Literature DB >> 21410212

Interplay of flavin's redox states and protein dynamics: an insight from QM/MM simulations of dihydronicotinamide riboside quinone oxidoreductase 2.

Robyn M Mueller1, Michael A North, Chee Yang, Sanchita Hati, Sudeep Bhattacharyya.   

Abstract

Dihydronicotinamide riboside quinone oxidoreductase 2 is known to catalyze a two-electron reduction of quinone to hydroquinone using its cofactor, flavin adenine dinucleotide. Using quantum mechanical/molecular mechanical simulations, we have computed the reorganization free energies of the electron and proton transfer processes of flavin in the free state as well as when it is bound in the active site of the enzyme. The calculated energetics for electron transfer processes demonstrate that the enzyme active site lowers the reorganization energy for the redox process as compared to the enzyme-free aqueous state. This is most apparent in the two electron reduction step, which eliminates the possibility of flavosemiquinone generation. In addition, essential dynamics study of the simulated motions revealed spectacular changes in the principal components of atomic fluctuations upon reduction of flavin. This alteration of active site dynamics provides an insight into the "ping-pong" kinetics exhibited by the enzyme upon a change in the redox state of the enzyme-bound flavin. A charge perturbation analysis provides further support that the observed change in dynamics is correlated with the change in energetics due to the altered electrostatic interactions between the flavin ring and the active site residues. This study shows that the effect of electrostatic preorganization goes beyond the chemical catalysis as it strongly impacts the postcatalytic intrinsic protein dynamics.

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Year:  2011        PMID: 21410212      PMCID: PMC3070059          DOI: 10.1021/jp1107922

Source DB:  PubMed          Journal:  J Phys Chem B        ISSN: 1520-5207            Impact factor:   2.991


  47 in total

1.  The Protein Data Bank.

Authors:  H M Berman; J Westbrook; Z Feng; G Gilliland; T N Bhat; H Weissig; I N Shindyalov; P E Bourne
Journal:  Nucleic Acids Res       Date:  2000-01-01       Impact factor: 16.971

2.  The effects of pH and semiquinone formation on the oxidation-reduction potentials of flavin mononucleotide. A reappraisal.

Authors:  S G Mayhew
Journal:  Eur J Biochem       Date:  1999-10

3.  Coordinated induction of the c-jun gene with genes encoding quinone oxidoreductases in response to xenobiotics and antioxidants.

Authors:  V Radjendirane; A K Jaiswal
Journal:  Biochem Pharmacol       Date:  1999-08-15       Impact factor: 5.858

4.  Evidence for NQO2-mediated reduction of the carcinogenic estrogen ortho-quinones.

Authors:  Nilesh W Gaikwad; Li Yang; Eleanor G Rogan; Ercole L Cavalieri
Journal:  Free Radic Biol Med       Date:  2008-11-01       Impact factor: 7.376

5.  Evolutionary basis for the coupled-domain motions in Thermus thermophilus leucyl-tRNA synthetase.

Authors:  Kristina Mary Ellen Weimer; Brianne Leigh Shane; Michael Brunetto; Sudeep Bhattacharyya; Sanchita Hati
Journal:  J Biol Chem       Date:  2009-02-02       Impact factor: 5.157

6.  Quinone reductase 2 is a catechol quinone reductase.

Authors:  Yue Fu; Leonid Buryanovskyy; Zhongtao Zhang
Journal:  J Biol Chem       Date:  2008-06-24       Impact factor: 5.157

7.  Modeling zinc in biomolecules with the self consistent charge-density functional tight binding (SCC-DFTB) method: applications to structural and energetic analysis.

Authors:  Marcus Elstner; Qiang Cui; Petra Munih; Efthimios Kaxiras; Thomas Frauenheim; Martin Karplus
Journal:  J Comput Chem       Date:  2003-04-15       Impact factor: 3.376

Review 8.  Natural and synthetic quinones and their reduction by the quinone reductase enzyme NQO1: from synthetic organic chemistry to compounds with anticancer potential.

Authors:  Marie A Colucci; Christopher J Moody; Gavin D Couch
Journal:  Org Biomol Chem       Date:  2007-12-13       Impact factor: 3.876

9.  The three-dimensional structure of NAD(P)H:quinone reductase, a flavoprotein involved in cancer chemoprotection and chemotherapy: mechanism of the two-electron reduction.

