Group 2 innate lymphoid cells (ILC2s) support tissue homeostasis and type 2 inflammation. ILC2s, which are found in many tissues, adapt to local cues to perform tissue-specific functions. Intestinal ILC2s rapidly respond to helminth and protozoan infections via cross-talk with tuft cells, but the mechanism guiding this adaptation remains unclear. Here, we identify Notch signaling, triggered by the ligand Delta-like 1 on goblet cells, as a key regulator of gut ILC2 specialization in mice. Loss of the Notch signaling protein RBPJ did not impair ILC2 development but altered the expression of interleukin-33 (IL-33) and IL-25 receptors (ST2 and IL-17RB, respectively) on gut ILC2s. This increased sensitivity to IL-33, promoted IL-5 and IL-13 production, and drove the expansion of gut eosinophils and goblet cells. Moreover, RBPJ-deficient ILC2s failed to respond to tuft cell-derived IL-25 after Tritrichomonas musculis colonization. Thus, RBPJ-dependent Notch responsiveness in ILC2s regulates intestinal tissue adaptation and primes the tuft cell-ILC2 circuit for intestinal homeostasis.
The underlying mechanisms used by the intestinal microbiota to shape disease outcomes of the host are poorly understood. Here, we show that the gut commensal protozoan, Tritrichomonas musculis (T.mu), remotely shapes the lung immune landscape to facilitate perivascular shielding of the airways by eosinophils. Lung-specific eosinophilia requires a tripartite immune network between gut-derived inflammatory group 2 innate lymphoid cells and lung-resident T cells and B cells. This network exacerbates the severity of allergic airway inflammation while hindering the systemic dissemination of pulmonary Mycobacterium tuberculosis. The identification of protozoan DNA sequences in the sputum of patients with severe allergic asthma further emphasizes the relevance of commensal protozoa in human disease. Collectively, these findings demonstrate that a commensal protozoan tunes pulmonary immunity via a gut-operated lung immune network, promoting both beneficial and detrimental disease outcomes in response to environmental airway allergens and pulmonary infections.
Commensal protists and gut bacterial communities exhibit complex relationships, mediated at least in part through host immunity. To improve our understanding of this tripartite interplay, we investigated community and functional dynamics between the murine protist Tritrichomonas musculus ( T. mu ) and intestinal bacteria in healthy and B cell-deficient mice. We identified dramatic, protist-driven remodeling of resident microbiome growth and activities, in parallel with T. mu functional changes, accelerated in the absence of B cells. Metatranscriptomic data revealed nutrient-based competition between bacteria and the protist. Single cell transcriptomics identified distinct T. mu life stages, providing new evidence for trichomonad sexual replication and the formation of pseudocysts. Unique cell states were validated in situ through microscopy and flow cytometry. Our results reveal complex microbial dynamics during the establishment of a commensal protist in the gut, and provide valuable datasets to drive future mechanistic studies.
Immunoglobulin (Ig) A supports mucosal immune homeostasis and host-microbiota interactions. While commensal bacteria are known for their ability to promote IgA, the role of non-bacterial commensal microbes in the induction of IgA remains elusive. Here, we demonstrate that permanent colonization with the protozoan commensal Tritrichomonas musculis (T.mu) promotes T cell-dependent, IgA class-switch recombination, and intestinal accumulation of IgA-secreting plasma cells (PC). T.mu colonization specifically drives the expansion of T follicular helper cells and a unique ICOS+ non-Tfh cell population, accompanied by an increase in germinal center B cells. Blockade of ICOS:ICOSL co-stimulation or MHCII-expression on B cells is central for the induction of IgA following colonization by T.mu, implicating a previously underappreciated mode of IgA induction following protozoan commensal colonization. Finally, T.mu further improves the induction of IgA-secreting PC specific to orally ingested antigens and their peripheral dissemination, identifying T.mu as a "natural adjuvant" for IgA. Collectively, these findings propose a protozoa-driven mode of IgA induction to support intestinal immune homeostasis.
