DNA Damage Response Checkpoint Activation Drives KP1019 Dependent Pre-Anaphase Cell Cycle Delay in S. cerevisiae

Lindsey A Bierle1, Kira L Reich2, Braden E Taylor2

  • 1Department of Biology, Rhodes College, Memphis, Tennessee, United States of America.

Plos One
|September 17, 2015
PubMed

Insights

The anticancer drug KP1019 triggers a DNA damage response (DDR) in yeast, causing cell cycle arrest and abnormal nuclear positioning. This response is crucial for the drug

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Cancer Research

Background:

  • Cell cycle regulation is vital for DNA replication, division, and repair.
  • DNA damage, often induced by anticancer drugs, causes cell cycle arrest, allowing DNA repair.
  • The ruthenium complex KP1019 is an anticancer agent that damages DNA and induces cell cycle arrest.

Purpose of the Study:

  • To investigate the cellular response to the anticancer drug KP1019 using a transcriptomic approach in Saccharomyces cerevisiae.
  • To confirm KP1019 induces the DNA damage response (DDR) and elucidate its molecular mechanisms.
  • To establish a causal link between the DDR and KP1019-induced phenotypes.

Main Methods:

  • Transcriptomic analysis to identify gene expression changes upon KP1019 treatment.
  • Cell cycle progression analysis using budded cell count, DNA content, and Pds1 accumulation.
  • Gene deletion studies (RAD9, DYN1) to assess the role of specific genes in KP1019 response.

Main Results:

  • KP1019 induces the DNA damage response (DDR) in yeast, evidenced by HUG1 expression dependent on the Dun1 checkpoint.
  • A significant delay in cell cycle progression (G2/M phase) and inhibition of anaphase were observed.
  • Deletion of RAD9, essential for DDR, abrogated KP1019-induced cell cycle delays, confirming a causal link.
  • Abnormal nuclear positioning, short, misaligned spindles, and dependence on DYN1 were observed, indicating cytoplasmic effects.

Conclusions:

  • KP1019 elicits a robust DNA damage response in yeast, involving both nuclear and cytoplasmic events.
  • The DDR is causally linked to KP1019-induced cell cycle arrest and morphological changes.
  • Yeast serves as a valid model for studying the cellular response to KP1019, revealing dual nuclear and cytoplasmic actions.

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