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Published on: June 6, 2017
Cell cycle effects and induction of premitotic apoptosis by irofulven in synchronized cancer cells
Jan M Woynarowski1, Barbara A Woynarowska, Alex V Trevino
1Department of Radiation Oncology, University of Texas Health Science Center at San Antonio, IDD Bldg., 14960 Omicron Drive, San Antonio, Texas 78245, USA. jnw1@saci.org
Abstract:
Unlike postmitotic cell death, direct premitotic apoptosis diminishes the risk of clonal selection and allows for the elimination of slowly growing cancer cells. This study characterized the ability to induce premitotic apoptosis by irofulven (hydroxymethylacylfulvene), a novel alkylating drug which targets cellular DNA and proteins. Irofulven effects were examined in HeLa-derived BH2 cancer cells with conditional overexpression of antiapoptotic Bcl-2. Cells were synchronized in either early S or in G(1). Following 12 h exposure to irofulven, cells that were originally in early S accumulated in late S or remained in early S phase (at 0.5 and 2.5 muM drug, respectively). Drug treatment of cells in the G(1) cohort prevented their entry into the S phase. Significant apoptosis was detected based on the appearance of sub-G(1) particles and cells with DNA strand breaks in both G(1) and S cohorts. Apoptotic cells were mostly recruited from the G(1)/S border ("G(1)" cohort) and from the S phase ("early S" cohort). All the cell cycle and apoptotic effects were only marginally affected by Bcl-2 overexpression. Similar results were obtained with irofulven-treated synchronized cultures of leukemic CEM cells. Collectively, these observations indicate that irofulven-treated cells become committed to death early. Neither active DNA replication nor traverse through mitosis are necessary for irofulven-induced cell death. The ability to promote direct premitotic apoptosis is likely to play a role in the consistently potent apoptotic effects of irofulven and its ability to cause tumor regression in vivo.
Insights
The novel drug irofulven induces premitotic apoptosis, eliminating cancer cells before mitosis. This mechanism bypasses clonal selection and is effective even with Bcl-2 overexpression.
Area of Science:
- Cell Biology
- Cancer Research
- Pharmacology
Background:
- Premitotic apoptosis offers advantages over postmitotic cell death for cancer therapy by preventing clonal selection.
- Irofulven (hydroxymethylacylfulvene) is a novel alkylating agent targeting DNA and proteins.
Purpose of the Study:
- To characterize the ability of irofulven to induce premitotic apoptosis.
- To investigate the role of Bcl-2 in irofulven-induced apoptosis.
Main Methods:
- Synchronized HeLa-derived BH2 cancer cells (overexpressing Bcl-2) and leukemic CEM cells were treated with irofulven.
- Cell cycle progression and apoptosis were analyzed using DNA content analysis (sub-G1 peaks) and DNA strand break detection.
Main Results:
- Irofulven treatment induced apoptosis in both G(1) and S phase synchronized cells, primarily from the G(1)/S border and S phase.
- Apoptosis occurred without the need for active DNA replication or progression through mitosis.
- Bcl-2 overexpression had minimal impact on irofulven's apoptotic effects.
Conclusions:
- Irofulven effectively induces premitotic apoptosis, committing cells to death early in the cell cycle.
- This premitotic apoptotic mechanism contributes to irofulven's potent anti-cancer activity and in vivo tumor regression.
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