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1.
Annu Rev Immunol ; 42(1): 259-288, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38277692

ABSTRACT

Gastrointestinal nematode (GIN) infection has applied significant evolutionary pressure to the mammalian immune system and remains a global economic and human health burden. Upon infection, type 2 immune sentinels activate a common antihelminth response that mobilizes and remodels the intestinal tissue for effector function; however, there is growing appreciation of the impact GIN infection also has on the distal tissue immune state. Indeed, this effect is observed even in tissues through which GINs never transit. This review highlights how GIN infection modulates systemic immunity through (a) induction of host resistance and tolerance responses, (b) secretion of immunomodulatory products, and (c) interaction with the intestinal microbiome. It also discusses the direct consequences that changes to distal tissue immunity can have for concurrent and subsequent infection, chronic noncommunicable diseases, and vaccination efficacy.


Subject(s)
Gastrointestinal Microbiome , Nematoda , Nematode Infections , Animals , Humans , Nematode Infections/immunology , Nematoda/immunology , Nematoda/physiology , Gastrointestinal Microbiome/immunology , Immunomodulation , Host-Parasite Interactions/immunology , Intestinal Diseases, Parasitic/immunology , Immune Tolerance , Gastrointestinal Tract/immunology , Gastrointestinal Tract/parasitology
2.
Annu Rev Immunol ; 31: 73-106, 2013.
Article in English | MEDLINE | ID: mdl-23215645

ABSTRACT

Inflammasomes are cytosolic multiprotein complexes that assemble in response to a variety of infectious and noxious insults. Inflammasomes play a critical role in the initiation of innate immune responses, primarily by serving as platforms for the activation of inflammatory caspase proteases. One such caspase, CASPASE-1 (CASP1), initiates innate immune responses by cleaving pro-IL-1ß and pro-IL-18, leading to their activation and release. CASP1 and another inflammatory caspase termed CASP11 can also initiate a rapid and inflammatory form of cell death termed pyroptosis. Several distinct inflammasomes have been described, each of which contains a unique sensor protein of the NLR (nucleotide-binding domain, leucine-rich repeat-containing) superfamily or the PYHIN (PYRIN and HIN-200 domain-containing) superfamily. Here we describe the surprisingly diverse mechanisms by which NLR/PYHIN proteins sense bacteria and initiate innate immune responses. We conclude that inflammasomes represent a highly adaptable scaffold ideally suited for detecting and initiating rapid innate responses to diverse and rapidly evolving bacteria.


Subject(s)
Bacteria/pathogenicity , Inflammasomes/metabolism , Animals , Bacillus anthracis/pathogenicity , CARD Signaling Adaptor Proteins/metabolism , CARD Signaling Adaptor Proteins/physiology , Calcium-Binding Proteins/metabolism , Calcium-Binding Proteins/physiology , Flagella/metabolism , Flagella/physiology , Humans , Inflammasomes/genetics , Inflammasomes/physiology , Legionella pneumophila/pathogenicity , Listeria monocytogenes/pathogenicity , Salmonella typhimurium/pathogenicity
3.
Immunity ; 57(6): 1243-1259.e8, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38744291

ABSTRACT

Epithelial cells secrete chloride to regulate water release at mucosal barriers, supporting both homeostatic hydration and the "weep" response that is critical for type 2 immune defense against parasitic worms (helminths). Epithelial tuft cells in the small intestine sense helminths and release cytokines and lipids to activate type 2 immune cells, but whether they regulate epithelial secretion is unknown. Here, we found that tuft cell activation rapidly induced epithelial chloride secretion in the small intestine. This response required tuft cell sensory functions and tuft cell-derived acetylcholine (ACh), which acted directly on neighboring epithelial cells to stimulate chloride secretion, independent of neurons. Maximal tuft cell-induced chloride secretion coincided with immune restriction of helminths, and clearance was delayed in mice lacking tuft cell-derived ACh, despite normal type 2 inflammation. Thus, we have uncovered an epithelium-intrinsic response unit that uses ACh to couple tuft cell sensing to the secretory defenses of neighboring epithelial cells.


