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result(s) for
"mucosal-associated invariant T cells"
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MAIT cells launch a rapid, robust and distinct hyperinflammatory response to bacterial superantigens and quickly acquire an anergic phenotype that impedes their cognate antimicrobial function: Defining a novel mechanism of superantigen-induced immunopathology and immunosuppression
2017
Superantigens (SAgs) are potent exotoxins secreted by Staphylococcus aureus and Streptococcus pyogenes. They target a large fraction of T cell pools to set in motion a \"cytokine storm\" with severe and sometimes life-threatening consequences typically encountered in toxic shock syndrome (TSS). Given the rapidity with which TSS develops, designing timely and truly targeted therapies for this syndrome requires identification of key mediators of the cytokine storm's initial wave. Equally important, early host responses to SAgs can be accompanied or followed by a state of immunosuppression, which in turn jeopardizes the host's ability to combat and clear infections. Unlike in mouse models, the mechanisms underlying SAg-associated immunosuppression in humans are ill-defined. In this work, we have identified a population of innate-like T cells, called mucosa-associated invariant T (MAIT) cells, as the most powerful source of pro-inflammatory cytokines after exposure to SAgs. We have utilized primary human peripheral blood and hepatic mononuclear cells, mouse MAIT hybridoma lines, HLA-DR4-transgenic mice, MAIThighHLA-DR4+ bone marrow chimeras, and humanized NOD-scid IL-2Rγnull mice to demonstrate for the first time that: i) mouse and human MAIT cells are hyperresponsive to SAgs, typified by staphylococcal enterotoxin B (SEB); ii) the human MAIT cell response to SEB is rapid and far greater in magnitude than that launched by unfractionated conventional T, invariant natural killer T (iNKT) or γδ T cells, and is characterized by production of interferon (IFN)-γ, tumor necrosis factor (TNF)-α and interleukin (IL)-2, but not IL-17A; iii) high-affinity MHC class II interaction with SAgs, but not MHC-related protein 1 (MR1) participation, is required for MAIT cell activation; iv) MAIT cell responses to SEB can occur in a T cell receptor (TCR) Vβ-specific manner but are largely contributed by IL-12 and IL-18; v) as MAIT cells are primed by SAgs, they also begin to develop a molecular signature consistent with exhaustion and failure to participate in antimicrobial defense. Accordingly, they upregulate lymphocyte-activation gene 3 (LAG-3), T cell immunoglobulin and mucin-3 (TIM-3), and/or programmed cell death-1 (PD-1), and acquire an anergic phenotype that interferes with their cognate function against Klebsiella pneumoniae and Escherichia coli; vi) MAIT cell hyperactivation and anergy co-utilize a signaling pathway that is governed by p38 and MEK1/2. Collectively, our findings demonstrate a pathogenic, rather than protective, role for MAIT cells during infection. Furthermore, we propose a novel mechanism of SAg-associated immunosuppression in humans. MAIT cells may therefore provide an attractive therapeutic target for the management of both early and late phases of severe SAg-mediated illnesses.
Journal Article
γδ T cells in homeostasis and host defence of epithelial barrier tissues
by
Nielsen, Morten M.
,
Witherden, Deborah A.
,
Havran, Wendy L.
in
631/250/1619/554/2509
,
631/250/347
,
692/698/2741/2135
2017
Key Points
Although sparse among circulating T cells, certain subsets of γδ T cells are present in much higher numbers, constituting between 10 and 100% of the T cells in epithelial tissues, such as the epidermis of the skin and the gastrointestinal tract, and show unique effector functions.
Epithelial-resident γδ T cells have vital roles in tissue homeostasis and re-epithelialization following tissue damage and are thus crucial to the upkeep of epithelial barrier function and host survival.
New co-stimulating receptor–ligand pairs have been identified that drive the activation and effector function of epithelial-resident γδ T cells and the timely return to steady-state conditions following tissue injury.
Butyrophilin-like (BTNL) molecules are part of the B7 family of accessory molecules, and immune-modulatory functions for individual BTNL molecules exist in both humans and mice. Although the precise mechanism remains unknown, the specific expression of individual BTNL family members in epithelial tissues selectively shapes and expands epithelial-specific γδ T cell repertoires.
