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Updated: Jun 23, 2026

In Vivo Biosensor Tracks Non-apoptotic Caspase Activity in Drosophila
Published on: November 27, 2016
Can't live without them, can live with them: roles of caspases during vital cellular processes
Yael Feinstein-Rotkopf1, Eli Arama
1Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
Since the pioneering discovery that the genetic cell death program in C. elegans is executed by the cysteine-aspartate protease (caspase) CED3, caspase activation has become nearly synonymous with apoptosis. A critical mass of data accumulated in the past few years, have clearly established that apoptotic caspases can also participate in a variety of non-apoptotic processes. The roles of caspases during these processes and the regulatory mechanisms that prevent unrestrained caspase activity remain to be fully investigated, and may vary in different cellular contexts. Significantly, some of these processes, such as terminal differentiation of vertebrate lens fiber cells and red blood cells, as well as spermatid terminal differentiation and dendritic pruning of sensory neurons in Drosophila, all involve proteolytic degradation of major cellular compartments, and are conceptually, molecularly, biochemically, and morphologically reminiscent of apoptosis. Moreover, some of these model systems bear added values for the study of caspase activation/apoptosis. For example, the Drosophila sperm differentiation is the only system known in invertebrate which absolutely requires the mitochondrial pathway (i.e. Cyt c). The existence of testis-specific genes for many of the components in the electron transport chain, including Cyt c, facilitates the use of the Drosophila sperm system to investigate possible roles of these otherwise essential proteins in caspase activation. Caspases are also involved in a wide range of other vital processes of non-degenerative nature, indicating that these proteases play much more diverse roles than previously assumed. In this essay, we review genetic, cytological, and molecular studies conducted in Drosophila, vertebrate, and cultured cells, which underlie the foundations of this newly emerging field.
Insights
Caspases, initially linked to apoptosis, are now known to execute diverse non-apoptotic cellular processes. Further research is needed to understand their varied roles and regulation in different cell types.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Caspase activation was historically synonymous with apoptosis, identified first in C. elegans.
- Recent findings reveal caspases participate in various non-apoptotic cellular functions.
- Understanding caspase regulation in these diverse roles is an ongoing challenge.
Purpose of the Study:
- To review the expanding roles of caspases beyond apoptosis.
- To highlight key model systems for studying caspase activation in non-apoptotic processes.
- To explore the molecular and genetic underpinnings of these diverse caspase functions.
Main Methods:
- Review of genetic, cytological, and molecular studies.
- Analysis of research from Drosophila, vertebrate systems, and cultured cells.
- Examination of specific non-apoptotic processes involving caspases.
Main Results:
- Apoptotic caspases are involved in non-apoptotic processes like terminal differentiation and neuronal pruning.
- These processes share similarities with apoptosis in terms of cellular degradation.
- Drosophila sperm differentiation offers a unique model for studying caspase activation via the mitochondrial pathway.
Conclusions:
- Caspases possess a broader functional repertoire than previously assumed.
- Further investigation into non-apoptotic caspase roles is crucial.
- Model systems like Drosophila sperm differentiation are valuable for dissecting caspase activation mechanisms.
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Cell death was observed in the early 19th century, but there was no experimental evidence to prove it. In 1842, Carl Vogt first discovered cell death in a metamorphic toad; however, it was not termed ‘cell death.’ Scientists discovered different cell death pathways only in the 20th century...

