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Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
XPG in the Nucleotide Excision Repair and Beyond: a study on the different functional aspects of XPG and its
Riasha Pal1, Nilanjan Paul1, Deep Bhattacharya1
1Department of Biotechnology, SRM Institute of Science and Technology, 603203, Kattankulathur, Tamil Nadu, India.
Abstract:
Several proteins are involved in DNA repair mechanisms attempting to repair damages to the DNA continuously. One such protein is Xeroderma Pigmentosum Complementation Group G (XPG), a significant component in the Nucleotide Excision Repair (NER) pathway. XPG is accountable for making the 3' incision in the NER, while XPF-ERCC4 joins ERCC1 to form the XPF-ERCC1 complex. This complex makes a 5' incision to eliminate bulky DNA lesions. XPG is also known to function as a cofactor in the Base Excision Repair (BER) pathway by increasing hNth1 activity, apart from its crucial involvement in the NER. Reports suggest that XPG also plays a non-catalytic role in the Homologous Recombination Repair (HRR) pathway by forming higher-order complexes with BRCA1, BRCA2, Rad51, and PALB2, further influencing the activity of these molecules. Studies show that, apart from its vital role in repairing DNA damages, XPG is also responsible for R-loop formation, which facilitates exhibiting phenotypes of Werner Syndrome. Though XPG has a role in several DNA repair pathways and molecular mechanisms, it is primarily a NER protein. Unrepaired and prolonged DNA damage leads to genomic instability and facilitates neurological disorders, aging, pigmentation, and cancer susceptibility. This review explores the vital role of XPG in different DNA repair mechanisms which are continuously involved in repairing these damaged sites and its failure leading to XP-G, XP-G/CS complex phenotypes, and cancer progression.
Insights
Xeroderma Pigmentosum Complementation Group G (XPG) protein is vital for DNA repair, particularly Nucleotide Excision Repair. Its dysfunction contributes to genomic instability, aging, and cancer susceptibility.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA repair mechanisms are essential for maintaining genomic integrity.
- Xeroderma Pigmentosum Complementation Group G (XPG) is a key protein in DNA repair pathways.
- Defects in DNA repair are linked to various diseases, including cancer and aging.
Purpose of the Study:
- To review the multifaceted roles of XPG in DNA repair pathways.
- To explore the consequences of XPG dysfunction in human health.
- To highlight XPG's involvement beyond Nucleotide Excision Repair.
Main Methods:
- Literature review of XPG's function in DNA repair.
- Analysis of XPG's involvement in Nucleotide Excision Repair (NER), Base Excision Repair (BER), and Homologous Recombination Repair (HRR).
- Examination of XPG's role in R-loop formation and associated phenotypes.
Main Results:
- XPG is crucial for the 3' incision in NER and acts as a cofactor in BER.
- XPG participates non-catalytically in HRR, interacting with proteins like BRCA1 and BRCA2.
- XPG influences R-loop formation, potentially contributing to Werner Syndrome phenotypes.
Conclusions:
- XPG is a versatile protein with critical roles in multiple DNA repair pathways.
- XPG dysfunction leads to genomic instability, XP-G/CS phenotypes, and increased cancer risk.
- Understanding XPG's functions is vital for addressing DNA repair-related disorders.
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