Subject(s)
Acetylcholine , Chlorides , Epithelial Cells , Intestinal Mucosa , Animals , Acetylcholine/metabolism , Mice , Chlorides/metabolism , Epithelial Cells/metabolism , Epithelial Cells/parasitology , Epithelial Cells/immunology , Intestinal Mucosa/immunology , Intestinal Mucosa/metabolism , Intestinal Mucosa/parasitology , Intestine, Small/immunology , Intestine, Small/parasitology , Intestine, Small/metabolism , Mice, Inbred C57BL , Mice, Knockout , Tuft Cells
4.
Cell ; 174(2): 271-284.e14, 2018 07 12.
Article in English | MEDLINE | ID: mdl-29887373

ABSTRACT

The small intestinal tuft cell-ILC2 circuit mediates epithelial responses to intestinal helminths and protists by tuft cell chemosensory-like sensing and IL-25-mediated activation of lamina propria ILC2s. Small intestine ILC2s constitutively express the IL-25 receptor, which is negatively regulated by A20 (Tnfaip3). A20 deficiency in ILC2s spontaneously triggers the circuit and, unexpectedly, promotes adaptive small-intestinal lengthening and remodeling. Circuit activation occurs upon weaning and is enabled by dietary polysaccharides that render mice permissive for Tritrichomonas colonization, resulting in luminal accumulation of acetate and succinate, metabolites of the protist hydrogenosome. Tuft cells express GPR91, the succinate receptor, and dietary succinate, but not acetate, activates ILC2s via a tuft-, TRPM5-, and IL-25-dependent pathway. Also induced by parasitic helminths, circuit activation and small intestinal remodeling impairs infestation by new helminths, consistent with the phenomenon of concomitant immunity. We describe a metabolic sensing circuit that may have evolved to facilitate mutualistic responses to luminal pathosymbionts.


Subject(s)
Intestine, Small/physiology , Tritrichomonas/metabolism , Acetates/metabolism , Animals , Dietary Fiber/metabolism , Energy Metabolism , Epithelial Cells/cytology , Epithelial Cells/metabolism , Epithelial Cells/parasitology , Interleukins/genetics , Interleukins/metabolism , Intestinal Mucosa/cytology , Intestine, Small/microbiology , Intestine, Small/parasitology , Mice , Mice, Inbred C57BL , Mice, Transgenic , Microbiota , Plasmids/genetics , Plasmids/metabolism , Receptors, G-Protein-Coupled/metabolism , Receptors, Interleukin/metabolism , Receptors, Interleukin-17/genetics , Receptors, Interleukin-17/metabolism , Succinic Acid/metabolism , TRPM Cation Channels/metabolism , Tritrichomonas/growth & development , Tumor Necrosis Factor alpha-Induced Protein 3/genetics , Tumor Necrosis Factor alpha-Induced Protein 3/metabolism
5.
Immunity ; 55(4): 623-638.e5, 2022 04 12.
Article in English | MEDLINE | ID: mdl-35385697

ABSTRACT

The epithelium is an integral component of mucosal barrier and host immunity. Following helminth infection, the intestinal epithelial cells secrete "alarmin" cytokines, such as interleukin-25 (IL-25) and IL-33, to initiate the type 2 immune responses for helminth expulsion and tolerance. However, it is unknown how helminth infection and the resulting cytokine milieu drive epithelial remodeling and orchestrate alarmin secretion. Here, we report that epithelial O-linked N-Acetylglucosamine (O-GlcNAc) protein modification was induced upon helminth infections. By modifying and activating the transcription factor STAT6, O-GlcNAc transferase promoted the transcription of lineage-defining Pou2f3 in tuft cell differentiation and IL-25 production. Meanwhile, STAT6 O-GlcNAcylation activated the expression of Gsdmc family genes. The membrane pore formed by GSDMC facilitated the unconventional secretion of IL-33. GSDMC-mediated IL-33 secretion was indispensable for effective anti-helminth immunity and contributed to induced intestinal inflammation. Protein O-GlcNAcylation can be harnessed for future treatment of type 2 inflammation-associated human diseases.