Epithelial-resident γδ T cell subsets are uniquely positioned to mediate host microbial tolerance while at the same time retaining the ability to mount a rapid response against invading pathogens and thus provide early protection against pathogen entry.
γδ T cells are found mainly in epithelial tissues, where they have crucial roles in tissue homeostasis and repair. Here, the authors describe how γδ T cells are activated and regulated in epithelial tissues, such as the skin and intestine, to mediate host microbial tolerance and provide protection against infection.
Epithelial surfaces line the body and provide a crucial interface between the body and the external environment. Tissue-resident epithelial γδ T cells represent a major T cell population in the epithelial tissues and are ideally positioned to carry out barrier surveillance and aid in tissue homeostasis and repair. In this Review, we focus on the intraepithelial γδ T cell compartment of the two largest epithelial tissues in the body — namely, the epidermis and the intestine — and provide a comprehensive overview of the crucial contributions of intraepithelial γδ T cells to tissue integrity and repair, host homeostasis and protection in the context of the symbiotic relationship with the microbiome and during pathogen clearance. Finally, we describe epithelium-specific butyrophilin-like molecules and briefly review their emerging role in selectively shaping and regulating epidermal and intestinal γδ T cell repertoires.
Journal Article
Oral Selective TLR8 Agonist Selgantolimod Induces Multiple Immune Cell Responses in Humans
by
Chen, Diana
,
Poonia, Bhawna
,
Dwivedi, Ankit
in
activation marker
,
Acute effects
,
Adaptive Immunity - drug effects
2021
TLR8 agonists have the potential for use as immunomodulatory components in therapeutic modalities for viral infections such as chronic HBV (CHB) and HIV. In this study, using peripheral blood samples from a phase 1a clinical trial, we examined the acute effects of a single oral administration of a selective TLR8 agonist on immune cell phenotypes. Administration of the TLR8 agonist selgantolimod (SLGN) in healthy individuals resulted in alteration in frequencies of peripheral blood monocytes, pDCs, mDCs and MAIT cells. Frequencies of mDCs and lymphoid cells significantly reduced after 8 h of SLGN administration, whereas pDC frequencies significantly increased, with changes possibly reflecting migration of different cell types between peripheral and tissue compartments in response to the agonist. Myeloid cell activation was evident by an upregulated expression of co-stimulatory molecules CD40 and CD86 accompanied by the production of IL-6 and IL-18 from these cells. Concomitantly, there was induction of the early activation marker CD69 on innate and adaptive lymphoid cells, including MAIT and NK cell subsets. Further, these activated lymphoid cells had enhanced expression of the effector molecules granzyme B and perforin. Microarray analysis of isolated lymphocytes and monocytes from baseline and post-SLGN treatment revealed changes in expression of genes involved in cellular response to cytokine stimulus, innate immune response, myeloid cell differentiation and antigen receptor-mediated signaling pathway. In a preliminary analysis of samples from CHB patients treated with selgantolimod, activation of innate and adaptive lymphocytes was evident. In conclusion, this first in-human study shows that selgantolimod administration in humans results in activation of multiple immune cell responses with antiviral potential.
Journal Article
MAIT cells protect against pulmonary Legionella longbeachae infection
2018
Mucosal associated invariant T (MAIT) cells recognise conserved microbial metabolites from riboflavin synthesis. Striking evolutionary conservation and pulmonary abundance implicate them in antibacterial host defence, yet their functions in protection against clinically important pathogens are unknown. Here we show that mouse
Legionella
longbeachae
infection induces MR1-dependent MAIT cell activation and rapid pulmonary accumulation of MAIT cells associated with immune protection detectable in immunocompetent host animals. MAIT cell protection is more evident in mice lacking CD4
+
cells, and adoptive transfer of MAIT cells rescues immunodeficient
Rag2
−/−
γC
−/−
mice from lethal
Legionella
infection. Protection is dependent on MR1, IFN-γ and GM-CSF, but not IL-17A, TNF or perforin, and enhanced protection is detected earlier after infection of mice antigen-primed to boost MAIT cell numbers before infection. Our findings define a function for MAIT cells in protection against a major human pathogen and indicate a potential role for vaccination to enhance MAIT cell immunity.
Mucosal associated invariant T (MAIT) cells have been implicated in antibacterial responses. Here the authors show MAIT cells confer IFN-γ-mediated protection from lethal infection in a mouse model of
Legionella
infection, which can be enhanced by synthetic MR1 ligands.
