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Activation and Measurement of NLRP3 Inflammasome Activity Using IL-1β in Human Monocyte-derived Dendritic Cells
Published on: May 22, 2014
Poxvirus dsDNA genomes differentially activate AIM2 or NLRP3 inflammasomes in human primary cells
Yonas M Tesfamariam1, Maria H Christensen1, Stefan Diehl1
1Institute of Innate Immunity, University Hospital Bonn, University of Bonn, 53127, Bonn, Germany.
Abstract:
The innate immune system is known for its ability to recognize cytosolic DNA as evidence of infection, but detailed studies of this process have been mostly limited to mice and cell lines. To investigate inflammasome responses in human primary cells, we used engineered viruses encoding the inflammasome reporter caspase-1CARD-EGFP. We show that released genomes of vaccinia virus and monkeypox virus trigger robust inflammasome assembly in human primary cells. To determine the involved inflammasome sensors, we generated nanobodies against AIM2. Three of them inhibit AIM2 inflammasome assembly by blocking the polymerization of the AIM2 Pyrin domain, most potently as bivalent nanobodies. Utilizing an engineered vaccinia virus expressing bivalent AIM2 nanobodies, we demonstrate that inflammasomes in primary human macrophages and keratinocytes are nucleated by AIM2, while CD14+ monocytes assemble NLRP3 inflammasomes. This finding resolves the discrepancy between the previously reported activation of AIM2 inflammasomes in mice and NLRP3 inflammasomes in humans, and provides the first evidence for cell-type-specific regulation of DNA-triggered inflammasome activation. The newly developed AIM2-specific nanobodies offer a precise tool to dissect and potentially target AIM2 inflammasome assembly in other disease contexts.
Insights
Cytosolic DNA from viruses triggers inflammasome assembly in human cells. AIM2 nucleates inflammasomes in macrophages and keratinocytes, while monocytes use NLRP3, revealing cell-type-specific DNA sensing.
Area of Science:
- Immunology
- Molecular Biology
- Virology
Background:
- The innate immune system detects cytosolic DNA as a sign of infection.
- Studies on DNA sensing and inflammasome activation have primarily used mouse models and cell lines.
- Human primary cell responses to cytosolic DNA remain less understood.
Purpose of the Study:
- To investigate inflammasome activation in human primary cells upon cytosolic DNA detection.
- To identify the specific inflammasome sensors involved in DNA-triggered responses in different human cell types.
- To develop tools for dissecting inflammasome assembly.
Main Methods:
- Utilized engineered viruses encoding a caspase-1 reporter (caspase-1CARD-EGFP).
- Generated and characterized nanobodies against the AIM2 inflammasome sensor.
- Employed engineered vaccinia virus expressing bivalent AIM2 nanobodies in primary human macrophages, keratinocytes, and monocytes.
Main Results:
- Released viral genomes from vaccinia and monkeypox viruses induced robust inflammasome assembly in human primary cells.
- AIM2-specific nanobodies inhibited AIM2 inflammasome assembly by blocking Pyrin domain polymerization.
- AIM2 nucleated inflammasomes in primary human macrophages and keratinocytes.
- CD14+ monocytes were found to assemble NLRP3 inflammasomes in response to viral DNA.
Conclusions:
- DNA-triggered inflammasome activation is regulated in a cell-type-specific manner in humans, with AIM2 and NLRP3 acting as key sensors.
- This resolves discrepancies between mouse and human inflammasome activation studies.
- AIM2-specific nanobodies provide valuable tools for studying and potentially targeting AIM2 inflammasome-mediated diseases.
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