Structural and mechanistic studies of polymerase η bypass of phenanthriplatin DNA damage

Mark T Gregory1, Ga Young Park2, Timothy C Johnstone2

  • 1Laboratory of Molecular Biology, National Institute of Diabetes and Digestive and Kidney Diseases andThe Johns Hopkins University-National Institutes of Health Graduate Partnership Program, National Institutes of Health, Bethesda, MD 20892; and.

Insights

Phenanthriplatin, a novel platinum compound, inhibits DNA replication and shows distinct activity from cisplatin. It effectively targets cancer cells regardless of Pol η expression, offering potential against cisplatin-resistant tumors.

Area of Science:

  • Oncology
  • Molecular Biology
  • Medicinal Chemistry

Background:

  • Platinum-based chemotherapy is crucial for cancer treatment but faces challenges with drug resistance.
  • Developing new platinum compounds with distinct mechanisms is vital to overcome resistance.
  • Phenanthriplatin (cis-diamminephenanthridinechloroplatinum(II)) is a monofunctional platinum complex with unique activity.

Purpose of the Study:

  • To investigate the effects of phenanthriplatin on DNA replication and compare its mechanism with traditional platinum drugs.
  • To evaluate phenanthriplatin's efficacy in the context of DNA polymerases, particularly Pol η, involved in DNA repair and resistance.
  • To assess phenanthriplatin's potential as a therapeutic agent for cisplatin-resistant cancers.

Main Methods:

  • Assessing the inhibition of DNA polymerases (Pol ν, ζ, κ, Klenow fragment) by phenanthriplatin lesions.
  • Studying the ability of DNA polymerases to bypass phenanthriplatin adducts, focusing on Pol η.
  • Utilizing X-ray crystallography to determine the structural interactions between phenanthriplatin-DNA adducts and Pol η.
  • Comparing the toxicity of phenanthriplatin in cells with varying Pol η expression levels (Pol η+ and Pol η-).

Main Results:

  • Phenanthriplatin lesions effectively inhibit DNA polymerases ν, ζ, κ, and the Klenow fragment.
  • While other polymerases can insert bases opposite phenanthriplatin, only Pol η can efficiently bypass the adduct.
  • Structural analysis reveals distinct interactions between phenanthriplatin-DNA and Pol η compared to cisplatin-DNA adducts.
  • Phenanthriplatin demonstrates high toxicity in both Pol η-expressing and non-expressing cells, unlike cisplatin and oxaliplatin.

Conclusions:

  • Phenanthriplatin's mechanism of inhibiting DNA replication differs from established platinum drugs.
  • Its efficacy is independent of Pol η expression, suggesting it can overcome resistance mechanisms associated with this enzyme.
  • Phenanthriplatin represents a promising candidate for treating cancers resistant to current platinum-based therapies.

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