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Updated: May 29, 2026

In Vivo Biosensor Tracks Non-apoptotic Caspase Activity in Drosophila
Published on: November 27, 2016
Cap-independent translation promotes C. elegans germ cell apoptosis through Apaf-1/CED-4 in a caspase-dependent
Vince Contreras1, Andrew J Friday, J Kaitlin Morrison
1Department of Biochemistry and Molecular Biology, Brody School of Medicine at East Carolina University, Greenville, North Carolina, United States of America.
Abstract:
Apoptosis is a natural process during animal development for the programmed removal of superfluous cells. During apoptosis general protein synthesis is reduced, but the synthesis of cell death proteins is enhanced. Selective translation has been attributed to modification of the protein synthesis machinery to disrupt cap-dependent mRNA translation and induce a cap-independent mechanism. We have previously shown that disruption of the balance between cap-dependent and cap-independent C. elegans eIF4G isoforms (IFG-1 p170 and p130) by RNA interference promotes apoptosis in developing oocytes. Germ cell apoptosis was accompanied by the appearance of the Apaf-1 homolog, CED-4. Here we show that IFG-1 p170 is a native substrate of the worm executioner caspase, CED-3, just as mammalian eIF4GI is cleaved by caspase-3. Loss of Bcl-2 function (ced-9ts) in worms induced p170 cleavage in vivo, coincident with extensive germ cell apoptosis. Truncation of IFG-1 occurred at a single site that separates the cap-binding and ribosome-associated domains. Site-directed mutagenesis indicated that CED-3 processes IFG-1 at a non-canonical motif, TTTD(456). Coincidentally, the recognition site was located 65 amino acids downstream of the newly mapped IFG-1 p130 start site suggesting that both forms support cap-independent initiation. Genetic evidence confirmed that apoptosis induced by loss of ifg-1 p170 mRNA was caspase (ced-3) and apoptosome (ced-4/Apaf-1) dependent. These findings support a new paradigm in which modal changes in protein synthesis act as a physiological signal to initiate cell death, rather than occur merely as downstream consequences of the apoptotic event.
Insights
Changes in protein synthesis signal cell death initiation. The C. elegans eIF4G isoform IFG-1 p170 is cleaved by caspase CED-3, triggering apoptosis and supporting a new model of programmed cell death.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Apoptosis is a crucial programmed cell death process in animal development.
- Selective protein synthesis, favoring cell death proteins, occurs during apoptosis.
- This selective translation involves shifts from cap-dependent to cap-independent mRNA translation.
Purpose of the Study:
- To investigate the role of C. elegans eIF4G isoforms (IFG-1 p170 and p130) in apoptosis.
- To determine if IFG-1 p170 is a substrate for the executioner caspase CED-3.
- To elucidate the mechanism by which altered protein synthesis initiates apoptosis.
Main Methods:
- RNA interference (RNAi) to disrupt eIF4G isoforms.
- Analysis of apoptosis in C. elegans oocytes.
- In vivo cleavage assays and site-directed mutagenesis to identify caspase cleavage sites.
- Genetic analysis using caspase (ced-3) and apoptosome (ced-4) mutants.
Main Results:
- Disruption of eIF4G isoform balance promotes oocyte apoptosis.
- IFG-1 p170 is a direct substrate of the worm executioner caspase CED-3.
- Cleavage of IFG-1 p170 occurs at a non-canonical site (TTTD456) and is induced by loss of Bcl-2 function.
- Apoptosis induced by loss of IFG-1 p170 is dependent on CED-3 and CED-4.
Conclusions:
- Modal changes in protein synthesis can act as a physiological signal to initiate apoptosis.
- Cleavage of eIF4G by caspases is a key event linking protein synthesis regulation to programmed cell death.
- This study proposes a new paradigm where protein synthesis shifts actively trigger cell death, not just as a consequence.
Related Concept Videos
Caspases
The Intrinsic Apoptotic Pathway
Anaphase Promoting Complex
The Extrinsic Apoptotic Pathway
Cellular Injury V: Apoptosis and Autophagy

