The detection of aberrant cells by natural killer (NK) cells is controlled by the integration of signals from activating and inhibitory ligands and from cytokines such as IL-15. We identified cytokine-inducible SH2-containing protein (CIS, encoded by Cish) as a critical negative regulator of IL-15 signaling in NK cells. Cish was rapidly induced in response to IL-15, and deletion of Cish rendered NK cells hypersensitive to IL-15, as evidenced by enhanced proliferation, survival, IFN-γ production and cytotoxicity toward tumors. This was associated with increased JAK-STAT signaling in NK cells in which Cish was deleted. Correspondingly, CIS interacted with the tyrosine kinase JAK1, inhibiting its enzymatic activity and targeting JAK for proteasomal degradation. Cish(-/-) mice were resistant to melanoma, prostate and breast cancer metastasis in vivo, and this was intrinsic to NK cell activity. Our data uncover a potent intracellular checkpoint in NK cell-mediated tumor immunity and suggest possibilities for new cancer immunotherapies directed at blocking CIS function.
Pyrin responds to pathogen signals and loss of cellular homeostasis by forming an inflammasome complex that drives the cleavage and secretion of IL-1β. We studied a family with dominantly inherited autoinflammatory disease characterised by childhood-onset recurrent episodes of neutrophilic dermatosis, fever, elevated acute-phase reactants, arthralgia, and myalgia/myositis. Disease was caused by a mutation in MEFV, the gene encoding pyrin (S242R). The clinical distinction from FMF, also caused by MEFV mutation, was due to loss of a 14-3-3 binding motif at phosphorylated S242. This interaction represents a guard regulating pyrin activation, which is downstream of bacterial effectors that trigger the pyrin inflammasome. S242R mutation recapitulated the effect of pathogen sensing, triggering inflammasome activation and IL-1β production. Successful therapy targeting IL-1β has been initiated in one patient, resolving Pyrin-Associated Autoinflammation with Neutrophilic Dermatosis (PAAND). This unique disease provides evidence that a guard mechanism, originally identified in plant innate immunity, also exists in humans.3 Main textAutoinflammatory diseases are characterized by recurrent episodes of fever with systemic and organ-specific inflammation, as well as uncontrolled activation of the innate immune response in the apparent absence of an infectious trigger(1). Familial Mediterranean fever (FMF, OMIM ID: 249100) is the most common of these monogenic diseases, characterized by short (24-72 h) episodes of fever associated with serositis, progressing to amyloidosis if untreated(2). FMF is an autosomal recessive disease caused by mutations in both alleles of the MEFV (MEditerranean FeVer) locus, which encodes the protein pyrin(3). Normally, pyrin functions as a link between intracellular pathogen sensing and activation of the inflammasome, allowing the production of inflammatory mediators during infection. As a potent checkpoint for the initiation of inflammation, the mechanisms of pyrin regulation are critical, and yet still poorly understood.We studied a three-generation Belgian family of 22 individuals, of whom 12 developed autoinflammatory disease (Figure 1a). The disease was characterized by neutrophilic dermatosis, childhood-onset recurrent episodes of fever lasting several weeks, increased levels of acute-phase reactants, arthralgia and myalgia/myositis (Figure 1b). The neutrophilic dermatosis comprised a spectrum of clinical manifestations including severe acne, sterile skin abscesses, pyoderma gangrenosum and neutrophilic small vessel vasculitis (Figure 1c,d).Pathological examination of affected skin showed a dense, predominantly neutrophilic, vascular, perivascular and interstitial infiltrate (Figure 1d). Serum cytokine analysis revealed elevated inflammatory mediators such as IL-1β, IL-6 and TNFα, and cytokines induced by inflammation such as IL-1Ra (Figure 1e, Figure S1a unlike some of the more typical FMF variants, that naturally occur in other species(7). Despite the association of MEFV mutations w...
The mitochondrion of apicomplexan parasites is critical for parasite survival, although the full complement of proteins that localize to this organelle has not been defined. Here we undertake two independent approaches to elucidate the mitochondrial proteome of the apicomplexan Toxoplasma gondii. We identify approximately 400 mitochondrial proteins, many of which lack homologs in the animals that these parasites infect, and most of which are important for parasite growth. We demonstrate that one such protein, termed TgApiCox25, is an important component of the parasite cytochrome c oxidase (COX) complex. We identify numerous other apicomplexan-specific components of COX, and conclude that apicomplexan COX, and apicomplexan mitochondria more generally, differ substantially in their protein composition from the hosts they infect. Our study highlights the diversity that exists in mitochondrial proteomes across the eukaryotic domain of life, and provides a foundation for defining unique aspects of mitochondrial biology in an important phylum of parasites.
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