Subject(s)
Alarmins , Intestinal Mucosa , Acylation , Alarmins/immunology , Anthelmintics/immunology , Biomarkers, Tumor , Cytokines , DNA-Binding Proteins , Helminthiasis/immunology , Humans , Hyperplasia , Inflammation , Interleukin-33 , Intestinal Mucosa/immunology , Mebendazole , N-Acetylglucosaminyltransferases/immunology , Pore Forming Cytotoxic Proteins , STAT6 Transcription Factor/immunology
6.
Immunity ; 52(3): 528-541.e7, 2020 03 17.
Article in English | MEDLINE | ID: mdl-32160525

ABSTRACT

Helminths, allergens, and certain protists induce type 2 immune responses, but the underlying mechanisms of immune activation remain poorly understood. In the small intestine, chemosensing by epithelial tuft cells results in the activation of group 2 innate lymphoid cells (ILC2s), which subsequently drive increased tuft cell frequency. This feedforward circuit is essential for intestinal remodeling and helminth clearance. ILC2 activation requires tuft-cell-derived interleukin-25 (IL-25), but whether additional signals regulate the circuit is unclear. Here, we show that tuft cells secrete cysteinyl leukotrienes (cysLTs) to rapidly activate type 2 immunity following chemosensing of helminth infection. CysLTs cooperate with IL-25 to activate ILC2s, and tuft-cell-specific ablation of leukotriene synthesis attenuates type 2 immunity and delays helminth clearance. Conversely, cysLTs are dispensable for the tuft cell response induced by intestinal protists. Our findings identify an additional tuft cell effector function and suggest context-specific regulation of tuft-ILC2 circuits within the small intestine.


Subject(s)
Cysteine/immunology , Intestinal Mucosa/immunology , Intestine, Small/immunology , Leukotrienes/immunology , Nippostrongylus/immunology , Strongylida Infections/immunology , Animals , Arachidonate 5-Lipoxygenase/genetics , Arachidonate 5-Lipoxygenase/immunology , Arachidonate 5-Lipoxygenase/metabolism , Cysteine/metabolism , Epithelial Cells/immunology , Epithelial Cells/metabolism , Epithelial Cells/parasitology , Immunity, Innate/immunology , Interleukin-17/genetics , Interleukin-17/immunology , Interleukin-17/metabolism , Intestinal Mucosa/metabolism , Intestinal Mucosa/parasitology , Intestine, Small/cytology , Intestine, Small/metabolism , Leukotrienes/metabolism , Lymphocytes/immunology , Lymphocytes/metabolism , Lymphocytes/parasitology , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Nippostrongylus/physiology , Strongylida Infections/parasitology
7.
Immunity ; 51(3): 451-464.e6, 2019 09 17.
Article in English | MEDLINE | ID: mdl-31471108

ABSTRACT

Type I and III interferons (IFNs) activate similar downstream signaling cascades, but unlike type I IFNs, type III IFNs (IFNλ) do not elicit strong inflammatory responses in vivo. Here, we examined the molecular mechanisms underlying this disparity. Type I and III IFNs displayed kinetic differences in expression of IFN-stimulated genes and proinflammatory responses, with type I IFNs preferentially stimulating expression of the transcription factor IRF1. Type III IFNs failed to induce IRF1 expression because of low IFNλ receptor abundance and insufficient STAT1 activation on epithelial cells and thus did not activate the IRF1 proinflammatory gene program. Rather, IFNλ stimulation preferentially induced factors implicated in tissue repair. Our findings suggest that IFN receptor compartmentalization and abundance confer a spatiotemporal division of labor where type III IFNs control viral spread at the site of the infection while restricting tissue damage; the transient induction of inflammatory responses by type I IFNs recruits immune effectors to promote protective immunity.


Subject(s)
Interferon Regulatory Factor-1/immunology , Interferon Type I/immunology , Interferons/immunology , Animals , Cell Line , Epithelial Cells/immunology , Humans , Inflammation/immunology , Male , Mice , Mice, Inbred C57BL , STAT1 Transcription Factor/immunology , Interferon Lambda
8.
Immunity ; 49(1): 33-41.e7, 2018 07 17.
Article in English | MEDLINE | ID: mdl-30021144

ABSTRACT

In the small intestine, type 2 responses are regulated by a signaling circuit that involves tuft cells and group 2 innate lymphoid cells (ILC2s). Here, we identified the microbial metabolite succinate as an activating ligand for small intestinal (SI) tuft cells. Sequencing analyses of tuft cells isolated from the small intestine, gall bladder, colon, thymus, and trachea revealed that expression of tuft cell chemosensory receptors is tissue specific. SI tuft cells expressed the succinate receptor (SUCNR1), and providing succinate in drinking water was sufficient to induce a multifaceted type 2 immune response via the tuft-ILC2 circuit. The helminth Nippostrongylus brasiliensis and a tritrichomonad protist both secreted succinate as a metabolite. In vivo sensing of the tritrichomonad required SUCNR1, whereas N. brasiliensis was SUCNR1 independent. These findings define a paradigm wherein tuft cells monitor microbial metabolites to initiate type 2 immunity and suggest the existence of other sensing pathways triggering the response to helminths.


