP·H2O → Ras·GAP·GDP·Pi, the highest barriers correspond to the process of regeneration of the active site but not to the process of substrate cleavage. The specific shape of the energy profile is responsible for an interesting kinetic mechanism of the GTP hydrolysis. The analysis of the process using the first-passage approach and consideration of kinetic equations suggest that the overall reaction rate is a result of the balance between relatively fast transitions and low probability of states from which these transitions are taking place. Our theoretical predictions are in excellent agreement with available experimental observations on GTP hydrolysis rates.
Maria G Khrenova - One of the best experts on this subject based on the ideXlab platform.
-
Mechanism of Guanosine Triphosphate Hydrolysis by the Visual Proteins Arl3-RP2: Free Energy Reaction Profiles Computed with Ab Initio Type QM/MM Potentials
'MDPI AG', 2021Co-Authors: Maria G Khrenova, Egor S. Bulavko, Fedor D. Mulashkin, Alexander V NemukhinAbstract:We report the results of calculations of the Gibbs energy profiles of the Guanosine Triphosphate (GTP) hydrolysis by the Arl3-RP2 protein complex using molecular dynamics (MD) simulations with ab initio type QM/MM potentials. The chemical reaction of GTP hydrolysis to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) is catalyzed by GTPases, the enzymes, which are responsible for signal transduction in live cells. A small GTPase Arl3, catalyzing the GTP → GDP reaction in complex with the activating protein RP2, constitute an essential part of the human vision cycle. To simulate the reaction mechanism, a model system is constructed by motifs of the crystal structure of the Arl3-RP2 complexed with a substrate analog. After selection of reaction coordinates, energy profiles for elementary steps along the reaction pathway GTP + H2O → GDP + Pi are computed using the umbrella sampling and umbrella integration procedures. QM/MM MD calculations are carried out, interfacing the molecular dynamics program NAMD and the quantum chemistry program TeraChem. Ab initio type QM(DFT)/MM potentials are computed with atom-centered basis sets 6-31G** and two hybrid functionals (PBE0-D3 and ωB97x-D3) of the density functional theory, describing a large QM subsystem. Results of these simulations of the reaction mechanism are compared to those obtained with QM/MM calculations on the potential energy surface using a similar description of the QM part. We find that both approaches, QM/MM and QM/MM MD, support the mechanism of GTP hydrolysis by GTPases, according to which the catalytic glutamine side chain (Gln71, in this system) actively participates in the reaction. Both approaches distinguish two parts of the reaction: the cleavage of the phosphorus-oxygen bond in GTP coupled with the formation of Pi, and the enzyme regeneration. Newly performed QM/MM MD simulations confirmed the profile predicted in the QM/MM minimum energy calculations, called here the pathway-I, and corrected its relief at the first elementary step from the enzyme–substrate complex. The QM/MM MD simulations also revealed another mechanism at the part of enzyme regeneration leading to pathway-II. Pathway-II is more consistent with the experimental kinetic data of the wild-type complex Arl3-RP2, whereas pathway-I explains the role of the mutation Glu138Gly in RP2 slowing down the hydrolysis rate
-
hydrolysis of Guanosine Triphosphate gtp by the ras gap protein complex reaction mechanism and kinetic scheme
Journal of Physical Chemistry B, 2015Co-Authors: Maria G Khrenova, B L Grigorenko, Anatoly B Kolomeisky, Alexander V NemukhinAbstract:Molecular mechanisms of the hydrolysis of Guanosine Triphosphate (GTP) to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) by the Ras·GAP protein complex are fully investigated by using modern modeling tools. The previously hypothesized stages of the cleavage of the phosphorus–oxygen bond in GTP and the formation of the imide form of catalytic Gln61 from Ras upon creation of Pi are confirmed by using the higher-level quantum-based calculations. The steps of the enzyme regeneration are modeled for the first time, providing a comprehensive description of the catalytic cycle. It is found that for the reaction Ras·GAP·GTP·H2O → Ras·GAP·GDP·Pi, the highest barriers correspond to the process of regeneration of the active site but not to the process of substrate cleavage. The specific shape of the energy profile is responsible for an interesting kinetic mechanism of the GTP hydrolysis. The analysis of the process using the first-passage approach and consideration of kinetic equations suggest that the ove...
-
hydrolysis of Guanosine Triphosphate gtp by the ras gap protein complex reaction mechanism and kinetic scheme
Journal of Physical Chemistry B, 2015Co-Authors: Maria G Khrenova, B L Grigorenko, Anatoly B Kolomeisky, Alexander V NemukhinAbstract:Molecular mechanisms of the hydrolysis of Guanosine Triphosphate (GTP) to Guanosine diphosphate (GDP) and inorganic phosphate (Pi) by the Ras·GAP protein complex are fully investigated by using modern modeling tools. The previously hypothesized stages of the cleavage of the phosphorus-oxygen bond in GTP and the formation of the imide form of catalytic Gln61 from Ras upon creation of Pi are confirmed by using the higher-level quantum-based calculations. The steps of the enzyme regeneration are modeled for the first time, providing a comprehensive description of the catalytic cycle. It is found that for the reaction Ras·GAP·GTP·H2O → Ras·GAP·GDP·Pi, the highest barriers correspond to the process of regeneration of the active site but not to the process of substrate cleavage. The specific shape of the energy profile is responsible for an interesting kinetic mechanism of the GTP hydrolysis. The analysis of the process using the first-passage approach and consideration of kinetic equations suggest that the overall reaction rate is a result of the balance between relatively fast transitions and low probability of states from which these transitions are taking place. Our theoretical predictions are in excellent agreement with available experimental observations on GTP hydrolysis rates.
James G Muller - One of the best experts on this subject based on the ideXlab platform.
-
synthesis and characterization of the oxidized dgtp lesions spiroiminodihydantoin 2 deoxynucleoside 5 Triphosphate and guanidinohydantoin 2 deoxynucleoside 5 Triphosphate
Journal of Organic Chemistry, 2006Co-Authors: James G Muller, Cynthia J BurrowsAbstract:Two convenient synthetic routes to the oxidized Guanosine Triphosphate lesions spiroiminodihydantoin-2‘-deoxynucleoside-5‘-Triphosphate (dSpTP) and guanidinohydantoin-2‘-deoxynucleoside-5‘-Triphosphate (dGhTP) are reported. Both two-electron oxidation of 2‘-deoxy-7,8-dihydro-8-oxoGuanosine-5‘-Triphosphate (dOGTP) using SO4•- generated photolytically from K2S2O8 or four-electron oxidation of 2‘-deoxyGuanosine-5‘-Triphosphate (dGTP) from singlet oxygen provide either dSpTP or dGhTP at pH 8.0 or 4.4, respectively. Highly purified Triphosphates are obtained by ion pair reversed-phase HPLC.