Authors:  R Li; M A Bianchet; P Talalay; L M Amzel
Journal:  Proc Natl Acad Sci U S A       Date:  1995-09-12       Impact factor: 11.205

10.  Inactivation of the quinone oxidoreductases NQO1 and NQO2 strongly elevates the incidence and multiplicity of chemically induced skin tumors.

Authors:  Jun Shen; Roberto J Barrios; Anil K Jaiswal
Journal:  Cancer Res       Date:  2010-01-26       Impact factor: 12.701

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  8 in total

1.  Insight into the kinetics and thermodynamics of the hydride transfer reactions between quinones and lumiflavin: a density functional theory study.

Authors:  Clorice R Reinhardt; Tanner C Jaglinski; Ashly M Kastenschmidt; Eun H Song; Adam K Gross; Alyssa J Krause; Jonathan M Gollmar; Kristin J Meise; Zachary S Stenerson; Tyler J Weibel; Andrew Dison; Mackenzie R Finnegan; Daniel S Griesi; Michael D Heltne; Tom G Hughes; Connor D Hunt; Kayla A Jansen; Adam H Xiong; Sanchita Hati; Sudeep Bhattacharyya
Journal:  J Mol Model       Date:  2016-08-04       Impact factor: 1.810

2.  Editing Domain Motions Preorganize the Synthetic Active Site of Prolyl-tRNA Synthetase.

Authors:  Quin H Hu; Murphi T Williams; Irina Shulgina; Carl J Fossum; Katelyn M Weeks; Lauren M Adams; Clorice R Reinhardt; Karin Musier-Forsyth; Sanchita Hati; Sudeep Bhattacharyya
Journal:  ACS Catal       Date:  2020-08-14       Impact factor: 13.084

3.  Role of coupled dynamics in the catalytic activity of prokaryotic-like prolyl-tRNA synthetases.

Authors:  Brianne Sanford; Bach Cao; James M Johnson; Kurt Zimmerman; Alexander M Strom; Robyn M Mueller; Sudeep Bhattacharyya; Karin Musier-Forsyth; Sanchita Hati
Journal:  Biochemistry       Date:  2012-03-01       Impact factor: 3.162

4.  Multiple pathways promote dynamical coupling between catalytic domains in Escherichia coli prolyl-tRNA synthetase.

Authors:  James M Johnson; Brianne L Sanford; Alexander M Strom; Stephanie N Tadayon; Brent P Lehman; Arrianna M Zirbes; Sudeep Bhattacharyya; Karin Musier-Forsyth; Sanchita Hati
Journal:  Biochemistry       Date:  2013-06-17       Impact factor: 3.162

5.  Cyclic Changes in Active Site Polarization and Dynamics Drive the 'Ping-pong' Kinetics in NRH:Quinone Oxidoreductase 2: An Insight from QM/MM Simulations.

Authors:  Clorice R Reinhardt; Quin H Hu; Caitlin G Bresnahan; Sanchita Hati; Sudeep Bhattacharyya
Journal:  ACS Catal       Date:  2018-11-14       Impact factor: 13.084

6.  Strictly conserved lysine of prolyl-tRNA Synthetase editing domain facilitates binding and positioning of misacylated tRNA(Pro.).

Authors:  Thomas G Bartholow; Brianne L Sanford; Bach Cao; Heidi L Schmit; James M Johnson; Jet Meitzner; Sudeep Bhattacharyya; Karin Musier-Forsyth; Sanchita Hati
Journal:  Biochemistry       Date:  2014-02-03       Impact factor: 3.162

7.  Machine Learning for Efficient Prediction of Protein Redox Potential: The Flavoproteins Case.

Authors:  Bruno Giovanni Galuzzi; Antonio Mirarchi; Edoardo Luca Viganò; Luca De Gioia; Chiara Damiani; Federica Arrigoni
Journal:  J Chem Inf Model       Date:  2022-09-20       Impact factor: 6.162

8.  Probing the global and local dynamics of aminoacyl-tRNA synthetases using all-atom and coarse-grained simulations.

Authors:  Alexander M Strom; Samuel C Fehling; Sudeep Bhattacharyya; Sanchita Hati
Journal:  J Mol Model       Date:  2014-05-09       Impact factor: 1.810

  8 in total

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