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Published on: December 21, 2010
DNA damage-induced ubiquitylation of RFC2 subunit of replication factor C complex
Junya Tomida1, Yuji Masuda, Hidekazu Hiroaki
1Radiation Biology Center, and Institute for Virus Research, Kyoto University, Kyoto 606-8501, Japan.
Abstract:
Many proteins involved in DNA replication and repair undergo post-translational modifications such as phosphorylation and ubiquitylation. Proliferating cell nuclear antigen (PCNA; a homotrimeric protein that encircles double-stranded DNA to function as a sliding clamp for DNA polymerases) is monoubiquitylated by the RAD6-RAD18 complex and further polyubiquitylated by the RAD5-MMS2-UBC13 complex in response to various DNA-damaging agents. PCNA mono- and polyubiquitylation activate an error-prone translesion synthesis pathway and an error-free pathway of damage avoidance, respectively. Here we show that replication factor C (RFC; a heteropentameric protein complex that loads PCNA onto DNA) was also ubiquitylated in a RAD18-dependent manner in cells treated with alkylating agents or H(2)O(2). A mutant form of RFC2 with a D228A substitution (corresponding to a yeast Rfc4 mutation that reduces an interaction with replication protein A (RPA), a single-stranded DNA-binding protein) was heavily ubiquitylated in cells even in the absence of DNA damage. Furthermore RFC2 was ubiquitylated by the RAD6-RAD18 complex in vitro, and its modification was inhibited in the presence of RPA. The inhibitory effect of RPA on RFC2 ubiquitylation was relatively specific because RAD6-RAD18-mediated ubiquitylation of PCNA was RPA-insensitive. Our findings suggest that RPA plays a regulatory role in DNA damage responses via repression of RFC2 ubiquitylation in human cells.
Insights
Replication Factor C (RFC) ubiquitylation is regulated by Replication Protein A (RPA) in human cells. RPA inhibits RFC2 ubiquitylation, suggesting a role in DNA damage response pathways.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Post-translational modifications like ubiquitylation are crucial for DNA replication and repair proteins.
- Proliferating Cell Nuclear Antigen (PCNA) ubiquitylation by RAD6-RAD18 and RAD5-MMS2-UBC13 complexes regulates DNA damage response pathways.
Purpose of the Study:
- To investigate the ubiquitylation of Replication Factor C (RFC) in response to DNA damage.
- To elucidate the role of Replication Protein A (RPA) in the regulation of RFC ubiquitylation.
Main Methods:
- Cellular treatments with alkylating agents and H2O2.
- Analysis of RFC2 ubiquitylation in wild-type and mutant cells.
- In vitro ubiquitylation assays using RAD6-RAD18 complex.
- Investigating the effect of RPA on RFC2 and PCNA ubiquitylation.
Main Results:
- RFC was ubiquitylated in a RAD18-dependent manner upon DNA damage.
- A specific RFC2 mutant showed increased ubiquitylation even without DNA damage.
- RAD6-RAD18 complex ubiquitylated RFC2 in vitro.
- RPA inhibited RFC2 ubiquitylation, but not PCNA ubiquitylation.
Conclusions:
- RFC ubiquitylation is a RAD18-dependent process involved in DNA damage responses.
- RPA negatively regulates RFC2 ubiquitylation.
- RPA's inhibitory effect on RFC2 ubiquitylation suggests a regulatory role in human DNA damage response pathways.
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