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Published on: October 21, 2012
Functional identification of Api5 as a suppressor of E2F-dependent apoptosis in vivo
Erick J Morris1, William A Michaud, Jun-Yuan Ji
1Massachusetts General Hospital Cancer Center, Laboratory of Molecular Oncology, Charlestown, Massachusetts, United States of America.
Abstract:
Retinoblastoma protein and E2-promoter binding factor (E2F) family members are important regulators of G1-S phase progression. Deregulated E2F also sensitizes cells to apoptosis, but this aspect of E2F function is poorly understood. Studies of E2F-induced apoptosis have mostly been carried out in tissue culture cells, and the analysis of the factors that are important for this process has been restricted to the testing of a few candidate genes. Using Drosophila as a model system, we have generated tools that allow genetic modifiers of E2F-dependent apoptosis to be identified in vivo and developed assays that allow effects on E2F-induced apoptosis to be studied in cultured cells. Genetic interactions show that dE2F1-dependent apoptosis in vivo involves dArk/Apaf1 apoptosome-dependent activation of both initiator and effector caspases and is sensitive to levels of Drosophila inhibitor of apoptosis-1 (dIAP1). Using these approaches, we report the surprising finding that apoptosis inhibitor-5/antiapoptosis clone-11 (Api5/Aac11) is a critical determinant of dE2F1-induced apoptosis in vivo and in vitro. This functional interaction occurs in multiple tissues, is specific to E2F-induced apoptosis, and is conserved from flies to humans. Interestingly, Api5/Aac11 acts downstream of E2F and suppresses E2F-dependent apoptosis without generally blocking E2F-dependent transcription. Api5/Aac11 expression is often upregulated in tumor cells, particularly in metastatic cells. We find that depletion of Api5 is tumor cell lethal. The strong genetic interaction between E2F and Api5/Aac11 suggests that elevated levels of Api5 may be selected during tumorigenesis to allow cells with deregulated E2F activity to survive under suboptimal conditions. Therefore, inhibition of Api5 function might offer a possible mechanism for antitumor exploitation.
Insights
The study reveals apoptosis inhibitor-5 (Api5) is crucial for E2F-driven cell death in Drosophila and human cells. Inhibiting Api5 could be a new cancer treatment strategy by targeting tumor cells with deregulated E2F.
Area of Science:
- Cell Biology
- Genetics
- Cancer Research
Background:
- Retinoblastoma protein and E2F family members regulate cell cycle progression.
- Deregulated E2F can induce apoptosis, but the underlying mechanisms are not fully understood.
- Previous studies on E2F-induced apoptosis were limited to cell culture and candidate gene analysis.
Purpose of the Study:
- To identify genetic modifiers of E2F-dependent apoptosis in vivo using Drosophila.
- To develop assays for studying E2F-induced apoptosis in cultured cells.
- To investigate the role of apoptosis inhibitor-5 (Api5/Aac11) in E2F-mediated apoptosis.
Main Methods:
- Utilized Drosophila as a model system to identify genetic modifiers of apoptosis.
- Developed in vitro assays to study E2F-induced apoptosis.
- Performed genetic interaction studies and gene expression analysis.
Main Results:
- E2F1-dependent apoptosis in vivo involves the apoptosome pathway and is modulated by dIAP1.
- Apoptosis inhibitor-5 (Api5/Aac11) was identified as a critical determinant of E2F1-induced apoptosis, both in vivo and in vitro.
- Api5/Aac11 suppresses E2F-dependent apoptosis downstream of E2F without affecting E2F-dependent transcription.
- Api5/Aac11 expression is elevated in tumor cells, and its depletion is lethal to tumor cells.
Conclusions:
- Api5/Aac11 plays a conserved, critical role in suppressing E2F-induced apoptosis.
- Elevated Api5 levels may promote tumor cell survival by counteracting deregulated E2F activity.
- Inhibition of Api5 function represents a potential therapeutic strategy for cancer treatment.
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