Home LiteratureArticle Details
PMID: 15069184 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Orchestration of cooperative events in DNA synthesis and repair mechanism unraveled by transition path sampling of DNA polymerase beta's closing.

Radhakrishnan R, Schlick T

Abstract

Our application of transition path sampling to a complex biomolecular system in explicit solvent, the closing transition of DNA polymerase beta, unravels atomic and energetic details of the conformational change that precedes the chemical reaction of nucleotide incorporation. The computed reaction profile offers detailed mechanistic insights into, as well as kinetic information on, the complex process essential for DNA synthesis and repair. The five identified transition states extend available experimental and modeling data by revealing highly cooperative dynamics and critical roles of key residues (Arg-258, Phe-272, Asp-192, and Tyr-271) in the enzyme's function. The collective cascade of these sequential conformational changes brings the DNA/DNA polymerase beta system to a state nearly competent for the chemical reaction and suggests how subtle residue motions and conformational rate-limiting steps affect reaction efficiency and fidelity; this complex system of checks and balances directs the system to the chemical reaction and likely helps the enzyme discriminate the correct from the incorrect incoming nucleotide. Together with the chemical reaction, these conformational features may be central to the dual nature of polymerases, requiring specificity (for correct nucleotide selection) as well as versatility (to accommodate different templates at every step) to maintain overall fidelity. Besides leading to these biological findings, our developed protocols open the door to other applications of transition path sampling to long-time, large-scale biomolecular reactions.

