| Literature DB >> 31443239 |
Gabriel Forn-Cuní1, Annemarie H Meijer1, Monica Varela2.
Abstract
Inflammasomes are cytosolic multiprotein complexes that regulate inflammatory responses to danger stimuli and infection, and their dysregulation is associated with an increasing number of autoinflammatory diseases. In recent years, zebrafish models of human pathologies to study inflammasome function in vivo have started to emerge. Here, we discuss inflammasome research in zebrafish in light of current knowledge about mammalian inflammasomes. We summarize the evolutionary conservation of inflammasome components between zebrafish and mammals, highlighting the similarities and possible divergence in functions of these components. We present new insights into the evolution of the caspase-1 family in the teleost lineage, and how its evolutionary origin may help contextualize its functions. We also review existing infectious and non-infectious models in zebrafish in which inflammasomes have been directly implicated. Finally, we discuss the advantages of zebrafish larvae for intravital imaging of inflammasome activation and summarize available tools that will help to advance inflammasome research.Entities:
Keywords: animal models; evolutionary conservation; gasdermin; inflammasome; inflammatory caspases; intravital imaging; pyroptosis; zebrafish
Mesh:
Substances:
Year: 2019 PMID: 31443239 PMCID: PMC6721725 DOI: 10.3390/cells8080901
Source DB: PubMed Journal: Cells ISSN: 2073-4409 Impact factor: 6.600
General assays available for inflammasome research in zebrafish.
| Readout | Assay | References |
|---|---|---|
| Cell death | TUNEL | [ |
| Sytox Green | [ | |
| Caspase activity | [ | |
| Fluorometric assay (e.g., Z-YVAD-AFC) | [ |
Specific zebrafish tools available for inflammasome research.
| Inflammasome Target/Aim. | Tool/Assay | References |
|---|---|---|
| Asc | Tg( | [ |
| Tg( | [ | |
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| Asc zebrafish antibody | [ | |
| Caspa | [ | |
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| Caspb | [ | |
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| Il1b | TgBAC( | [ |
| Tg( | [ | |
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| Il1b antibody | [ | |
| Il1b antibody | [ | |
| Gsdmea | [ | |
| Gsdmeb | [ | |
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Figure 1Schematic representation of protein domains in the components involved in inflammasome function in zebrafish.
Figure 2Evolutionary model of the caspase-1-like family in fish and mammals. Reconciliation of the caspase-1-like gene subfamily evolution inside of the species evolution (grey). Gene duplication events are depicted with a white circle symbol, indicating in the label the last common ancestor in which the duplication has been found. The CARD/PYD prodomain swap is indicated with a red star. Asterisks indicate gene expansions in lineages outside of the scope of this study.
Figure 3Inflammasome components can be directly visualized in zebrafish. (A) Transparent 2 days post-fertilization zebrafish larvae were challenged by previously described infection and inflammation conditions [29,70]. (B) Visualization of Asc speck formation in zebrafish macrophages infected with Mycobacterium marinum. (C) il1b reporter gene visualization upon Mycobacterium marinum infection. (D) il1b-producing leukocytes are recruited to the intestine of a zebrafish larvae in a model of Copper-induced intestinal inflammation.
Infectious and non-infectious zebrafish models in which inflammasome function has been reported.
| Model | References | |
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| Infectious |
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| Spring viraemia of carp virus | [ | |
| Non-infectious | Hematopoiesis | [ |
| Hepatic inflammation | [ | |
| Intestinal inflammation | [ | |
| Microglia homeostasis | [ | |
| Tail fin transection | [ |