Maintaining macrophage (MΦ) heterogeneity is critical to ensure intestinal tissue homeostasis and host defense. The gut microbiota and host factors are thought to synergistically guide intestinal MΦ development, although the exact nature, regulation, and location of such collaboration remain unclear. Here, we report that microbial biochemical energy metabolism promotes colony-stimulating factor 2 (CSF2) production by group 3 innate lymphoid cells (ILC3s) within solitary isolated lymphoid tissues (SILTs) in a cell-extrinsic, NLRP3/P2X7R-dependent fashion in the steady state. Tissue-infiltrating monocytes accumulating around SILTs followed a spatially constrained, distinct developmental trajectory into SILT-associated MΦs (SAMs). CSF2 regulated the mitochondrial membrane potential and reactive oxygen species production of SAMs and contributed to the antimicrobial defense against enteric bacterial infections. Collectively, these findings identify SILTs and CSF2-producing ILC3s as a microanatomic niche for intestinal MΦ development and functional programming fueled by the integration of commensal microbial energy metabolism.
A preprint by Ramanan et al. examines the roles of accessory transcription factors in regulating subsets of colonic regulatory T cells, independently of the microbiota and T cell specificity.
The gut microbiome influences chronic inflammation of the airways via the gut-lung axis. However, causal connections between microbes and their host, including the underlying mechanisms for this phenomenon remain largely unknown. Here, we show that colonization with the gut commensal protozoa, Tritrichomonas musculis ( T.mu ), remotely shapes the lung immune landscape and exacerbates allergic airway inflammation. We demonstrate that colonization with T. mu mediates the T and B cell-dependent accumulation and activation of inflammatory group 2 innate lymphoid cells in the lungs to constitute a tripartite immune network that serves as a niche for lung eosinophils. Animals colonized with T.mu show severely exacerbated allergic inflammation in the airways and reveal a new protozoan-driven gut-lung axis that remotely shapes the lung immune network to potentiate chronic pulmonary inflammation. One-Sentence Summary A gut microbe exacerbates asthma severity by promoting lung eosinophilia through a tripartite lymphocyte immune network.
Commensal intestinal protozoa, unlike their pathogenic relatives, are neglected members of the mammalian microbiome. These microbes have a significant impact on the host's intestinal immune homeostasis, typically by elevating anti-microbial host defense. Tritrichomonas musculis, a protozoan gut commensal, strengthens the intestinal host defense against enteric Salmonella infections through Asc- and Il1r1-dependent Th1 and Th17 cell activation. However, the underlying inflammasomes mediating this effect remain unknown. In this study, we report that colonization with T. musculis results in an increase in luminal extracellular ATP that is followed by increased caspase activity, higher cell death, elevated levels of IL-1β, and increased numbers of IL-18 receptor-expressing Th1 and Th17 cells in the colon. Mice deficient in either Nlrp1b or Nlrp3 failed to display these protozoan-driven immune changes and lost resistance to enteric Salmonella infections even in the presence of T. musculis These findings demonstrate that T. musculis-mediated host protection requires sensors of extracellular and intracellular ATP to confer resistance to enteric Salmonella infections.
Summary Maintaining intestinal macrophage (MP) heterogeneity is critical to ensure tissue homeostasis and host defense. The gut microbiota and host factors are thought to synergistically shape colonic MP development, although there remains a fundamental gap in our understanding of the details of such collaboration. Here, we report tertiary lymphoid organs (TLOs), enriched in group 3 innate lymphoid cells (ILC3s), as a microbiota-operated intestinal niche for the development of monocyte-derived MPs. ILC3-derived colony stimulating factor 2 (CSF2) serves as a developmental and functional determinant for MPs and required microbe-derived extracellular adenosine 5’-triphosphate (ATP) as a trigger. Microbial communities rich in extracellular ATP promoted MP turnover via ILC3 activity in an NLRP3-dependent fashion. Single cell RNA-sequencing of MPs revealed unique TLO-associated, CSF2-dependent MP populations critical for anti-microbial defense against enteric infection. Collectively, these findings describe a fundamental framework that constitutes an intestinal MP niche fueled by microbial energy metabolism.
ABSTRACT Immunoglobulin(Ig) A antibodies are the most abundant antibodies supporting mucosal immune homeostasis and host-microbiota interactions. Driven by gut commensal microbes, IgA-secreting plasma cells (PC) differentiate through T cell-dependent (Td) or T cell independent (Ti) mechanisms. While commensal bacteria within the microbiota are known for their ability to promote IgA, the role of non-bacterial commensal microbes on the induction of IgA remains elusive. Here, we demonstrate that permanent colonization with the protozoan commensal Tritrichomonas musculis ( T.mu ) promotes T-cell dependent, IgA class-switch recombination and intestinal accumulation of IgA-secreting PC. T.mu colonization specifically drives the expansion of T follicular helper cells and a unique ICOS + non-Tfh cell population, accompanied by an increase in germinal center B cells. Blockade of ICOS:ICOSL co-stimulation or MHCII-expression on B cells are central for the induction of IgA following colonization by T.mu , implicating a previously underappreciated mode of IgA induction following protozoan commensal colonization. Finally, the commensal T.mu further improves the induction of IgA-secreting plasma cells and their peripheral dissemination, even against non-protozoan, orally ingested antigens, identifying T.mu as natural adjuvant for IgA. Collectively, these findings propose a previously unknown, protozoa-driven mode of IgA induction that supports intestinal immune homeostasis even against non-microbial antigens.
