Excision repair of topoisomerase DNA-protein crosslinks (TOP-DPC)

Yilun Sun1, Sourav Saha1, Wenjie Wang1

  • 1Developmental Therapeutics Branch and Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, MD, United States.

DNA Repair
|March 23, 2020
PubMed

Insights

Topoisomerases resolve DNA tangles but can form toxic DNA-protein crosslinks (TOP-DPC). Cells use diverse repair pathways involving TDPs, endonucleases, and proteasomes to remove TOP-DPC, preventing genome instability and disease.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • Topoisomerases are crucial enzymes that manage DNA topology during essential cellular processes.
  • Dysfunctional topoisomerases and their resulting DNA-protein crosslinks (TOP-DPC) are implicated in cancer and neurodegenerative diseases.
  • Topoisomerase inhibitors are vital anticancer and antibiotic therapeutics.

Purpose of the Study:

  • To review cellular mechanisms for excising topoisomerase DNA-protein crosslinks (TOP-DPC).
  • To elucidate the recruitment strategies for specific TOP-DPC repair pathways.
  • To understand how cells maintain genomic stability and drug resistance.

Main Methods:

  • This review synthesizes current research on DNA repair pathways.
  • It examines the roles of tyrosyl-DNA phosphodiesterases (TDP1, TDP2), endonucleases (Mre11, XPF), and proteasomes.
  • The review discusses the regulation and coordination of these repair mechanisms.

Main Results:

  • Cells employ multiple conserved pathways to remove TOP-DPC, including enzymatic cleavage and proteolytic degradation.
  • Specific repair mechanisms are recruited based on context, ensuring efficient damage resolution.
  • Successful TOP-DPC removal is critical for preventing genomic instability and resistance to topoisomerase-targeting therapies.

Conclusions:

  • The cell possesses sophisticated, multi-pathway systems to repair topoisomerase-mediated DNA damage.
  • Understanding these pathways is key to developing more effective cancer therapies and managing neurodegenerative diseases.
  • Coordinated repair ensures genome integrity and cellular survival despite topoisomerase activity.

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