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Direct Restart of a Replication Fork Stalled by a Head-On RNA Polymerase
Published on: April 29, 2010
Role of protein-protein interactions in the function of replication protein A (RPA): RPA modulates the activity of
1Department of Biochemistry, University of Iowa College of Medicine, 51 Newton Road, Iowa City, Iowa 52242-1109, USA.
Abstract:
Replication Protein A (RPA) from human cells is a stable complex of 70-, 32-, and 14-kDa subunits that is required for multiple processes in DNA metabolism. RPA binds with high affinity to single-stranded DNA and interacts with multiple proteins, including proteins required for the initiation of SV40 DNA replication, DNA polymerase alpha and SV40 large T antigen. We have used a series of mutant derivatives of RPA to map the regions of RPA required for specific protein-protein interactions and have examined the roles of these interactions in DNA replication. T antigen, DNA polymerase alpha and the activation domain of VP16 all have overlapping sites of interaction in the N-terminal half (residues 1-327) of the 70-kDa subunit of RPA. In addition, the interaction site for DNA polymerase alpha is composed of two functionally distinct regions, one (residues 1- approximately 170) which stimulates polymerase activity and a second (residues approximately 170-327) which increases polymerase processivity. In the latter, both the direct protein-protein interaction and ssDNA-binding activities of RPA were needed for RPA to modulate polymerase processivity. We also found that SV40 T antigen inhibited the ability of RPA to increase processivity of DNA polymerase alpha, suggesting that this activity of RPA may be important for elongation but not during the initiation of DNA replication. DNA polymerase alpha, but not T antigen also interacted with the 32- and/or 14-kDa subunits of RPA, but these interactions did not seem to effect polymerase activity.
Insights
Replication Protein A (RPA) interacts with DNA polymerase alpha and SV40 T antigen. RPA
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- Replication Protein A (RPA) is crucial for DNA metabolism in human cells.
- RPA binds single-stranded DNA and interacts with key replication proteins like SV40 T antigen and DNA polymerase alpha.
Purpose of the Study:
- To map interaction regions within RPA using mutant derivatives.
- To investigate the functional roles of RPA-protein interactions in DNA replication.
Main Methods:
- Utilized mutant RPA derivatives to identify protein interaction sites.
- Examined the impact of these interactions on DNA polymerase alpha activity and processivity.
Main Results:
- Overlapping interaction sites for T antigen, DNA polymerase alpha, and VP16 were found in RPA's 70-kDa subunit (residues 1-327).
- DNA polymerase alpha interaction involved two regions, one stimulating activity and another enhancing processivity, requiring RPA's ssDNA-binding.
- SV40 T antigen inhibited RPA's processivity-enhancing role, suggesting its importance in elongation, not initiation.
Conclusions:
- RPA's N-terminal region mediates critical interactions with DNA polymerase alpha and SV40 T antigen.
- RPA modulates DNA polymerase alpha activity and processivity through distinct interaction domains.
- SV40 T antigen's inhibitory effect suggests a regulatory role in DNA replication elongation.
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