Journal Article
Drugs and drug-like molecules can modulate the function of mucosal-associated invariant T cells
2017
Mucosal-associated invariant T cells recognize vitamin-B-derived ligands presented via the major-histocompatibility-complex-like molecule MR1. Rossjohn and colleagues demonstrate that these cells recognize a wide variety of ligands, some derived from common drugs, in an agonist or antagonist manner.
The major-histocompatibility-complex-(MHC)-class-I-related molecule MR1 can present activating and non-activating vitamin-B-based ligands to mucosal-associated invariant T cells (MAIT cells). Whether MR1 binds other ligands is unknown. Here we identified a range of small organic molecules, drugs, drug metabolites and drug-like molecules, including salicylates and diclofenac, as MR1-binding ligands. Some of these ligands inhibited MAIT cells
ex vivo
and
in vivo
, while others, including diclofenac metabolites, were agonists. Crystal structures of a T cell antigen receptor (TCR) from a MAIT cell in complex with MR1 bound to the non-stimulatory and stimulatory compounds showed distinct ligand orientations and contacts within MR1, which highlighted the versatility of the MR1 binding pocket. The findings demonstrated that MR1 was able to capture chemically diverse structures, spanning mono- and bicyclic compounds, that either inhibited or activated MAIT cells. This indicated that drugs and drug-like molecules can modulate MAIT cell function in mammals.
Journal Article
CXCL16 Stimulates Antigen-Induced MAIT Cell Accumulation but Trafficking During Lung Infection Is CXCR6-Independent
2020
Mucosa-associated invariant T (MAIT) cells are a unique T cell subset that contributes to protective immunity against microbial pathogens, but little is known about the role of chemokines in recruiting MAIT cells to the site of infection. Pulmonary infection with
live vaccine strain (LVS) stimulates the accrual of large numbers of MAIT cells in the lungs of mice. Using this infection model, we find that MAIT cells are predominantly CXCR6
but do not require CXCR6 for accumulation in the lungs. However, CXCR6 does contribute to long-term retention of MAIT cells in the airway lumen after clearance of the infection. We also find that MAIT cells are not recruited from secondary lymphoid organs and largely proliferate
in the lungs after infection. Nevertheless, the only known ligand for CXCR6, CXCL16, is sufficient to drive MAIT cell accumulation in the lungs in the absence of infection when administered in combination with the MAIT cell antigen 5-OP-RU. Overall, this new data advances the understanding of mechanisms that facilitate MAIT cell accumulation and retention in the lungs.
Journal Article
Mucosa-associated invariant T cells link intestinal immunity with antibacterial immune defects in alcoholic liver disease
2018
Background/aimsIntestinal permeability with systemic distribution of bacterial products are central in the immunopathogenesis of alcoholic liver disease (ALD), yet links with intestinal immunity remain elusive. Mucosa-associated invariant T cells (MAIT) are found in liver, blood and intestinal mucosa and are a key component of antibacterial host defences. Their role in ALD is unknown.Methods/designWe analysed frequency, phenotype, transcriptional regulation and function of blood MAIT cells in severe alcoholic hepatitis (SAH), alcohol-related cirrhosis (ARC) and healthy controls (HC). We also examined direct impact of ethanol, bacterial products from faecal extracts and antigenic hyperstimulation on MAIT cell functionality. Presence of MAIT cells in colon and liver was assessed by quantitative PCR and immunohistochemistry/gene expression respectively.ResultsIn ARC and SAH, blood MAIT cells were dramatically depleted, hyperactivated and displayed defective antibacterial cytokine/cytotoxic responses. These correlated with suppression of lineage-specific transcription factors and hyperexpression of homing receptors in the liver with intrahepatic preservation of MAIT cells in ALD. These alterations were stronger in SAH, where surrogate markers of bacterial infection and microbial translocation were higher than ARC. Ethanol exposure in vitro, in vivo alcohol withdrawal and treatment with Escherichia coli had no effect on MAIT cell frequencies, whereas exposure to faecal bacteria/antigens induced functional impairments comparable with blood MAIT cells from ALD and significant MAIT cell depletion, which was not observed in other T cell compartments.ConclusionsIn ALD, the antibacterial potency of MAIT cells is compromised as a consequence of contact with microbial products and microbiota, suggesting that the ‘leaky’ gut observed in ALD drives MAIT cell dysfunction and susceptibility to infection in these patients.
