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Updated: Aug 6, 2026

In Vivo Biosensor Tracks Non-apoptotic Caspase Activity in Drosophila
Published on: November 27, 2016
Proteases for cell suicide: functions and regulation of caspases
1Harvard-MIT Division of Health Science and Technology, Harvard Medical School, Boston, Massachusetts 02115, USA.
Abstract:
Caspases are a large family of evolutionarily conserved proteases found from Caenorhabditis elegans to humans. Although the first caspase was identified as a processing enzyme for interleukin-1beta, genetic and biochemical data have converged to reveal that many caspases are key mediators of apoptosis, the intrinsic cell suicide program essential for development and tissue homeostasis. Each caspase is a cysteine aspartase; it employs a nucleophilic cysteine in its active site to cleave aspartic acid peptide bonds within proteins. Caspases are synthesized as inactive precursors termed procaspases; proteolytic processing of procaspase generates the tetrameric active caspase enzyme, composed of two repeating heterotypic subunits. Based on kinetic data, substrate specificity, and procaspase structure, caspases have been conceptually divided into initiators and effectors. Initiator caspases activate effector caspases in response to specific cell death signals, and effector caspases cleave various cellular proteins to trigger apoptosis. Adapter protein-mediated oligomerization of procaspases is now recognized as a universal mechanism of initiator caspase activation and underlies the control of both cell surface death receptor and mitochondrial cytochrome c-Apaf-1 apoptosis pathways. Caspase substrates have bene identified that induce each of the classic features of apoptosis, including membrane blebbing, cell body shrinkage, and DNA fragmentation. Mice deficient for caspase genes have highlighted tissue- and signal-specific pathways for apoptosis and demonstrated an independent function for caspase-1 and -11 in cytokine processing. Dysregulation of caspases features prominently in many human diseases, including cancer, autoimmunity, and neurodegenerative disorders, and increasing evidence shows that altering caspase activity can confer therapeutic benefits.
Insights
Caspases are proteases crucial for apoptosis, or programmed cell death. Dysregulation of these enzymes is linked to diseases like cancer, and modulating their activity offers therapeutic potential.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Caspases are conserved proteases essential for apoptosis, a vital process in development and tissue homeostasis.
- Initially identified for interleukin-1beta processing, caspases are now recognized as central mediators of programmed cell death.
- They function as cysteine aspartases, cleaving aspartic acid residues in target proteins.
Purpose of the Study:
- To elucidate the role of caspases in apoptosis and cellular regulation.
- To understand the mechanisms of caspase activation and substrate specificity.
- To explore the implications of caspase dysregulation in human diseases and potential therapeutic strategies.
Main Methods:
- Review of genetic and biochemical data on caspase function.
- Analysis of caspase structure, substrate specificity, and activation pathways.
- Examination of data from caspase-deficient mouse models.
Main Results:
- Caspases are synthesized as inactive procaspases, activated through proteolytic processing into effector and initiator enzymes.
- Initiator caspases are activated via adapter protein-mediated oligomerization, controlling death receptor and mitochondrial pathways.
- Caspase substrates induce hallmark apoptotic features; caspase-1 and -11 have distinct roles in cytokine processing.
Conclusions:
- Caspase activity is fundamental to apoptosis, development, and tissue homeostasis.
- Dysregulated caspase activity is implicated in cancer, autoimmunity, and neurodegenerative diseases.
- Targeting caspase activity presents a promising therapeutic avenue for various human pathologies.
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