Subject(s)
Immunity, Mucosal/drug effects , Intestinal Mucosa/cytology , Intestinal Mucosa/immunology , Receptors, G-Protein-Coupled/metabolism , Signal Transduction/drug effects , Succinic Acid/pharmacology , Animals , Cell Line , Female , Intestinal Mucosa/metabolism , Intestine, Small/drug effects , Intestine, Small/immunology , Male , Mice, Inbred C57BL , Mice, Knockout , Nippostrongylus/drug effects , Nippostrongylus/immunology , Nippostrongylus/metabolism , Organ Specificity , Protozoan Infections/immunology , Receptors, G-Protein-Coupled/immunology , Signal Transduction/immunology , Species Specificity , Strongylida Infections/immunology , TRPM Cation Channels/metabolism , Th2 Cells/immunology , Tritrichomonas/drug effects , Tritrichomonas/immunology , Tritrichomonas/metabolism
10.
Immunity ; 46(4): 649-659, 2017 04 18.
Article in English | MEDLINE | ID: mdl-28410991

ABSTRACT

Intestinal epithelial cells (IECs) form a critical barrier against pathogen invasion. By generation of mice in which inflammasome expression is restricted to IECs, we describe a coordinated epithelium-intrinsic inflammasome response in vivo. This response was sufficient to protect against Salmonella tissue invasion and involved a previously reported IEC expulsion that was coordinated with lipid mediator and cytokine production and lytic IEC death. Excessive inflammasome activation in IECs was sufficient to result in diarrhea and pathology. Experiments with IEC organoids demonstrated that IEC expulsion did not require other cell types. IEC expulsion was accompanied by a major actin rearrangement in neighboring cells that maintained epithelium integrity but did not absolutely require Caspase-1 or Gasdermin D. Analysis of Casp1-/-Casp8-/- mice revealed a functional Caspase-8 inflammasome in vivo. Thus, a coordinated IEC-intrinsic, Caspase-1 and -8 inflammasome response plays a key role in intestinal immune defense and pathology.


Subject(s)
Apoptosis Regulatory Proteins/metabolism , Calcium-Binding Proteins/metabolism , Caspase 1/metabolism , Caspase 8/metabolism , Eicosanoids/metabolism , Epithelial Cells/metabolism , Interleukin-18/metabolism , Neuronal Apoptosis-Inhibitory Protein/metabolism , Animals , Apoptosis Regulatory Proteins/genetics , Calcium-Binding Proteins/genetics , Caspase 1/genetics , Caspase 8/genetics , Enzyme Activation , Enzyme-Linked Immunosorbent Assay , Epithelial Cells/microbiology , Inflammasomes/genetics , Inflammasomes/metabolism , Intestinal Mucosa/metabolism , Intestinal Mucosa/microbiology , Intestinal Mucosa/pathology , Intracellular Signaling Peptides and Proteins , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Microscopy, Confocal , Phosphate-Binding Proteins , Salmonella Infections/metabolism , Salmonella Infections/microbiology , Salmonella typhimurium/physiology
12.
J Immunol ; 208(5): 1007-1020, 2022 03 01.
Article in English | MEDLINE | ID: mdl-35181641

