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The Intriguing Mystery of RPA Phosphorylation in DNA Double-Strand Break Repair
被引:1
|作者:
Fousek-Schuller, Valerie J.
[1
]
Borgstahl, Gloria E. O.
[2
]
机构:
[1] UNMC, Immunology Pathol & Infect Dis, Omaha, NE 68198 USA
[2] UNMC, Eppley Inst Res Canc & Allied Dis, Omaha, NE 68198 USA
来源:
关键词:
Replication Protein A (RPA);
phosphorylation;
homologous recombination;
AlphaFold;
protein-ssDNA interactions;
cell cycle;
DNA metabolism;
double-strand break repair;
REPLICATION PROTEIN-A;
PHYSICAL INTERACTION;
BINDING-PROTEIN;
HOMOLOGOUS RECOMBINATION;
SACCHAROMYCES-CEREVISIAE;
EXCISION-REPAIR;
32-KDA SUBUNIT;
HUMAN RAD52;
IN-VITRO;
INDUCED HYPERPHOSPHORYLATION;
D O I:
10.3390/genes15020167
中图分类号:
Q3 [遗传学];
学科分类号:
071007 ;
090102 ;
摘要:
Human Replication Protein A (RPA) was historically discovered as one of the six components needed to reconstitute simian virus 40 DNA replication from purified components. RPA is now known to be involved in all DNA metabolism pathways that involve single-stranded DNA (ssDNA). Heterotrimeric RPA comprises several domains connected by flexible linkers and is heavily regulated by post-translational modifications (PTMs). The structure of RPA has been challenging to obtain. Various structural methods have been applied, but a complete understanding of RPA's flexible structure, its function, and how it is regulated by PTMs has yet to be obtained. This review will summarize recent literature concerning how RPA is phosphorylated in the cell cycle, the structural analysis of RPA, DNA and protein interactions involving RPA, and how PTMs regulate RPA activity and complex formation in double-strand break repair. There are many holes in our understanding of this research area. We will conclude with perspectives for future research on how RPA PTMs control double-strand break repair in the cell cycle.
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页数:20
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