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Published on: June 26, 2020
Protein-protein interactions and posttranslational modifications in mammalian base excision repair
1Laboratory of Molecular Gerontology, GRC, National Institute on Aging, IRP, NIH, 5600 Nathan Shock Drive, Baltimore, MD 21224-6825, USA.
Abstract:
Base excision repair (BER) averts the cytotoxic and mutagenic effects of most endogenously produced DNA damage, including lesions that arise spontaneously due to the intrinsic instability of DNA or modifications that are formed from reactions with intracellular chemicals, such as reactive oxygen species and alkylating agents. Defects in the BER process have been associated with cancer susceptibility and neurodegenerative disorders. In its most simplistic form, BER can be fully reconstituted with a minimum of four human proteins and is completed in just five sequential steps: (i) excision of an inappropriate base by a DNA glycosylase (e.g., uracil DNA glycosylase); (ii) incision of the DNA backbone immediately adjacent to the resulting abasic site by apurinic/apyrimidimic endonuclease 1; (iii) removal of the 5'-abasic terminal fragment, and (iv) repair synthesis to fill the gap by DNA polymerase beta; and (v) ligation to seal the remaining nick by DNA ligase 1 or a complex of DNA ligase 3 and X-ray repair cross-complementing 1. However, BER can involve the participation of other proteins as well, such as alternative DNA polymerases or one of several nonessential "auxiliary" factors. In addition, BER operates most efficiently when specific protein-protein coordination occurs. Furthermore, several BER protein activities have been shown to be regulated by posttranslational modification, and some of the physical protein interactions link BER to other DNA transaction pathways. In this review, we summarize the current state of the emerging complexities of mammalian BER, focusing on the growing number of reported protein-protein interactions and posttranslational modifications.
Insights
Base excision repair (BER) protects cells from DNA damage. This review explores the complex protein interactions and modifications that regulate BER, crucial for preventing cancer and neurodegenerative diseases.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Base excision repair (BER) is vital for mitigating endogenous DNA damage.
- BER defects are linked to cancer and neurodegenerative disorders.
- BER involves a core set of proteins but can include auxiliary factors.
Purpose of the Study:
- To review the complexities of mammalian Base Excision Repair (BER).
- To focus on protein-protein interactions and posttranslational modifications in BER.
- To highlight the regulatory mechanisms of BER.
Main Methods:
- Literature review of mammalian BER.
- Analysis of protein-protein interactions in BER.
- Examination of posttranslational modifications in BER.
Main Results:
- BER involves a minimum of four proteins in five sequential steps.
- BER efficiency is enhanced by protein-protein coordination.
- Posttranslational modifications and interactions with other pathways add complexity to BER.
Conclusions:
- Mammalian BER is more complex than previously understood.
- Protein interactions and posttranslational modifications are key regulatory aspects of BER.
- Understanding BER complexity is crucial for addressing associated diseases.
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