Journal Article
MAIT cell clonal expansion and TCR repertoire shaping in human volunteers challenged with Salmonella Paratyphi A
2018
Mucosal-associated invariant T (MAIT) cells are innate-like T cells that can detect bacteria-derived metabolites presented on MR1. Here we show, using a controlled infection of humans with live
Salmonella enterica
serovar Paratyphi A, that MAIT cells are activated during infection, an effect maintained even after antibiotic treatment. At the peak of infection MAIT cell T-cell receptor (TCR)β clonotypes that are over-represented prior to infection transiently contract. Select MAIT cell TCRβ clonotypes that expand after infection have stronger TCR-dependent activation than do contracted clonotypes. Our results demonstrate that host exposure to antigen may drive clonal expansion of MAIT cells with increased functional avidity, suggesting a role for specific vaccination strategies to increase the frequency and potency of MAIT cells to optimize effector function.
Most MAIT cell response to infection studies are of mice. Here the authors characterize MAIT cell population responses to
Salmonella
Paratyphi A infection of 25 human volunteers using TCR clonotype analysis and mass cytometry of pre-infection matched to post-infection samples.
Journal Article
Thymic iNKT single cell analyses unmask the common developmental program of mouse innate T cells
2020
Most T lymphocytes leave the thymus as naïve cells with limited functionality. However, unique populations of innate-like T cells differentiate into functionally distinct effector subsets during their development in the thymus. Here, we profiled >10,000 differentiating thymic invariant natural killer T (iNKT) cells using single-cell RNA sequencing to produce a comprehensive transcriptional landscape that highlights their maturation, function, and fate decisions at homeostasis. Our results reveal transcriptional profiles that are broadly shared between iNKT and mucosal-associated invariant T (MAIT) cells, illustrating a common core developmental program. We further unmask a mutual requirement for
Hivep3
, a zinc finger transcription factor and adapter protein.
Hivep3
is expressed in early precursors and regulates the post-selection proliferative burst, differentiation and functions of iNKT cells. Altogether, our results highlight the common requirements for the development of innate-like T cells with a focus on how
Hivep3
impacts the maturation of these lymphocytes.
Innate-like T cells such as invariant natural killer T (iNKT) and mucosal-associated invariant T (MAIT) cells both develop in the thymus. Here the authors use single-cell RNA sequencing to show that mouse iNKT and MAIT share components of developmental regulation, with a transcription factor, Hivep3, implicated for the maturation of both cell types.
Journal Article
Estrogen Induced Regulation of Mucosal‐Associated Invariant T Cells in Asthma
by
Myers, Elizabeth J.
,
Cacioppo, Jackson G.
,
Paine, Robert
in
Adoptive transfer
,
Adult
,
Allergic diseases
2026
Asthma affects over 300 million people worldwide, with increasing rates annually. Males have higher asthma prevalence in adolescence, while females exhibit higher rates in adulthood. Reduced mucosal‐associated invariant T (MAIT) cells are found in severe asthmatic airway disease. We hypothesize MAIT cells modulate airway inflammation and are regulated by sex hormones through their cognate hormone receptors. We compared circulating MAIT cells and ex vivo MAIT cell activation with MR‐1 ligand in controls and asthmatic individuals. MAIT cells were significantly lower in asthmatic males and females compared to healthy controls. MAIT cells derived from male and female asthma patients exhibited higher levels of estrogen receptors (ERs) than those from sex‐matched healthy controls, and ex vivo treatment with estrogen significantly decreased IFN‐γ production in asthmatics. Estrogen treatment did not reduce IFN‐γ in MAIT cells from healthy individuals. To explore the effect of estrogen on MAIT cells, we used the murine Alternaria alternata challenge model. Adoptive transfer of G‐protein coupled ER (GPER‐1) antagonist (G36)‐treated MAIT cells into Rag1 knockout mice (Rag1 −/− ) increased A. alternata ‐induced inflammation compared to those receiving MAIT cells without GPER‐1 blockade. These findings suggest GPER‐1 as a novel target to reduce airway disease in the asthmatic population.
Journal Article