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Published on: May 14, 2016
Influence of cell cycle and oncogene activity upon topoisomerase IIalpha expression and drug toxicity
1Department of Molecular Biology, The Lerner Research Institute, The Cleveland Clinic Foundation, Cleveland, Ohio 44195, USA. Staceyd@CCF.org
Abstract:
The cell cycle, oncogenic signaling, and topoisomerase (topo) IIalpha levels all influence sensitivity to anti-topo II drugs. Because the cell cycle and oncogenic signaling influence each other as well as topo IIalpha levels, it is difficult to assess the importance of any one of these factors independently of the others during drug treatment. Such information, however, is vital to an understanding of the cellular basis of drug toxicity. We, therefore, developed a series of analytical procedures to individually assess the role of each of these factors during treatment with the anti-topo II drug etoposide. All studies were performed with asynchronously proliferating cultures by the use of time-lapse and quantitative fluorescence staining procedures. To our surprise, we found that neither oncogene action nor the cell cycle altered topo IIalpha protein levels in actively cycling cells. Only a minor population of slowly cycling cells within these cultures responded to constitutively active oncogenes by elevating topo IIalpha production. Thus, it was possible to study the effects of the cell cycle and oncogene action on drug-treated cells while topo IIalpha levels remained constant. Toxicity analyses were performed with two consecutive time-lapse observations separated by a brief drug treatment. The cell cycle phase was determined from the first observation, and cell fate was determined from the second. Cells were most sensitive to drug treatment from mid-S phase through G(2) phase, with G(1) phase cells nearly threefold less sensitive. In addition, the presence of an oncogenic src gene or microinjected Ras protein increased drug toxicity by approximately threefold in actively cycling cells and by at least this level in the small population of slowly cycling cells. We conclude that both cell cycle phase and oncogenic signaling influence drug toxicity independently of alterations in topo IIalpha levels.
Insights
Drug toxicity is influenced by cell cycle phase and oncogenic signaling, independent of topoisomerase IIalpha levels. Actively cycling cells show increased sensitivity during S and G2 phases, while oncogenes like src and Ras amplify drug toxicity.
Area of Science:
- Cell Biology
- Molecular Pharmacology
- Cancer Research
Background:
- Drug sensitivity to anti-topoisomerase II (topo II) agents is multifactorial.
- Interactions between cell cycle, oncogenic signaling, and topo IIalpha levels complicate independent assessment of their roles in drug toxicity.
- Understanding these individual contributions is crucial for elucidating the cellular basis of drug toxicity.
Purpose of the Study:
- To develop analytical methods to independently evaluate the impact of cell cycle phase and oncogenic signaling on etoposide sensitivity.
- To determine if changes in topoisomerase IIalpha protein levels mediate the effects of cell cycle and oncogenes on drug toxicity.
Main Methods:
- Utilized time-lapse microscopy and quantitative fluorescence staining on asynchronously proliferating cell cultures.
- Assessed cell cycle phase and cell fate before and after etoposide treatment.
- Investigated the effects of oncogenic src and Ras expression on drug sensitivity and topo IIalpha levels.
Main Results:
- Topoisomerase IIalpha protein levels remained constant in actively cycling cells, irrespective of oncogene activation.
- Cell cycle phase significantly impacted drug sensitivity, with mid-S through G2 phases being most sensitive.
- Oncogenic signaling (src, Ras) independently increased etoposide toxicity by approximately threefold in both actively and slowly cycling cells.
Conclusions:
- Cell cycle phase and oncogenic signaling are critical determinants of anti-topo II drug toxicity.
- These factors influence drug toxicity independently of significant alterations in topoisomerase IIalpha protein levels.
- Findings provide a clearer understanding of the cellular mechanisms underlying etoposide-induced toxicity.
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