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Strategies for Tracking Anastasis, A Cell Survival Phenomenon that Reverses Apoptosis
Published on: February 16, 2015
Degradation of DIAP1 by the N-end rule pathway is essential for regulating apoptosis
Mark Ditzel1, Rebecca Wilson, Tencho Tenev
1The Breakthrough Toby Robins Breast Cancer Research Centre, Institute of Cancer Research, Mary-Jean Mitchell Green Building, Chester Beatty Laboratories, Fulham Road, London SW3 6JB, UK.
Abstract:
Some members of the inhibitor of apoptosis (IAP) protein family block apoptosis by binding to and neutralizing active caspases. We recently demonstrated that a physical association between IAP and caspases alone is insufficient to regulate caspases in vivo and that an additional level of control is provided by IAP-mediated ubiquitination of both itself and the associated caspases. Here we show that Drosophila IAP 1 (DIAP1) is degraded by the 'N-end rule' pathway and that this process is indispensable for regulating apoptosis. Caspase-mediated cleavage of DIAP1 at position 20 converts the more stable pro-N-degron of DIAP1 into the highly unstable, Asn-bearing, DIAP1 N-degron of the N-end rule degradation pathway. Thus, DIAP1 represents the first known metazoan substrate of the N-end rule pathway that is targeted for degradation through its amino-terminal Asn residue. We demonstrate that the N-end rule pathway is required for regulation of apoptosis induced by Reaper and Hid expression in the Drosophila melanogaster eye. Our data suggest that DIAP1 instability, mediated through caspase activity and subsequent exposure of the N-end rule pathway, is essential for suppression of apoptosis. We suggest that DIAP1 safeguards cell viability through the coordinated mutual destruction of itself and associated active caspases.
Insights
Inhibitor of apoptosis proteins (IAPs) regulate cell death. Drosophila IAP 1 (DIAP1) degradation via the N-end rule pathway is essential for controlling apoptosis, safeguarding cell viability.
Area of Science:
- Cell biology
- Molecular biology
- Apoptosis regulation
Background:
- Inhibitor of apoptosis (IAP) proteins prevent cell death by inhibiting caspases.
- IAP-mediated ubiquitination is crucial for caspase regulation in vivo.
- Previous work showed physical association alone is insufficient for caspase control.
Purpose of the Study:
- To investigate the role of protein degradation in apoptosis regulation by IAPs.
- To identify the specific degradation pathway targeting Drosophila IAP 1 (DIAP1).
- To elucidate the mechanism by which DIAP1 instability controls apoptosis.
Main Methods:
- Analysis of DIAP1 degradation using the N-end rule pathway.
- Investigating caspase-mediated cleavage of DIAP1.
- Assessing the requirement of the N-end rule pathway in Drosophila melanogaster eye apoptosis.
Main Results:
- Drosophila IAP 1 (DIAP1) is degraded by the N-end rule pathway.
- Caspase cleavage exposes an N-degron, targeting DIAP1 for degradation.
- The N-end rule pathway is essential for apoptosis regulation induced by Reaper and Hid.
Conclusions:
- DIAP1 instability, driven by caspase activity and the N-end rule pathway, is critical for suppressing apoptosis.
- DIAP1 degradation is a key mechanism for balancing cell viability and cell death.
- This study identifies DIAP1 as the first metazoan N-end rule substrate targeted via its N-terminal Asn residue.
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