Infectious and inflammatory diseases in the intestine remain a serious threat for patients world-wide. Reprogramming of the intestinal epithelium towards a protective effector state is important to manage inflammation and immunity and can be therapeutically targeted. The role of epigenetic regulatory enzymes within these processes is not yet defined. Here, we use a mouse model that has an intestinal-epithelial specific deletion of the histone demethylase Lsd1 (cKO mice), which maintains the epithelium in a fixed reparative state. Challenge of cKO mice with bacteria-induced colitis or a helminth infection model both resulted in increased pathogenesis. Mechanistically, we discovered that LSD1 is important for goblet cell maturation and goblet-cell effector molecules such as RELMß. We propose that this may be in part mediated by directly controlling genes that facilitate cytoskeletal organization, which is important in goblet cell biology. This study therefore identifies intestinal-epithelial epigenetic regulation by LSD1 as a critical element in host protection from infection.
The intestinal tract is the target organ of most parasitic infections, including those by helminths and protozoa. These parasites elicit prototypical type 2 immune activation in the host's immune system with striking impact on the local tissue microenvironment. Despite local containment of these parasites within the intestinal tract, parasitic infections also mediate immune adaptation in peripheral organs. In this review, we summarize the current knowledge on how such gut-tissue axes influence important immune-mediated resistance and disease tolerance in the context of coinfections, and elaborate on the implications of parasite-regulated gut-lung and gut-brain axes on the development and severity of airway inflammation and central nervous system diseases.
Infectious and inflammatory diseases in the intestine remain a serious threat for patients world-wide. Reprogramming of the intestinal epithelium towards a protective effector state is important to manage inflammation and immunity. The role of epigenetic regulatory enzymes within these processes is not yet defined. Here, we use a mouse model that has an intestinal-epithelial specific deletion of the histone demethylase Lsd1 (cKO mice), which maintains the epithelium in a fixed reparative state. Challenge of cKO mice with chemical-induced colitis, bacteria-induced colitis, and a helminth infection model all resulted in increased pathogenesis. Mechanistically, we discovered that LSD1 directly controls genes that facilitate cytoskeletal organization, and that this is relevant for epithelial attachment as well as for goblet-cell specific effector responses.This study therefore identifies intestinal-epithelial epigenetic regulation by LSD1 as a critical element in host protection from inflammation and infection. ### Competing Interest Statement The authors have declared no competing interest.
The intestinal tract is home to trillions of microbes that make up the gut microbiota and is a major source of environmental antigens that can be derived from food, commensal microorganisms, and potential pathogens. Amidst this complex environment, myeloid cells, including macrophages (MPs) and dendritic cells (DCs), are key immunological sentinels that locally maintain both tissue and immune homeostasis. Recent research has revealed substantial functional and developmental heterogeneity within the intestinal DC and MP compartments, with evidence pointing to their regulation by the microbiota. DCs are classically divided into three subsets based on their CD103 and CD11b expression: CD103+CD11b-(XCR1+) cDC1s, CD103+CD11b+ cDC2s, and CD103-CD11b+ cDC2s. Meanwhile, mature gut MPs have recently been classified by their expression of Tim-4 and CD4 into a long-lived, self-maintaining Tim-4+CD4+ population and short-lived, monocyte-derived Tim-4-CD4+ and Tim-4-CD4- populations. In this chapter, we provide experimental procedures to classify and isolate these myeloid subsets from the murine intestinal lamina propria for functional characterization.
Group 2 innate lymphoid cells (ILC2s) are a member of the ILC family and are involved in protective and pathogenic type 2 responses. Recent research has highlighted their involvement in modulating tissue and immune homeostasis during health and disease and has uncovered critical signaling circuits. While interactions of ILC2s with the bacterial microbiome are rather sparse, other microbial members of our microbiome, including helminths and protozoans, reveal new and exciting mechanisms of tissue regulation by ILC2s. Here we summarize the current field on ILC2 activation by the tissue and immune environment and highlight particularly new intriguing pathways of ILC2 regulation by protozoan commensals in the intestinal tract.
