Literature DB >> 26351676

Requirement for transient metal ions revealed through computational analysis for DNA polymerase going in reverse.

Lalith Perera1, Bret D Freudenthal2, William A Beard2, David D Shock2, Lee G Pedersen3, Samuel H Wilson2.   

Abstract

DNA polymerases facilitate faithful insertion of nucleotides, a central reaction occurring during DNA replication and repair. DNA synthesis (forward reaction) is "balanced," as dictated by the chemical equilibrium by the reverse reaction of pyrophosphorolysis. Two closely spaced divalent metal ions (catalytic and nucleotide-binding metals) provide the scaffold for these reactions. The catalytic metal lowers the pKa of O3' of the growing primer terminus, and the nucleotide-binding metal facilitates substrate binding. Recent time-lapse crystallographic studies of DNA polymerases have identified an additional metal ion (product metal) associated with pyrophosphate formation, leading to the suggestion of its possible involvement in the reverse reaction. Here, we establish a rationale for a role of the product metal using quantum mechanical/molecular mechanical calculations of the reverse reaction in the confines of the DNA polymerase β active site. Additionally, site-directed mutagenesis identifies essential residues and metal-binding sites necessary for pyrophosphorolysis. The results indicate that the catalytic metal site must be occupied by a magnesium ion for pyrophosphorolysis to occur. Critically, the product metal site is occupied by a magnesium ion early in the pyrophosphorolysis reaction path but must be removed later. The proposed dynamic nature of the active site metal ions is consistent with crystallographic structures. The transition barrier for pyrophosphorolysis was estimated to be significantly higher than that for the forward reaction, consistent with kinetic activity measurements of the respective reactions. These observations provide a framework to understand how ions and active site changes could modulate the internal chemical equilibrium of a reaction that is central to genome stability.

Entities:  

Keywords:  DNA polymerase; DNA repair; QM/MM; pyrophosphorolysis; reaction mechanism

Mesh:

Substances:

Year:  2015        PMID: 26351676      PMCID: PMC4586863          DOI: 10.1073/pnas.1511207112

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  35 in total

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Review 2.  QM/MM studies of enzymes.

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Review 3.  The ONIOM Method and Its Applications.

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Journal:  Chem Rev       Date:  2015-04-08       Impact factor: 60.622

Review 4.  Structural comparison of DNA polymerase architecture suggests a nucleotide gateway to the polymerase active site.

Authors:  Sangwook Wu; William A Beard; Lee G Pedersen; Samuel H Wilson
Journal:  Chem Rev       Date:  2013-12-20       Impact factor: 60.622

5.  Purification and domain-mapping of mammalian DNA polymerase beta.

Authors:  W A Beard; S H Wilson
Journal:  Methods Enzymol       Date:  1995       Impact factor: 1.600

6.  Human mitochondrial RNA polymerase: evaluation of the single-nucleotide-addition cycle on synthetic RNA/DNA scaffolds.

Authors:  Eric D Smidansky; Jamie J Arnold; Shelley L Reynolds; Craig E Cameron
Journal:  Biochemistry       Date:  2011-05-12       Impact factor: 3.162

7.  Magnesium-induced assembly of a complete DNA polymerase catalytic complex.

Authors:  Vinod K Batra; William A Beard; David D Shock; Joseph M Krahn; Lars C Pedersen; Samuel H Wilson
Journal:  Structure       Date:  2006-04       Impact factor: 5.006

8.  Pre-steady-state kinetic analysis of processive DNA replication including complete characterization of an exonuclease-deficient mutant.

Authors:  S S Patel; I Wong; K A Johnson
Journal:  Biochemistry       Date:  1991-01-15       Impact factor: 3.162

9.  Watching DNA polymerase η make a phosphodiester bond.

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Journal:  Nature       Date:  2012-07-11       Impact factor: 49.962

10.  Structure and mechanism of DNA polymerase β.

Authors:  William A Beard; Samuel H Wilson
Journal:  Biochemistry       Date:  2014-04-23       Impact factor: 3.162

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  24 in total

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Journal:  Protein Sci       Date:  2018-12-20       Impact factor: 6.725

2.  Exploring the mechanism of DNA polymerases by analyzing the effect of mutations of active site acidic groups in Polymerase β.

Authors:  Ricardo A Matute; Hanwool Yoon; Arieh Warshel
Journal:  Proteins       Date:  2016-08-24

3.  Simulating the fidelity and the three Mg mechanism of pol η and clarifying the validity of transition state theory in enzyme catalysis.

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Journal:  Proteins       Date:  2017-05-04

Review 4.  DNA polymerase β: Closing the gap between structure and function.

Authors:  William A Beard
Journal:  DNA Repair (Amst)       Date:  2020-09

5.  DNA synthesis from diphosphate substrates by DNA polymerases.

Authors:  Cassandra R Burke; Andrej Lupták
Journal:  Proc Natl Acad Sci U S A       Date:  2018-01-16       Impact factor: 11.205

6.  Extensive free-energy simulations identify water as the base in nucleotide addition by DNA polymerase.

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Journal:  Proc Natl Acad Sci U S A       Date:  2019-11-22       Impact factor: 11.205

7.  Exploring the Role of the Third Active Site Metal Ion in DNA Polymerase η with QM/MM Free Energy Simulations.

Authors:  David R Stevens; Sharon Hammes-Schiffer
Journal:  J Am Chem Soc       Date:  2018-07-09       Impact factor: 15.419

8.  Crystallographic evidence for two-metal-ion catalysis in human pol η.

Authors:  Jimin Wang; Zachary B Smithline
Journal:  Protein Sci       Date:  2018-12-11       Impact factor: 6.725

9.  Structural Basis of Transcription: RNA Polymerase Backtracking and Its Reactivation.

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Review 10.  Base excision repair of oxidative DNA damage: from mechanism to disease.

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Journal:  Front Biosci (Landmark Ed)       Date:  2017-03-01
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