ABSTRACT

E-protein transcription factors limit group 2 innate lymphoid cell (ILC2) development while promoting T cell differentiation from common lymphoid progenitors. Inhibitors of DNA binding (ID) proteins block E-protein DNA binding in common lymphoid progenitors to allow ILC2 development. However, whether E-proteins influence ILC2 function upon maturity and activation remains unclear. Mice that overexpress ID1 under control of the thymus-restricted proximal Lck promoter (ID1tg/WT) have a large pool of primarily thymus-derived ILC2s in the periphery that develop in the absence of E-protein activity. We used these mice to investigate how the absence of E-protein activity affects ILC2 function and the genomic landscape in response to house dust mite (HDM) allergens. ID1tg/WT mice had increased KLRG1- ILC2s in the lung compared with wild-type (WT; ID1WT/WT) mice in response to HDM, but ID1tg/WT ILC2s had an impaired capacity to produce type 2 cytokines. Analysis of WT ILC2 accessible chromatin suggested that AP-1 and C/EBP transcription factors but not E-proteins were associated with ILC2 inflammatory gene programs. Instead, E-protein binding sites were enriched at functional genes in ILC2s during development that were later dynamically regulated in allergic lung inflammation, including genes that control ILC2 response to cytokines and interactions with T cells. Finally, ILC2s from ID1tg/WT compared with WT mice had fewer regions of open chromatin near functional genes that were enriched for AP-1 factor binding sites following HDM treatment. These data show that E-proteins shape the chromatin landscape during ILC2 development to dictate the functional capacity of mature ILC2s during allergic inflammation in the lung.


Subject(s)
Antigens, Dermatophagoides/immunology , Asthma/immunology , Inhibitor of Differentiation Protein 1/metabolism , T-Lymphocytes/immunology , Transcription Factors/metabolism , Adaptor Proteins, Signal Transducing/genetics , Allergens/immunology , Animals , Asthma/pathology , Cell Differentiation/immunology , Chromatin/metabolism , Cytokines/immunology , DNA-Binding Proteins/antagonists & inhibitors , Female , Lectins, C-Type/genetics , Lung/immunology , Lung/pathology , Male , Mice , Mice, Inbred C57BL , Pyroglyphidae/immunology , Receptors, Immunologic/genetics , Stem Cells/cytology , T-Lymphocytes/cytology , Transcription Factor AP-1/metabolism
13.
Nature ; 559(7715): 627-631, 2018 07.
Article in English | MEDLINE | ID: mdl-30022164

ABSTRACT

The thymus is responsible for generating a diverse yet self-tolerant pool of T cells1. Although the thymic medulla consists mostly of developing and mature AIRE+ epithelial cells, recent evidence has suggested that there is far greater heterogeneity among medullary thymic epithelial cells than was previously thought2. Here we describe in detail an epithelial subset that is remarkably similar to peripheral tuft cells that are found at mucosal barriers3. Similar to the periphery, thymic tuft cells express the canonical taste transduction pathway and IL-25. However, they are unique in their spatial association with cornified aggregates, ability to present antigens and expression of a broad diversity of taste receptors. Some thymic tuft cells pass through an Aire-expressing stage and depend on a known AIRE-binding partner, HIPK2, for their development. Notably, the taste chemosensory protein TRPM5 is required for their thymic function through which they support the development and polarization of thymic invariant natural killer T cells and act to establish a medullary microenvironment that is enriched in the type 2 cytokine, IL-4. These findings indicate that there is a compartmentalized medullary environment in which differentiation of a minor and highly specialized epithelial subset has a non-redundant role in shaping thymic function.


Subject(s)
Epithelial Cells/cytology , Epithelial Cells/metabolism , Interleukin-4/metabolism , Thymocytes/cytology , Thymus Gland/cytology , Thymus Gland/metabolism , Animals , Cellular Microenvironment , Doublecortin-Like Kinases , Female , Humans , Immune Tolerance/immunology , Interleukin-4/biosynthesis , Interleukins/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Male , Mice , Mice, Inbred BALB C , Mice, Inbred C57BL , Protein Serine-Threonine Kinases/metabolism , TRPM Cation Channels/metabolism , Thymocytes/metabolism , Thymus Gland/anatomy & histology , Transcription Factors/deficiency , Transcription Factors/genetics , AIRE Protein
14.
Nature ; 529(7585): 221-5, 2016 Jan 14.
Article in English | MEDLINE | ID: mdl-26675736

