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Updated: Apr 3, 2026

Manipulation and Analysis of Cell Cycle-Dependent Processes in Budding Yeast
Published on: September 26, 2025
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.
Abstract:
Careful regulation of the cell cycle is required for proper replication, cell division, and DNA repair. DNA damage--including that induced by many anticancer drugs--results in cell cycle delay or arrest, which can allow time for repair of DNA lesions. Although its molecular mechanism of action remains a matter of debate, the anticancer ruthenium complex KP1019 has been shown to bind DNA in biophysical assays and to damage DNA of colorectal and ovarian cancer cells in vitro. KP1019 has also been shown to induce mutations and induce cell cycle arrest in Saccharomyces cerevisiae, suggesting that budding yeast can serve as an appropriate model for characterizing the cellular response to the drug. Here we use a transcriptomic approach to verify that KP1019 induces the DNA damage response (DDR) and find that KP1019 dependent expression of HUG1 requires the Dun1 checkpoint; both consistent with KP1019 DDR in budding yeast. We observe a robust KP1019 dependent delay in cell cycle progression as measured by increase in large budded cells, 2C DNA content, and accumulation of Pds1 which functions to inhibit anaphase. Importantly, we also find that deletion of RAD9, a gene required for the DDR, blocks drug-dependent changes in cell cycle progression, thereby establishing a causal link between the DDR and phenotypes induced by KP1019. Interestingly, yeast treated with KP1019 not only delay in G2/M, but also exhibit abnormal nuclear position, wherein the nucleus spans the bud neck. This morphology correlates with short, misaligned spindles and is dependent on the dynein heavy chain gene DYN1. We find that KP1019 creates an environment where cells respond to DNA damage through nuclear (transcriptional changes) and cytoplasmic (motor protein activity) events.
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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