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Updated: Jun 6, 2026

In Vitro Cleavage Assays using Purified Recombinant Drosophila Caspases for Substrate Screening
Published on: October 6, 2022
Drosophila caspases involved in developmentally regulated programmed cell death of peptidergic neurons during early
Gyunghee Lee1, Zixing Wang, Ritika Sehgal
1Department of Biochemistry and Cellular and Molecular Biology, University of Tennessee, Knoxville, Tennessee 37996, USA.
Abstract:
A great number of obsolete larval neurons in the Drosophila central nervous system are eliminated by developmentally programmed cell death (PCD) during early metamorphosis. To elucidate the mechanisms of neuronal PCD occurring during this period, we undertook genetic dissection of seven currently known Drosophila caspases in the PCD of a group of interneurons (vCrz) that produce corazonin (Crz) neuropeptide in the ventral nerve cord. The molecular death program in the vCrz neurons initiates within 1 hour after pupariation, as demonstrated by the cytological signs of cell death and caspase activation. PCD was significantly suppressed in dronc-null mutants, but not in null mutants of either dredd or strica. A double mutation lacking both dronc and strica impaired PCD phenotype more severely than did a dronc mutation alone, but comparably to a triple dredd/strica/dronc mutation, indicating that dronc is a main initiator caspase, while strica plays a minor role that overlaps with dronc's. As for effector caspases, vCrz PCD requires both ice and dcp-1 functions, as they work cooperatively for a timely removal of the vCrz neurons. Interestingly, the activation of the Ice and Dcp-1 is not solely dependent on Dronc and Strica, implying an alternative pathway to activate the effectors. Two remaining effector caspase genes, decay and damm, found no apparent functions in the neuronal PCD, at least during early metamorphosis. Overall, our work revealed that vCrz PCD utilizes dronc, strica, dcp-1, and ice wherein the activation of Ice and Dcp-1 requires a novel pathway in addition to the initiator caspases.
Insights
Programmed cell death (PCD) eliminates obsolete neurons in Drosophila. This study reveals initiator caspase Dronc and effector caspases Ice and Dcp-1 are key, with a novel pathway activating them during neuronal PCD.
Area of Science:
- Developmental Biology
- Neuroscience
- Cell Biology
Background:
- Obsolete larval neurons in the Drosophila central nervous system undergo developmentally programmed cell death (PCD) during early metamorphosis.
- Understanding the molecular mechanisms of neuronal PCD is crucial for comprehending nervous system development and maintenance.
Purpose of the Study:
- To genetically dissect the roles of seven known Drosophila caspases in the PCD of corazonin (Crz) neuropeptide-producing ventral interneurons (vCrz).
- To elucidate the initiator and effector caspase pathways involved in vCrz neuronal elimination.
Main Methods:
- Genetic dissection using null mutants for seven Drosophila caspases (Dronc, Dred, Strica, Ice, Dcp-1, Decay, Damm).
- Cytological analysis of cell death and caspase activation in vCrz neurons after pupariation.
- Assessment of PCD suppression in single, double, and triple caspase mutant combinations.
Main Results:
- Dronc (initiator caspase) plays a primary role in vCrz PCD, with Strica having a minor, overlapping function.
- Effector caspases Ice and Dcp-1 function cooperatively and are essential for timely vCrz neuron removal.
- Activation of Ice and Dcp-1 can occur independently of Dronc and Strica, suggesting an alternative activation pathway.
Conclusions:
- Drosophila vCrz neuronal PCD involves the initiator caspase Dronc and effector caspases Ice and Dcp-1.
- A novel pathway, in addition to initiator caspases, is involved in activating effector caspases Ice and Dcp-1.
- The caspases Decay and Damm do not appear to play a significant role in vCrz PCD during early metamorphosis.
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