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Apoptotic response of HL-60 human leukemia cells to the antitumor drug TAS-103
J Kluza1, A Lansiaux, N Wattez
1INSERM U-524 and Laboratoire de Pharmacologie Antitumorale du Centre Oscar Lambret, IRCL, Lille, France.
Abstract:
TAS-103 is a DNA intercalating indeno-quinoline derivative that stimulates DNA cleavage by topoisomerases. This synthetic drug has a broad spectrum of antitumor activity against many human solid tumor xenografts and is currently undergoing clinical trials. We investigated the induction of apoptosis in human promyelocytic leukemia cells treated with TAS-103. The treatment of proliferating human leukemia cells for 24 h with various concentrations of the drug induces significant variations in the mitochondrial transmembrane potential (delta(psi)mt) measured by flow cytometry using the fluorochromes 3,3-dihexyloxacarbocyanine iodide, Mitotracker Red, and tetrachloro-tetraethylbenzimidazolcarbocyanine iodide. The collapse of delta(psi)mt is accompanied by a marked decrease of the intracellular pH. Cleavage experiments with the substrates N-acetyl-Asp-Glu-Val-Asp-pNA, poly(ADP-ribose) polymerase, and pro-caspase-3 reveal unambiguously that caspase-3 is a key mediator of the apoptotic pathway induced by TAS-103. Caspase-8 is also cleaved, and the bcl-2 oncoprotein is underexpressed. Drug-induced internucleosomal DNA fragmentation and the externalization of phosphatidylserine residues in the outer leaflet of the plasma membrane were also characterized. The cell cycle perturbations produced by TAS-103 can be connected with the changes in deltapsi(mt). At low concentrations (2-25 nM), the drug induces a marked G2 arrest and concomitantly provokes an increase in the potential of mitochondrial membranes. In contrast, treatment of the HL-60 cells with higher drug concentrations (50 nM to 1 microM) triggers massive apoptosis and a collapse of deltaP(mt) that is a signature for the opening of the mitochondrial permeability transition pores. The discovery of a correlation between the G2 arrest and changes in mitochondrial membrane potential provides an important mechanistic insight into the action of TAS-103.
Insights
TAS-103, a novel anticancer drug, induces apoptosis in leukemia cells by disrupting mitochondrial function and activating caspases. It causes G2 cell cycle arrest at low doses and massive apoptosis at higher doses, revealing its mechanism of action.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- TAS-103 is a synthetic indeno-quinoline derivative with broad-spectrum antitumor activity.
- It functions as a DNA intercalator and stimulates DNA cleavage by topoisomerases.
- TAS-103 is currently in clinical trials for solid tumors.
Purpose of the Study:
- To investigate the induction of apoptosis in human promyelocytic leukemia cells treated with TAS-103.
- To elucidate the role of mitochondrial transmembrane potential (Δψmt) and caspases in TAS-103-induced apoptosis.
- To explore the relationship between cell cycle perturbations and mitochondrial changes caused by TAS-103.
Main Methods:
- Flow cytometry was used to measure mitochondrial transmembrane potential (Δψmt) using specific fluorochromes.
- Cleavage assays were performed on substrates like N-acetyl-Asp-Glu-Val-Asp-pNA, poly(ADP-ribose) polymerase, and pro-caspase-3.
- Internucleosomal DNA fragmentation and phosphatidylserine externalization were characterized to assess apoptosis.
Main Results:
- TAS-103 treatment caused significant variations in Δψmt, a decrease in intracellular pH, and caspase-3 activation.
- Caspase-8 cleavage and underexpression of the bcl-2 oncoprotein were observed.
- Low TAS-103 concentrations induced G2 arrest with increased Δψmt, while higher concentrations triggered apoptosis with Δψmt collapse.
Conclusions:
- Caspase-3 is a key mediator of TAS-103-induced apoptosis.
- TAS-103 exhibits dose-dependent effects on cell cycle progression and mitochondrial function.
- A correlation exists between G2 arrest and changes in mitochondrial membrane potential, providing mechanistic insight into TAS-103's action.