ABSTRACT

Parasitic helminths and allergens induce a type 2 immune response leading to profound changes in tissue physiology, including hyperplasia of mucus-secreting goblet cells and smooth muscle hypercontractility. This response, known as 'weep and sweep', requires interleukin (IL)-13 production by tissue-resident group 2 innate lymphoid cells (ILC2s) and recruited type 2 helper T cells (TH2 cells). Experiments in mice and humans have demonstrated requirements for the epithelial cytokines IL-33, thymic stromal lymphopoietin (TSLP) and IL-25 in the activation of ILC2s, but the sources and regulation of these signals remain poorly defined. In the small intestine, the epithelium consists of at least five distinct cellular lineages, including the tuft cell, whose function is unclear. Here we show that tuft cells constitutively express IL-25 to sustain ILC2 homeostasis in the resting lamina propria in mice. After helminth infection, tuft-cell-derived IL-25 further activates ILC2s to secrete IL-13, which acts on epithelial crypt progenitors to promote differentiation of tuft and goblet cells, leading to increased frequencies of both. Tuft cells, ILC2s and epithelial progenitors therefore comprise a response circuit that mediates epithelial remodelling associated with type 2 immunity in the small intestine, and perhaps at other mucosal barriers populated by these cells.


Subject(s)
Immunity, Innate/immunology , Immunity, Mucosal/immunology , Interleukin-17/immunology , Intestinal Mucosa/cytology , Intestinal Mucosa/immunology , Lymphocytes/cytology , Lymphocytes/immunology , Animals , Antigens, Helminth/immunology , Cell Proliferation , Female , Goblet Cells/cytology , Goblet Cells/immunology , Homeostasis , Interleukin-13/immunology , Interleukin-17/metabolism , Intestinal Mucosa/metabolism , Intestine, Small/cytology , Intestine, Small/immunology , Male , Mice , Nippostrongylus/immunology , Signal Transduction , Stem Cells/cytology , Stem Cells/immunology , Strongylida Infections/immunology , Th2 Cells/cytology , Th2 Cells/immunology
15.
Am J Physiol Gastrointest Liver Physiol ; 321(6): G668-G681, 2021 12 01.
Article in English | MEDLINE | ID: mdl-34643097

ABSTRACT

MicroRNA-mediated regulation is critical for the proper development and function of the small intestinal (SI) epithelium. However, it is not known which microRNAs are expressed in each of the cell types of the SI epithelium. To bridge this important knowledge gap, we performed comprehensive microRNA profiling in all major cell types of the mouse SI epithelium. We used flow cytometry and fluorescence-activated cell sorting with multiple reporter mouse models to isolate intestinal stem cells, enterocytes, goblet cells, Paneth cells, enteroendocrine cells, tuft cells, and secretory progenitors. We then subjected these cell populations to small RNA-sequencing. The resulting atlas revealed highly enriched microRNA markers for almost every major cell type (https://sethupathy-lab.shinyapps.io/SI_miRNA/). Several of these lineage-enriched microRNAs (LEMs) were observed to be embedded in annotated host genes. We used chromatin-run-on sequencing to determine which of these LEMs are likely cotranscribed with their host genes. We then performed single-cell RNA-sequencing to define the cell type specificity of the host genes and embedded LEMs. We observed that the two most enriched microRNAs in secretory progenitors are miR-1224 and miR-672, the latter of which we found is deleted in hominin species. Finally, using several in vivo models, we established that miR-152 is a Paneth cell-specific microRNA.NEW & NOTEWORTHY In this study, first, microRNA atlas (and searchable web server) across all major small intestinal epithelial cell types is presented. We have demonstrated microRNAs that uniquely mark several lineages, including enteroendocrine and tuft. Identification of a key marker of mouse secretory progenitor cells, miR-672, which we show is deleted in humans. We have used several in vivo models to establish miR-152 as a specific marker of Paneth cells, which are highly understudied in terms of microRNAs.


Subject(s)
Cell Lineage , Epithelial Cells/metabolism , Gene Expression Profiling , Intestinal Mucosa/metabolism , Intestine, Small/metabolism , MicroRNAs/genetics , Transcriptome , Animals , Biomarkers/metabolism , Cell Separation , Cells, Cultured , Computational Biology , Dogs , Female , Flow Cytometry , Intestinal Mucosa/cytology , Intestine, Small/cytology , Male , Mice, Inbred C57BL , Mice, Transgenic , MicroRNAs/metabolism , Organoids , RNA-Seq , Single-Cell Analysis
16.
Trends Immunol ; 39(2): 99-111, 2018 02.
Article in English | MEDLINE | ID: mdl-29122456

ABSTRACT

Type 2 immune responses have evolved to sense and respond to large, non-replicating infections or non-microbial noxious compounds in tissues. The development of these responses therefore depends upon highly coordinated and tightly regulated tissue-residing cellular sensors and responders. Multiple exposure to type 2 helper T cell (Th2)-inducing stimuli further enhances both the diversity and potency of the response. This review discusses advances in our understanding of the interacting cellular subsets that comprise both primary and secondary type 2 responses. Current knowledge regarding type 2 immune responses in the lung are initially presented and are then contrasted with what is known about the small intestine. The studies described portray an immune response that depends upon well-organized tissue structures, and suggest their modulation as a therapeutic strategy.