MeSH Terms
DNA Polymerase beta/chemistry,metabolism DNA Repair DNA Replication Models, Molecular Protein Conformation
Chemicals
DNA Polymerase beta
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Radhakrishnan Ravi
Department of Chemistry and Courant Institute of Mathematical Sciences, 251 Mercer Street, New York University, New York, NY 10012, USA.
Schlick Tamar
References (48)
48 references, click to expand
  1. The nucleotide analog 2-aminopurine as a spectroscopic probe of nucleotide incorporation by the Klenow fragment of Escherichia coli polymerase I and bacteriophage T4 DNA polymerase.
    Biochemistry. 1995 Jul 18;34(28):9185-92 PMID: 7619819
  2. Structural insights into DNA polymerase beta fidelity: hold tight if you want it right.
    Chem Biol. 1998 Jan;5(1):R7-13 PMID: 9479474
  3. Calcium triggers an intramolecular association of the C2 domains in synaptotagmin.
    Proc Natl Acad Sci U S A. 2000 May 23;97(11):5883-8 PMID: 10811903
  4. Y265H mutator mutant of DNA polymerase beta. Proper teometric alignment is critical for fidelity.
    J Biol Chem. 2001 Apr 6;276(14):10824-31 PMID: 11154692
  5. Transition-path sampling of beta-hairpin folding.
    Proc Natl Acad Sci U S A. 2003 Oct 14;100(21):12129-34 PMID: 14523242
  6. Computer simulations of protein folding by targeted molecular dynamics.
    Proteins. 2000 May 15;39(3):252-60 PMID: 10737947
  7. DNA polymerase beta: effects of gapped DNA substrates on dNTP specificity, fidelity, processivity and conformational changes.
    Biochem J. 1998 Apr 1;331 ( Pt 1):79-87 PMID: 9512464
  8. Pre-steady-state kinetic analysis of processive DNA replication including complete characterization of an exonuclease-deficient mutant.
    Biochemistry. 1991 Jan 15;30(2):511-25 PMID: 1846298
  9. The free energy landscape for beta hairpin folding in explicit water.
    Proc Natl Acad Sci U S A. 2001 Dec 18;98(26):14931-6 PMID: 11752441
  10. Kinetic characterization of the polymerase and exonuclease activities of the gene 43 protein of bacteriophage T4.
    Biochemistry. 1992 Nov 17;31(45):10984-94 PMID: 1332748
  11. Drying-induced hydrophobic polymer collapse.
    Proc Natl Acad Sci U S A. 2002 May 14;99(10):6539-43 PMID: 11983853
  12. DNA polymerase beta: analysis of the contributions of tyrosine-271 and asparagine-279 to substrate specificity and fidelity of DNA replication by pre-steady-state kinetics.
    Biochem J. 1997 Apr 1;323 ( Pt 1):103-11 PMID: 9173867
  13. A reexamination of the nucleotide incorporation fidelity of DNA polymerases.
    Biochemistry. 2002 Aug 27;41(34):10571-6 PMID: 12186540
  14. An open and closed case for all polymerases.
    Structure. 1999 Feb 15;7(2):R31-5 PMID: 10368292
  15. Local deformations revealed by dynamics simulations of DNA polymerase Beta with DNA mismatches at the primer terminus.
    J Mol Biol. 2002 Aug 16;321(3):459-78 PMID: 12162959
  16. On the truncation of long-range electrostatic interactions in DNA.
    Biophys J. 2000 Sep;79(3):1537-53 PMID: 10969015
  17. DNA polymerase beta: structure-fidelity relationship from Pre-steady-state kinetic analyses of all possible correct and incorrect base pairs for wild type and R283A mutant.
    Biochemistry. 1997 Feb 4;36(5):1100-7 PMID: 9033400
  18. Crystal structures of open and closed forms of binary and ternary complexes of the large fragment of Thermus aquaticus DNA polymerase I: structural basis for nucleotide incorporation.
    EMBO J. 1998 Dec 15;17(24):7514-25 PMID: 9857206
  19. Selective inhibition of HIV-1 reverse transcriptase by an antiviral inhibitor, (R)-9-(2-Phosphonylmethoxypropyl)adenine.
    J Biol Chem. 1998 Oct 16;273(42):27250-8 PMID: 9765248
  20. A new program for optimizing periodic boundary models of solvated biomolecules (PBCAID).
    J Comput Chem. 2001 Nov 30;22(15):1843-1850 PMID: 12116415
  21. Computer simulation of the chemical catalysis of DNA polymerases: discriminating between alternative nucleotide insertion mechanisms for T7 DNA polymerase.
    J Am Chem Soc. 2003 Jul 9;125(27):8163-77 PMID: 12837086
  22. Reversible peptide folding in solution by molecular dynamics simulation.
    J Mol Biol. 1998 Jul 31;280(5):925-32 PMID: 9671560
  23. Protein and peptide folding explored with molecular simulations.
    Acc Chem Res. 2002 Jun;35(6):447-54 PMID: 12069630
  24. Absolute comparison of simulated and experimental protein-folding dynamics.
    Nature. 2002 Nov 7;420(6911):102-6 PMID: 12422224
  25. Enzyme-DNA interactions required for efficient nucleotide incorporation and discrimination in human DNA polymerase beta.
    J Biol Chem. 1996 May 24;271(21):12141-4 PMID: 8647805
  26. Kinetic mechanism of DNA polymerase I (Klenow).
    Biochemistry. 1987 Dec 15;26(25):8410-7 PMID: 3327522
  27. Pathways to a protein folding intermediate observed in a 1-microsecond simulation in aqueous solution.
    Science. 1998 Oct 23;282(5389):740-4 PMID: 9784131
  28. Beta-hairpin folding simulations in atomistic detail using an implicit solvent model.
    J Mol Biol. 2001 Oct 12;313(1):151-69 PMID: 11601853
  29. A general two-metal-ion mechanism for catalytic RNA.
    Proc Natl Acad Sci U S A. 1993 Jul 15;90(14):6498-502 PMID: 8341661
  30. DNA polymerase beta: multiple conformational changes in the mechanism of catalysis.
    Biochemistry. 1997 Sep 30;36(39):11891-900 PMID: 9305982
  31. Crystal structures of human DNA polymerase beta complexed with gapped and nicked DNA: evidence for an induced fit mechanism.
    Biochemistry. 1997 Sep 16;36(37):11205-15 PMID: 9287163
  32. Nucleation of crystalline phases of water in homogeneous and inhomogeneous environments.
    Phys Rev Lett. 2003 Apr 18;90(15):158301 PMID: 12732077
  33. Structures of ternary complexes of rat DNA polymerase beta, a DNA template-primer, and ddCTP.
    Science. 1994 Jun 24;264(5167):1891-903 PMID: 7516580
  34. Transition path sampling: throwing ropes over rough mountain passes, in the dark.
    Annu Rev Phys Chem. 2002;53:291-318 PMID: 11972010
  35. Processive DNA synthesis observed in a polymerase crystal suggests a mechanism for the prevention of frameshift mutations.
    Proc Natl Acad Sci U S A. 2003 Apr 1;100(7):3895-900 PMID: 12649320
  36. The mechanism of action of T7 DNA polymerase.
    Curr Opin Struct Biol. 1998 Dec;8(6):704-12 PMID: 9914251
  37. Structure-function analysis of the mammalian DNA polymerase beta active site: role of aspartic acid 256, arginine 254, and arginine 258 in nucleotidyl transfer.
    Biochemistry. 1995 Dec 12;34(49):15934-42 PMID: 8519750
  38. Engineering teams up with computer-simulation and visualization tools to probe biomolecular mechanisms.
    Biophys J. 2003 Jul;85(1):1-4 PMID: 12829458
  39. Long timescale simulations.
    Curr Opin Struct Biol. 2000 Apr;10(2):160-4 PMID: 10753819
  40. Dynamic coupling between the SH2 and SH3 domains of c-Src and Hck underlies their inactivation by C-terminal tyrosine phosphorylation.
    Cell. 2001 Apr 6;105(1):115-26 PMID: 11301007
  41. DNA structure and aspartate 276 influence nucleotide binding to human DNA polymerase beta. Implication for the identity of the rate-limiting conformational change.
    J Biol Chem. 2001 Feb 2;276(5):3408-16 PMID: 11024043
  42. Mammalian base excision repair and DNA polymerase beta.
    Mutat Res. 1998 Jun;407(3):203-15 PMID: 9653447
  43. Efficiency of correct nucleotide insertion governs DNA polymerase fidelity.
    J Biol Chem. 2002 Dec 6;277(49):47393-8 PMID: 12370169
  44. DNA polymerase beta: pre-steady-state kinetic analysis and roles of arginine-283 in catalysis and fidelity.
    Biochemistry. 1996 Jun 4;35(22):7041-50 PMID: 8679529
  45. An induced-fit kinetic mechanism for DNA replication fidelity: direct measurement by single-turnover kinetics.
    Biochemistry. 1991 Jan 15;30(2):526-37 PMID: 1846299
  46. Conformational analysis of the sugar ring in nucleosides and nucleotides. A new description using the concept of pseudorotation.
    J Am Chem Soc. 1972 Nov 15;94(23):8205-12 PMID: 5079964
  47. Polymerase beta simulations suggest that Arg258 rotation is a slow step rather than large subdomain motions per se.
    J Mol Biol. 2002 Apr 12;317(5):651-71 PMID: 11955015
  48. Kinetic mechanism of DNA polymerase I (Klenow fragment): identification of a second conformational change and evaluation of the internal equilibrium constant.
    Biochemistry. 1991 May 21;30(20):4835-43 PMID: 1645180
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2004-04-20
Epub
2004-00-06
Pages
5970-5
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC395907
Subset
IM
Grants
NIGMS NIH HHS · R01 GM055164 · United States
NIGMS NIH HHS · R01 GM55164 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]