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Updated: Sep 26, 2025

Preparation of Primary Acute Lymphoblastic Leukemia Cells in Different Cell Cycle Phases by Centrifugal Elutriation
Published on: November 10, 2017
Primary acute lymphoblastic leukemia cells are susceptible to microtubule depolymerization in G1 and M phases through
Magdalena Delgado1, Randall R Rainwater1, Billie Heflin1
1Department of Biochemistry and Molecular Biology, University of Arkansas for Medical Sciences, Little Rock, Arkansas, USA.
Abstract:
Microtubule targeting agents (MTAs) are widely used cancer chemotherapeutics which conventionally exert their effects during mitosis, leading to mitotic or postmitotic death. However, accumulating evidence suggests that MTAs can also generate death signals during interphase, which may represent a key mechanism in the clinical setting. We reported previously that vincristine and other microtubule destabilizers induce death not only in M phase but also in G1 phase in primary acute lymphoblastic leukemia cells. Here, we sought to investigate and compare the pathways responsible for phase-specific cell death. Primary acute lymphoblastic leukemia cells were subjected to centrifugal elutriation, and cell populations enriched in G1 phase (97%) or G2/M phases (80%) were obtained and treated with vincristine. We found death of M phase cells was associated with established features of mitochondrial-mediated apoptosis, including Bax activation, loss of mitochondrial transmembrane potential, caspase-3 activation, and nucleosomal DNA fragmentation. In contrast, death of G1 phase cells was not associated with pronounced Bax or caspase-3 activation but was associated with loss of mitochondrial transmembrane potential, parylation, nuclear translocation of apoptosis-inducing factor and endonuclease G, and supra-nucleosomal DNA fragmentation, which was enhanced by inhibition of autophagy. The results indicate that microtubule depolymerization induces distinct cell death pathways depending on during which phase of the cell cycle microtubule perturbation occurs. The observation that a specific type of drug can enter a single cell type and induce two different modes of death is novel and intriguing. These findings provide a basis for advancing knowledge of clinical mechanisms of MTAs.
Insights
Microtubule targeting agents induce distinct cell death pathways in cancer cells depending on the cell cycle phase. Vincristine triggers apoptosis in M phase and a different death route in G1 phase, impacting chemotherapy mechanisms.
Area of Science:
- Oncology
- Cell Biology
- Pharmacology
Background:
- Microtubule targeting agents (MTAs) are standard chemotherapy drugs.
- MTAs typically induce cancer cell death during mitosis (M phase).
- Emerging evidence suggests MTAs can also cause interphase cell death, a potentially crucial clinical mechanism.
Purpose of the Study:
- To investigate and compare the distinct cell death pathways induced by MTAs in different phases of the cell cycle.
- To elucidate the molecular mechanisms underlying vincristine-induced cell death in G1 versus M phase of acute lymphoblastic leukemia cells.
Main Methods:
- Primary acute lymphoblastic leukemia cells were synchronized into G1 or G2/M phases using centrifugal elutriation.
- Cells were treated with vincristine, a microtubule destabilizer.
- Cell death pathways were analyzed by assessing markers of apoptosis, mitochondrial integrity, and DNA fragmentation.
Main Results:
- M phase cell death involved classical mitochondrial apoptosis: Bax activation, loss of mitochondrial potential, caspase-3 activation, and DNA fragmentation.
- G1 phase cell death showed loss of mitochondrial potential, parylation, nuclear translocation of apoptosis-inducing factor and endonuclease G, and enhanced supra-nucleosomal DNA fragmentation.
- G1 cell death was independent of significant Bax or caspase-3 activation and was exacerbated by autophagy inhibition.
Conclusions:
- Microtubule depolymerization triggers distinct cell death pathways dependent on the cell cycle phase.
- Vincristine induces classical apoptosis in M phase and a non-apoptotic, caspase-independent death pathway in G1 phase.
- These findings reveal novel mechanisms of MTA action, offering insights into their clinical efficacy and potential for drug development.
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