Subject(s)
Immunotherapy/methods , Intestines/immunology , Lung/immunology , T-Lymphocyte Subsets/immunology , Th2 Cells/immunology , Animals , Cellular Microenvironment , Humans , Immunity, Cellular , Th1 Cells/immunology
17.
J Immunol ; 202(5): 1321-1329, 2019 03 01.
Article in English | MEDLINE | ID: mdl-30782851

ABSTRACT

Tuft cells were first discovered in epithelial barriers decades ago, but their function remained unclear until recently. In the last 2 years, a series of studies has provided important advances that link tuft cells to infectious diseases and the host immune responses. Broadly, a model has emerged in which tuft cells use chemosensing to monitor their surroundings and translate environmental signals into effector functions that regulate immune responses in the underlying tissue. In this article, we review the current understanding of tuft cell immune function in the intestines, airways, and thymus. In particular, we discuss the role of tuft cells in type 2 immunity, norovirus infection, and thymocyte development. Despite recent advances, many fundamental questions about the function of tuft cells in immunity remain to be answered.


Subject(s)
Immunity, Mucosal/immunology , Intestinal Mucosa/cytology , Intestinal Mucosa/immunology , Animals , Humans , Surface Properties
18.
Nat Immunol ; 9(10): 1171-8, 2008 Oct.
Article in English | MEDLINE | ID: mdl-18724372

ABSTRACT

Inflammasomes are cytosolic multiprotein complexes that sense microbial infection and trigger cytokine production and cell death. However, the molecular components of inflammasomes and what they sense remain poorly defined. Here we demonstrate that 35 amino acids of the carboxyl terminus of flagellin triggered inflammasome activation in the absence of bacterial contaminants or secretion systems. To further elucidate the host flagellin-sensing pathway, we generated mice deficient in the intracellular sensor Naip5. These mice failed to activate the inflammasome in response to the 35 amino acids of flagellin or in response to Legionella pneumophila infection. Our data clarify the molecular basis for the cytosolic response to flagellin.


Subject(s)
Flagellin/immunology , Macrophages/immunology , Multiprotein Complexes/immunology , Neuronal Apoptosis-Inhibitory Protein/immunology , Amino Acid Motifs/immunology , Animals , Apoptosis Regulatory Proteins/immunology , Apoptosis Regulatory Proteins/metabolism , Calcium-Binding Proteins/immunology , Calcium-Binding Proteins/metabolism , Cytosol , Enzyme-Linked Immunosorbent Assay , Flagellin/chemistry , Immunoblotting , Legionella pneumophila/immunology , Legionnaires' Disease/immunology , Macrophages/microbiology , Mice , Neuronal Apoptosis-Inhibitory Protein/genetics , Toll-Like Receptor 5/immunology , Toll-Like Receptor 5/metabolism , Transduction, Genetic
19.
Nature ; 502(7470): 245-8, 2013 Oct 10.
Article in English | MEDLINE | ID: mdl-24037376

ABSTRACT

Eosinophils are specialized myeloid cells associated with allergy and helminth infections. Blood eosinophils demonstrate circadian cycling, as described over 80 years ago, and are abundant in the healthy gastrointestinal tract. Although a cytokine, interleukin (IL)-5, and chemokines such as eotaxins mediate eosinophil development and survival, and tissue recruitment, respectively, the processes underlying the basal regulation of these signals remain unknown. Here we show that serum IL-5 levels are maintained by long-lived type 2 innate lymphoid cells (ILC2) resident in peripheral tissues. ILC2 cells secrete IL-5 constitutively and are induced to co-express IL-13 during type 2 inflammation, resulting in localized eotaxin production and eosinophil accumulation. In the small intestine where eosinophils and eotaxin are constitutive, ILC2 cells co-express IL-5 and IL-13; this co-expression is enhanced after caloric intake. The circadian synchronizer vasoactive intestinal peptide also stimulates ILC2 cells through the VPAC2 receptor to release IL-5, linking eosinophil levels with metabolic cycling. Tissue ILC2 cells regulate basal eosinophilopoiesis and tissue eosinophil accumulation through constitutive and stimulated cytokine expression, and this dissociated regulation can be tuned by nutrient intake and central circadian rhythms.


