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Published on: January 22, 2019
Type I and type II reactions in TRAIL-induced apoptosis -- results from dose-response studies
Justine Rudner1, Verena Jendrossek, Kirsten Lauber
1Department of Radiation Oncology, University of Tuebingen, Hoppe-Seyler-Str. 3, Tuebingen D-72076, Germany.
Abstract:
Death receptor-induced apoptosis is paradigmatically mediated via the recruitment of FADD adapter molecule to the ligand/receptor complex and subsequent activation of caspase-8. However, several observations provided evidence that components of the mitochondrial apoptosis pathway are involved in death receptor-mediated apoptosis. In this regard, caspase-8-mediated activation of Bid induces the release of cytochrome c from the mitochondria, which, in turn, triggers the formation of the apoptosome protein complex, resulting in the activation of caspase-9. Whereas Bax or Bak were shown to be required for the proapoptotic effect of Bid, Bcl-2 was described to interfere with its action. Up to now, contradictory results regarding the role of Bcl-2 in TRAIL-induced apoptosis have been published. In order to study the influence of Bcl-2 on TRAIL-induced cell death more detailed, we utilized a tetracycline-regulated Bcl-2 expression system in Jurkat T cells. After having analysed the dose response for TRAIL-induced activation of caspase-8, -9, -3, breakdown of the mitochondrial membrane potential, and changes in the apoptotic morphology in cells expressing different Bcl-2 levels, we conclude that overexpression of Bcl-2 mediates a partial resistance towards lower doses of TRAIL that can be overcome when higher doses of TRAIL are applied. Thus, the requirement of the mitochondrial pathway for death receptor-induced apoptosis in type II cells should be reconsidered, since the protective effect of Bcl-2 is limited to lower TRAIL doses or early observation time points.
Insights
Overexpression of Bcl-2 partially protects against lower TRAIL doses by inhibiting the mitochondrial apoptosis pathway. This protective effect is overcome by higher TRAIL doses, suggesting a reconsidered role for the mitochondrial pathway in type II cells.
Area of Science:
- Cellular and Molecular Biology
- Apoptosis Research
- Cancer Biology
Background:
- Death receptor-induced apoptosis typically involves FADD and caspase-8.
- Mitochondrial pathway components, including Bid, cytochrome c, and caspase-9, are implicated in death receptor signaling.
- Bcl-2's role in TRAIL-induced apoptosis is controversial, with some studies showing interference and others yielding contradictory results.
Purpose of the Study:
- To investigate the influence of Bcl-2 on TRAIL-induced apoptosis.
- To analyze the dose-dependent effects of TRAIL on apoptosis signaling in cells with varying Bcl-2 levels.
- To re-evaluate the necessity of the mitochondrial pathway in type II cells during death receptor-mediated apoptosis.
Main Methods:
- Utilized a tetracycline-regulated Bcl-2 expression system in Jurkat T cells.
- Analyzed dose-response for TRAIL-induced activation of caspase-8, -9, and -3.
- Assessed mitochondrial membrane potential breakdown and apoptotic morphology changes.
Main Results:
- Overexpression of Bcl-2 conferred partial resistance to lower doses of TRAIL.
- Higher TRAIL doses overcame the protective effect of Bcl-2.
- The protective effect of Bcl-2 was limited to lower TRAIL concentrations or early time points.
Conclusions:
- Bcl-2 overexpression provides partial resistance to TRAIL-induced apoptosis at lower doses.
- The requirement of the mitochondrial pathway in type II cells for death receptor-induced apoptosis warrants reconsideration.
- The protective role of Bcl-2 is dose-dependent and time-sensitive in TRAIL-induced apoptosis.
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