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Phosphorylation of NLRC4 is critical for inflammasome activation
Yan Qu1, Shahram Misaghi, Anita Izrael-Tomasevic
1Department of Physiological Chemistry, Genentech Inc., 1 DNA Way, South San Francisco, California 94080, USA.
Abstract:
NLRC4 is a cytosolic member of the NOD-like receptor family that is expressed in innate immune cells. It senses indirectly bacterial flagellin and type III secretion systems, and responds by assembling an inflammasome complex that promotes caspase-1 activation and pyroptosis. Here we use knock-in mice expressing NLRC4 with a carboxy-terminal 3×Flag tag to identify phosphorylation of NLRC4 on a single, evolutionarily conserved residue, Ser 533, following infection of macrophages with Salmonella enterica serovar Typhimurium (also known as Salmonella typhimurium). Western blotting with a NLRC4 phospho-Ser 533 antibody confirmed that this post-translational modification occurs only in the presence of stimuli known to engage NLRC4 and not the related protein NLRP3 or AIM2. Nlrc4(-/-) macrophages reconstituted with NLRC4 mutant S533A, unlike those reconstituted with wild-type NLRC4, did not activate caspase-1 and pyroptosis in response to S. typhimurium, indicating that S533 phosphorylation is critical for NLRC4 inflammasome function. Conversely, phosphomimetic NLRC4 S533D caused rapid macrophage pyroptosis without infection. Biochemical purification of the NLRC4-phosphorylating activity and a screen of kinase inhibitors identified PRKCD (PKCδ) as a candidate NLRC4 kinase. Recombinant PKCδ phosphorylated NLRC4 S533 in vitro, immunodepletion of PKCδ from macrophage lysates blocked NLRC4 S533 phosphorylation in vitro, and Prkcd(-/-) macrophages exhibited greatly attenuated caspase-1 activation and IL-1β secretion specifically in response to S. typhimurium. Phosphorylation-defective NLRC4 S533A failed to recruit procaspase-1 and did not assemble inflammasome specks during S. typhimurium infection, so phosphorylation of NLRC4 S533 probably drives conformational changes necessary for NLRC4 inflammasome activity and host innate immunity.
Insights
NLRC4 inflammasome activation requires phosphorylation of Serine 533 by PKCδ, a crucial step for caspase-1 activation and pyroptosis during bacterial infection.
Area of Science:
- Immunology
- Cellular Biology
- Molecular Biology
Background:
- NLRC4 is a key sensor in innate immunity, detecting bacterial components like flagellin.
- NLRC4 activation leads to inflammasome assembly, caspase-1 activation, and pyroptosis.
- Understanding NLRC4 regulation is vital for controlling inflammatory responses.
Purpose of the Study:
- To identify post-translational modifications regulating NLRC4 inflammasome function.
- To elucidate the specific role of NLRC4 phosphorylation in response to bacterial pathogens.
- To identify the kinase responsible for NLRC4 phosphorylation.
Main Methods:
- Utilized knock-in mice expressing a tagged NLRC4.
- Employed Western blotting with phospho-specific antibodies.
- Performed functional assays with NLRC4 mutants (S533A, S533D) and kinase inhibitors.
- Investigated the role of PRKCD (PKCδ) in NLRC4 phosphorylation and inflammasome activation.
Main Results:
- Identified phosphorylation of NLRC4 at Serine 533 (S533) upon Salmonella typhimurium infection.
- Demonstrated that S533 phosphorylation is essential for caspase-1 activation and pyroptosis.
- Showed that PRKCD (PKCδ) is the kinase responsible for phosphorylating NLRC4 at S533.
- Found that S533A NLRC4 mutant fails to recruit procaspase-1 and assemble inflammasomes.
Conclusions:
- Phosphorylation of NLRC4 at S533 by PKCδ is a critical regulatory step for inflammasome activation.
- This phosphorylation event is necessary for initiating pyroptosis and IL-1β secretion in response to bacterial infection.
- NLRC4 S533 phosphorylation likely induces conformational changes required for inflammasome assembly and function, impacting host defense.
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