Subject(s)
Eosinophils/metabolism , Homeostasis , Lymphocytes/metabolism , Animals , Cells, Cultured , Circadian Rhythm , Collagen/metabolism , Eosinophils/immunology , Eosinophils/parasitology , Female , Gene Expression Regulation , Interleukin-13/genetics , Interleukin-13/metabolism , Interleukin-5/blood , Interleukin-5/genetics , Interleukin-5/metabolism , Lung/immunology , Lung/metabolism , Lung/parasitology , Lymphocytes/immunology , Lymphocytes/parasitology , Male , Mice , Mice, Inbred C57BL , Nippostrongylus/physiology , Strongylida Infections/immunology
20.
Nature ; 490(7418): 107-11, 2012 Oct 04.
Article in English | MEDLINE | ID: mdl-22902502

ABSTRACT

Detection of microbial products by host inflammasomes is an important mechanism of innate immune surveillance. Inflammasomes activate the caspase-1 (CASP1) protease, which processes the cytokines interleukin (IL)-1ß and IL-18, and initiates a lytic host cell death called pyroptosis. To identify novel CASP1 functions in vivo, we devised a strategy for cytosolic delivery of bacterial flagellin, a specific ligand for the NAIP5 (NLR family, apoptosis inhibitory protein 5)/NLRC4 (NLR family, CARD-domain-containing 4) inflammasome. Here we show that systemic inflammasome activation by flagellin leads to a loss of vascular fluid into the intestine and peritoneal cavity, resulting in rapid (less than 30 min) death in mice. This unexpected response depends on the inflammasome components NAIP5, NLRC4 and CASP1, but is independent of the production of IL-1ß or IL-18. Instead, inflammasome activation results, within minutes, in an 'eicosanoid storm'--a pathological release of signalling lipids, including prostaglandins and leukotrienes, that rapidly initiate inflammation and vascular fluid loss. Mice deficient in cyclooxygenase-1, a critical enzyme in prostaglandin biosynthesis, are resistant to these rapid pathological effects of systemic inflammasome activation by either flagellin or anthrax lethal toxin. Inflammasome-dependent biosynthesis of eicosanoids is mediated by the activation of cytosolic phospholipase A(2) in resident peritoneal macrophages, which are specifically primed for the production of eicosanoids by high expression of eicosanoid biosynthetic enzymes. Our results therefore identify eicosanoids as a previously unrecognized cell-type-specific signalling output of the inflammasome with marked physiological consequences in vivo.


Subject(s)
Eicosanoids/biosynthesis , Inflammasomes/metabolism , Animals , Antigens, Bacterial/chemistry , Antigens, Bacterial/genetics , Antigens, Bacterial/metabolism , Apoptosis Regulatory Proteins/deficiency , Apoptosis Regulatory Proteins/metabolism , Bacterial Toxins/chemistry , Bacterial Toxins/genetics , Bacterial Toxins/metabolism , Body Fluids/metabolism , Body Temperature , Calcium Signaling , Calcium-Binding Proteins/deficiency , Calcium-Binding Proteins/metabolism , Capillary Permeability , Caspase 1/deficiency , Caspase 1/metabolism , Cyclooxygenase 1/deficiency , Cytosol/metabolism , Death , Eicosanoids/metabolism , Female , Flagellin/genetics , Flagellin/immunology , Flagellin/metabolism , Fluid Shifts , Hematocrit , Immunity, Innate/immunology , Inflammation/immunology , Inflammation/metabolism , Inflammation/pathology , Interleukin-18 , Interleukin-1beta , Intestinal Mucosa/metabolism , Legionella pneumophila , Macrophages, Peritoneal/immunology , Male , Mice , Mice, Inbred C57BL , Neuronal Apoptosis-Inhibitory Protein/deficiency , Neuronal Apoptosis-Inhibitory Protein/metabolism , Peritoneal Cavity , Peritoneal Lavage , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Salmonella Infections/immunology , Salmonella typhimurium/immunology , Time Factors
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