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Fidelity of phi 29 DNA polymerase. Comparison between protein-primed initiation and DNA polymerization
J A Esteban1, M Salas, L Blanco
1Centro de Biología Molecular (CSIC-UAM), Universidad Autónoma, Madrid, Spain.
Abstract:
Phi 29 DNA polymerase is able to catalyze two different synthetic reactions: protein-primed initiation and DNA polymerization. We have studied the fidelity of phi 29 DNA polymerase when carrying out these two reactions. Global fidelity was dissected into three steps: insertion discrimination, mismatch elongation, and proofreading. The insertion discrimination of phi 29 DNA polymerase in DNA polymerization ranged from 10(4) to 10(6). The efficiency of mismatch elongation was 10(5)-10(-6)-fold lower than that of a properly paired primer terminus. These factors indicate that DNA polymerization catalyzed by phi 29 DNA polymerase is a highly accurate process. Conversely, the insertion fidelity of protein-primed initiation was quite low, the insertion discrimination factor being about 10(2). Mismatch elongation discrimination was also rather low: mismatched terminal protein (TP).dNMP complexes were elongated from 2- to 6-fold more slowly than the correct TP.dNMP complex. Even more, the 3'-->5' exonuclease activity of phi 29 DNA polymerase was unable to act on the TP.dNMP initiation complex, precluding the possibility that a wrong dNMP covalently linked to TP could be excised and corrected. Therefore, protein-primed initiation can be predicted as a quite inaccurate reaction. The problem of maintaining the sequence at the DNA ends is discussed in the context of a recently described model for protein-primed initiation.
Insights
Phi 29 DNA polymerase exhibits high accuracy in DNA polymerization but low fidelity during protein-primed initiation. This suggests potential sequence errors at DNA ends during initiation.
Area of Science:
- Molecular Biology
- Enzymology
- Genetics
Background:
- Phi 29 DNA polymerase performs both DNA polymerization and protein-primed initiation.
- Understanding the fidelity of these reactions is crucial for DNA replication and repair mechanisms.
Purpose of the Study:
- To investigate and compare the fidelity of phi 29 DNA polymerase during DNA polymerization and protein-primed initiation.
- To dissect the fidelity into insertion discrimination, mismatch elongation, and proofreading steps.
Main Methods:
- Assessing insertion discrimination factors for both reaction types.
- Evaluating mismatch elongation efficiency.
- Investigating the proofreading (3'-->5' exonuclease) activity on initiation complexes.
Main Results:
- DNA polymerization by phi 29 DNA polymerase showed high insertion discrimination (10^4-10^6) and low mismatch elongation.
- Protein-primed initiation exhibited low insertion discrimination (~10^2) and poor mismatch elongation.
- The 3'-->5' exonuclease activity could not correct errors in the protein-primed initiation complex.
Conclusions:
- Phi 29 DNA polymerase is highly accurate in DNA polymerization but inaccurate in protein-primed initiation.
- Protein-primed initiation may lead to sequence errors at DNA ends, impacting genome stability.
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