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Caspase activation in MCF7 cells responding to etoposide treatment
C W Benjamin1, R R Hiebsch, D A Jones
1Department of Cardiovascular Pharmacology, Pharmacia and Upjohn Company, Kalamazoo, Michigan 49001, USA. cwbenjam@am.pnu.com
Abstract:
Studies of the biochemical mechanisms evoked by conventional treatments for neoplastic diseases point to apoptosis as a key process for elimination of unwanted cells. Although the pathways through which chemotherapeutics promote cell death remain largely unknown, caspase proteases play a central role in the induction of apoptosis in response to a variety of stimuli including tumor necrosis factor, fas ligand, and growth factor deprivation. In this article, we demonstrate the induction of caspase protease activity in MCF7 human breast carcinoma cells exposed to the topoisomerase inhibitor, etoposide. Caspase protease activity was assessed by incubating cell lysates with the known caspase substrates, acetyl-L-aspartic-L-glutamic-L-valyl-L-aspartic acid 4-methyl-7-aminocoumarin or acetyl-L-tyrosyl-L-valyl-L-aspartic acid 4-methyl-7-aminocoumarin. We observed maximal cleavage of acetyl-L-aspartic-L-glutamic-L-valyl-L-aspartic acid 4-methyl-7-aminocoumarin within 6 hr following etoposide addition, a time that precedes cell death. In contrast, acetyl-L-tyrosyl-L-valyl-L-aspartic acid 4-methyl-7-aminocoumarin was resistant to cleavage activity. This substrate cleavage specificity implies that a caspase-3-like protease is activated in response to DNA damage. Consistent with the lysate protease activity, an intracellular marker of caspase activation, poly-ADP ribose polymerase (PARP), was cleaved in a concentration- and time-dependent manner after etoposide-treatment. PARP cleavage followed caspase activation and reached maximum cleavage between 12 and 16 hr. Incubation of the cells with the peptidic caspase inhibitor z-valine-alanine-asparagine-CH2F prevented caspase activation, inhibited PARP cleavage, and inhibited cell death. Thus, etoposide killing of MCF7 cells requires a caspase-3-like protease.
Insights
Etoposide, a chemotherapy drug, activates caspase-3-like proteases in breast cancer cells, leading to programmed cell death (apoptosis). Inhibiting these caspases prevents cell death, highlighting their crucial role in etoposide
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Apoptosis is crucial for eliminating cancer cells during chemotherapy.
- Caspase proteases are key mediators of apoptosis induced by various stimuli.
- The precise mechanisms of chemotherapy-induced apoptosis are not fully understood.
Purpose of the Study:
- To investigate the role of caspase protease activity in etoposide-induced apoptosis in MCF7 human breast carcinoma cells.
- To identify the specific type of caspase activated by etoposide treatment.
Main Methods:
- MCF7 cells were treated with etoposide, a topoisomerase inhibitor.
- Caspase activity was measured using specific fluorogenic substrates (Ac-DEVD-AMC and Ac-YVAD-AMC).
- Cleavage of poly-ADP ribose polymerase (PARP), an indicator of caspase activation, was assessed.
- The effect of a caspase inhibitor (z-VAD-FMK) on cell death was evaluated.
Main Results:
- Etoposide treatment induced significant caspase protease activity, evidenced by the cleavage of Ac-DEVD-AMC.
- This activity was specific for a caspase-3-like protease, as Ac-YVAD-AMC was not cleaved.
- PARP cleavage, a downstream event, occurred in a time- and concentration-dependent manner following etoposide exposure.
- Inhibition of caspases with z-VAD-FMK blocked PARP cleavage and etoposide-induced cell death.
Conclusions:
- Etoposide triggers apoptosis in MCF7 cells through the activation of a caspase-3-like protease.
- Caspase activation is a necessary step for etoposide-mediated cell death in this breast cancer model.
- Targeting caspase pathways may represent a therapeutic strategy for enhancing chemotherapy efficacy.