Early steps in the DNA base excision/single-strand interruption repair pathway in mammalian cells

Muralidhar L Hegde1, Tapas K Hazra, Sankar Mitra

  • 1Department of Biochemistry & Molecular Biology, University of Texas Medical Branch, Galveston, TX 77555-1079, USA.

Cell Research
|January 2, 2008
PubMed

Insights

Base excision repair (BER) maintains genomic integrity by removing damaged DNA bases. Mammalian BER is complex, involving multiple pathways and protein interactions for repairing oxidized DNA damage.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • Base excision repair (BER) is a crucial, conserved pathway for genomic integrity.
  • It repairs endogenous and exogenous DNA damage, primarily from reactive oxygen species (ROS).
  • The BER pathway involves DNA glycosylase excision, AP-endonuclease (APE) processing, DNA synthesis, and ligation.

Purpose of the Study:

  • To review the early steps of mammalian base excision repair for oxidized DNA damage.
  • To highlight the complexity and distinct subpathways of mammalian BER compared to prokaryotes.
  • To discuss the roles of DNA glycosylases, AP-endonucleases, and other proteins in mammalian BER.

Main Methods:

  • Literature review focusing on mammalian BER mechanisms.
  • Analysis of enzyme substrate ranges and interactions.
  • Comparison of BER pathways across different organisms.

Main Results:

  • Mammalian BER is more complex than in E. coli, with distinct subpathways.
  • DNA glycosylases have broad substrate ranges and can act as backup enzymes.
  • Mammalian cells have a single APE (APE1), unlike lower organisms.
  • Specific subpathways may involve polynucleotide kinase instead of APE1 for certain DNA breaks.
  • Mammalian glycosylases possess unique extensions for protein interactions and targeting.

Conclusions:

  • Mammalian BER involves intricate protein complexes and distinct subpathways for efficient repair of oxidized DNA damage.
  • The complexity arises from overlapping glycosylase functions, specialized repair routes, and protein-protein interactions.
  • Understanding these early steps is vital for comprehending genomic maintenance against oxidative stress.

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