Literature DB >> 27182453

Network of remote and local protein dynamics in dihydrofolate reductase catalysis.

Priyanka Singh1, Kevin Francis1, Amnon Kohen1.   

Abstract

Molecular dynamics calculations and bionformatic studies of dihydrofolate reductase (DHFR) have suggested a network of coupled motions across the whole protein that is correlated to the reaction coordinate. Experimental studies demonstrated that distal residues G121, M42 and F125 in E. coli DHFR participate in that network. The missing link in our understanding of DHFR catalysis is the lack of a mechanism by which such remote residues can affect the catalyzed chemistry at the active site. Here, we present a study of the temperature dependence of intrinsic kinetic isotope effects (KIEs) that indicates synergism between a remote residue in that dynamic network, G121, and the active site's residue I14. The intrinsic KIEs for the I14A-G121V double mutant showed steeper temperature dependence (ΔEa(T-H)) than expected from comparison of the wild type and two single mutants. That effect was non-additive, i.e., ΔEa(T-H)G121V +ΔEa(T-H) I14A < ΔEa(T-H) double mutant, which indicates a synergism between the two residues. This finding links the remote residues in the network under investigation to the enzyme's active site, providing a mechanism by which these residues can be coupled to the catalyzed chemistry. This experimental evidence validates calculations proposing that both remote and active site residues constitute a network of coupled promoting motions correlated to the bond activation step (C-H→C hydride transfer in this case). Additionally, the effect of I14A and G121V mutations on single turnover rates was additive rather than synergistic. Although single turnover rate measurements are more readily available and thus more popular than assessing intrinsic kinetic isotope effects, the current finding demonstrates that for these rates, which in DHFR reflect several microscopic rate constants, can fall short of revealing the nature of the C-H bond activation per se.

Entities:  

Keywords:  Dihydrofolate reductase; dynamic network; enzyme dynamics; kinetic isotope effects; tunneling

Year:  2015        PMID: 27182453      PMCID: PMC4863459          DOI: 10.1021/acscatal.5b00331

Source DB:  PubMed          Journal:  ACS Catal            Impact factor:   13.084


  52 in total

1.  Tunneling and coupled motion in the Escherichia coli dihydrofolate reductase catalysis.

Authors:  R Steven Sikorski; Lin Wang; Kelli A Markham; P T Ravi Rajagopalan; Stephen J Benkovic; Amnon Kohen
Journal:  J Am Chem Soc       Date:  2004-04-21       Impact factor: 15.419

Review 2.  Relating protein motion to catalysis.

Authors:  Sharon Hammes-Schiffer; Stephen J Benkovic
Journal:  Annu Rev Biochem       Date:  2006       Impact factor: 23.643

3.  Coordinated effects of distal mutations on environmentally coupled tunneling in dihydrofolate reductase.

Authors:  Lin Wang; Nina M Goodey; Stephen J Benkovic; Amnon Kohen
Journal:  Proc Natl Acad Sci U S A       Date:  2006-10-10       Impact factor: 11.205

4.  The effect of active-site isoleucine to alanine mutation on the DHFR catalyzed hydride-transfer.

Authors:  Vanja Stojković; Laura L Perissinotti; Jeeyeon Lee; Stephen J Benkovic; Amnon Kohen
Journal:  Chem Commun (Camb)       Date:  2010-10-25       Impact factor: 6.222

5.  Catalysis by dihydrofolate reductase and other enzymes arises from electrostatic preorganization, not conformational motions.

Authors:  Andrew J Adamczyk; Jie Cao; Shina C L Kamerlin; Arieh Warshel
Journal:  Proc Natl Acad Sci U S A       Date:  2011-08-10       Impact factor: 11.205

6.  Preservation of protein dynamics in dihydrofolate reductase evolution.

Authors:  Kevin Francis; Vanja Stojkovic; Amnon Kohen
Journal:  J Biol Chem       Date:  2013-10-24       Impact factor: 5.157

Review 7.  Hydrogen tunneling and protein motion in enzyme reactions.

