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Updated: Dec 10, 2025

Evaluation of Caspase Activation to Assess Innate Immune Cell Death
Published on: January 20, 2023
Activation of the executioner caspases-3 and -7 promotes microglial pyroptosis in models of multiple sclerosis
Brienne A McKenzie1,2, Jason P Fernandes1,2, Matthew A L Doan2,3
1Department of Medical Microbiology & Immunology, University of Alberta, Edmonton, AB, Canada.
Background:
Pyroptosis is a type of proinflammatory regulated cell death (RCD) in which caspase-1 proteolytically cleaves gasdermin D (GSDMD) to yield a cytotoxic pore-forming protein. Recent studies have suggested that additional cell death pathways may interact with GSDMD under certain circumstances to execute pyroptosis. Microglia/macrophages in the central nervous system (CNS) undergo GSDMD-associated pyroptosis in multiple sclerosis (MS) and its animal model experimental autoimmune encephalomyelitis (EAE) but the contribution of other cell death pathways to this phenomenon is unknown. Herein, we tested the hypothesis that multiple RCD pathways underlie microglial pyroptosis in the context of neuroinflammation.
Methods:
A siRNA screen of genes with known RCD functions was performed in primary human microglia to evaluate their role in nigericin-induced pyroptosis using supernatant lactate dehydrogenase activity as a read-out of cell lysis. Activation of apoptotic executioner proteins and their contribution to pyroptosis was assessed using semi-quantitative confocal microscopy, high-sensitivity ELISA, immunoblot, cell lysis assays, and activity-based fluorescent probes. Quantification of pyroptosis-related protein expression was performed in CNS lesions from patients with progressive MS and mice with MOG35-55-induced EAE, and in matched controls.
Results:
Among progressive MS patients, activated caspase-3 was detected in GSDMD immunopositive pyroptotic microglia/macrophages within demyelinating lesions. In the siRNA screen, suppression of caspase-3/7, caspase-1, or GSDMD expression prevented plasma membrane rupture during pyroptosis. Upon exposure to pyroptotic stimuli (ATP or nigericin), human microglia displayed caspase-3/7 activation and cleavage of caspase-3/7-specific substrates (e.g., DFF45, ROCK1, and PARP), with accompanying features of pyroptosis including GSDMD immunopositive pyroptotic bodies, IL-1β release, and membrane rupture. Pyroptosis-associated nuclear condensation and pyroptotic body formation were suppressed by caspase-3/7 inhibition. Pharmacological and siRNA-mediated inhibition of caspase-1 diminished caspase-3/7 activation during pyroptosis. In mice with EAE-associated neurological deficits, activated caspase-3 colocalized with GSDMD immunopositivity in lesion-associated macrophages/microglia.
Conclusions:
Activation of executioner caspases-3/7, widely considered key mediators of apoptosis, contributed to GSDMD-associated microglial pyroptosis under neuroinflammatory conditions. Collectively, these observations highlight the convergence of different cell death pathways during neuroinflammation and offer new therapeutic opportunities in neuroinflammatory disease.
Insights
Executioner caspases-3/7 contribute to pyroptosis in microglia during neuroinflammation, converging cell death pathways. This finding offers new therapeutic targets for neuroinflammatory diseases like multiple sclerosis.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Pyroptosis is a pro-inflammatory cell death pathway involving caspase-1 and gasdermin D (GSDMD).
- Microglia and macrophages in the central nervous system (CNS) undergo pyroptosis in multiple sclerosis (MS) and experimental autoimmune encephalomyelitis (EAE).
- The role of other cell death pathways in microglial pyroptosis during neuroinflammation is not fully understood.
Purpose of the Study:
- To investigate the hypothesis that multiple regulated cell death (RCD) pathways contribute to microglial pyroptosis in neuroinflammation.
- To elucidate the specific roles of executioner caspases (caspase-3/7) in GSDMD-associated pyroptosis within the CNS.
Main Methods:
- A siRNA screen of RCD genes in primary human microglia to identify key players in pyroptosis.
- Assessment of apoptotic executioner protein activation using microscopy, ELISA, immunoblotting, and fluorescent probes.
- Quantification of pyroptosis markers in CNS lesions from MS patients and EAE mouse models.
Main Results:
- Activated caspase-3 was found in GSDMD-positive microglia/macrophages in MS lesions.
- Inhibition of caspase-3/7, caspase-1, or GSDMD prevented plasma membrane rupture during pyroptosis.
- Human microglia exhibited caspase-3/7 activation and substrate cleavage during pyroptosis, with inhibition of caspase-1 reducing caspase-3/7 activity.
- Activated caspase-3 colocalized with GSDMD in macrophages/microglia in EAE lesions.
Conclusions:
- Executioner caspases-3/7, typically associated with apoptosis, play a significant role in GSDMD-mediated microglial pyroptosis during neuroinflammation.
- These findings demonstrate the convergence of distinct cell death pathways in neuroinflammation.
- The study identifies potential new therapeutic targets for neuroinflammatory diseases.
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