Authors:  Sharon Hammes-Schiffer
Journal:  Acc Chem Res       Date:  2006-02       Impact factor: 22.384

8.  Synthesis and utility of 14C-labeled nicotinamide cofactors.

Authors:  Kelli A Markham; R Steven Sikorski; Amnon Kohen
Journal:  Anal Biochem       Date:  2004-02-01       Impact factor: 3.365

9.  Barrier Crossing in Dihydrofolate Reductasedoes not involve a rate-promoting vibration.

Authors:  Mariangela Dametto; Dimitri Antoniou; Steven D Schwartz
Journal:  Mol Phys       Date:  2012-01-10       Impact factor: 1.962

10.  Extension and limits of the network of coupled motions correlated to hydride transfer in dihydrofolate reductase.

Authors:  Priyanka Singh; Arundhuti Sen; Kevin Francis; Amnon Kohen
Journal:  J Am Chem Soc       Date:  2014-01-31       Impact factor: 15.419

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  16 in total

1.  Evolution Conserves the Network of Coupled Residues in Dihydrofolate Reductase.

Authors:  Jiayue Li; Gabriel Fortunato; Jennifer Lin; Pratul K Agarwal; Amnon Kohen; Priyanka Singh; Christopher M Cheatum
Journal:  Biochemistry       Date:  2019-08-30       Impact factor: 3.162

2.  Examinations of the Chemical Step in Enzyme Catalysis.

Authors:  P Singh; Z Islam; A Kohen
Journal:  Methods Enzymol       Date:  2016-06-28       Impact factor: 1.600

3.  Contribution of buried distal amino acid residues in horse liver alcohol dehydrogenase to structure and catalysis.

Authors:  Karthik K Shanmuganatham; Rachel S Wallace; Ann Ting-I Lee; Bryce V Plapp
Journal:  Protein Sci       Date:  2018-01-25       Impact factor: 6.725

4.  Structure-based analysis of Bacilli and plasmid dihydrofolate reductase evolution.

Authors:  Mona Alotaibi; Ben Delos Reyes; Tin Le; Phuong Luong; Faramarz Valafar; Robert P Metzger; Gary B Fogel; David Hecht
Journal:  J Mol Graph Model       Date:  2016-11-22       Impact factor: 2.518

5.  In Silico Prediction Methods for Site-Saturation Mutagenesis.

Authors:  Ge Qu; Zhoutong Sun
Journal:  Methods Mol Biol       Date:  2022

6.  Hydrostatic Pressure Studies Distinguish Global from Local Protein Motions in C-H Activation by Soybean Lipoxygenase-1.

Authors:  Shenshen Hu; Jérôme Cattin-Ortolá; Jeffrey W Munos; Judith P Klinman
Journal:  Angew Chem Int Ed Engl       Date:  2016-06-27       Impact factor: 15.336

7.  Origins of Enzyme Catalysis: Experimental Findings for C-H Activation, New Models, and Their Relevance to Prevailing Theoretical Constructs.

Authors:  Judith P Klinman; Adam R Offenbacher; Shenshen Hu
Journal:  J Am Chem Soc       Date:  2017-12-15       Impact factor: 15.419

8.  Acceleration of catalysis in dihydrofolate reductase by transient, site-specific photothermal excitation.

Authors:  Rachel Kozlowski; Jing Zhao; R Brian Dyer
Journal:  Proc Natl Acad Sci U S A       Date:  2021-01-26       Impact factor: 12.779

9.  Modulating Enzyme Function via Dynamic Allostery within Biliverdin Reductase B.

Authors:  Jasmina S Redzic; Michael R Duff; Ashley Blue; Todd M Pitts; Pratul Agarwal; Elan Zohar Eisenmesser
Journal:  Front Mol Biosci       Date:  2021-05-20

10.  Catalytic Descriptors to Investigate Catalytic Power in the Reaction of Haloalkane Dehalogenase Enzyme with 1,2-Dichloroethane.

Authors:  Xin Xin; Chen Li; Delu Gao; Dunyou Wang
Journal:  Int J Mol Sci       Date:  2021-05-29       Impact factor: 5.923

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