(Cell 176, 610–624.e1–e18; January 24, 2019) We have identified four minor errors in the originally published version of this article: (1) We inadvertently left out the contributions of Leslie Y.T. Leung in the Author Contributions section. This has now been added.(2) Table S2 lists clinical and epidemiological data of MS patients. In Table S2, we inputted patient RRMS_6 as “Treatment naive” but they should have been entered as “Off Treatment”. This does not affect interpretation of the results. The Table has been corrected and the “n” reported in the methods updated.(3) Figure S7 describes IL10 production in BAFF-Tg mice. Although the statistical significance between WT and BAFF-Tg+/+ IgA+IL10+ cells for Figure S7H was correctly described in the text, the p value indicator in the figure was inadvertently moved to the left. This does not affect interpretation of the results and has been corrected.(4) Figure 2 presents data that show that IgA plasma cells are reduced in the gut during EAE. We inadvertently placed an incorrect graph into Figure 2B. We have addressed this by replacing it with the correct graph. Given the extremely close resemblance between the incorrect and correct graphs, as well as the correct placement of additional supportive data in Figure 2, this error does not affect interpretation of the results.The authors apologize for any confusion these errors may have caused.[Figure presented]
Circadian clock proteins BMAL1 and REV-ERBα harmonize the development and function of ILC3 (see related articles by Teng et al. and Wang et al. ).
Tissue-resident immune cells like innate lymphoid cells (ILCs) are regulators of local immunity and tissue homeostasis. Similar to Natural Killer (NK) cells, ILCs express germline-encoded natural cytotoxicity receptors (NCRs) that facilitate the rapid execution of effector functions. Recent advances using transgenic animal models have further uncovered the developmental, transcriptional, epigenetic, and functional differences between members of the ILC family. Isolation of ILCs, which are particularly enriched in non-lymphoid tissues, can often be challenging and time consuming. Here, we provide a simple and rapid protocol for the isolation of NK cells and ILCs from murine intestinal tissues. This protocol is suitable for Fluorescence Activated Cell Sorting (FACS) and intracellular analysis of cytokine and transcription factor expression using flow and mass cytometry.
The transient receptor potential (TRP) family is a large family of widely expressed ion channels that regulate the intracellular concentration of ions and metals and respond to various chemical and physical stimuli. TRP subfamily M member 7 (TRPM7) is unusual in that it contains both an ion channel and a kinase domain. TRPM7 is a divalent cation channel with preference for Ca 2+ and Mg 2+ . It is required for the survival of DT40 cells, a B cell line; however, deletion of TRPM7 in T cells does not impair their development. We found that expression of TRPM7 was required for B cell development in mice. Mice that lacked TRPM7 in B cells failed to generate peripheral B cells because of a developmental block at the pro-B cell stage. The loss of TRPM7 kinase activity alone did not affect the proportion of peripheral mature B cells or the development of B cells in the bone marrow. However, supplementation with a high concentration of extracellular Mg 2+ partially rescued the development of TRPM7-deficient B cells in vitro. Thus, our findings identify a critical role for TRPM7 ion channel activity in B cell development.
Innate lymphoid cells (ILCs) are an essential component of the innate immune system in vertebrates. They are developmentally rooted in the lymphoid lineage and can diverge into at least three transcriptionally distinct lineages. ILCs seed both lymphoid and non-lymphoid tissues and are locally self-maintained in tissue-resident pools. Tissue-resident ILCs execute important effector functions making them key regulator in tissue homeostasis, repair, remodeling, microbial defense, and anti-tumor immunity. Similar to T lymphocytes, ILCs possess only few sensory elements for the recognition of non-self and thus depend on extrinsic cellular sensory elements residing within the tissue. Myeloid cells, including mononuclear phagocytes (MNPs), are key sentinels of the tissue and are able to translate environmental cues into an effector profile that instructs lymphocyte responses. The adaptation of myeloid cells to the tissue state thus influences the effector program of ILCs and serves as an example of how environmental signals are integrated into the function of ILCs via a tissue-resident immune cell cross talks. This review summarizes our current knowledge on the role of myeloid cells in regulating ILC functions and discusses how feedback communication between ILCs and myeloid cells contribute to stabilize immune homeostasis in order to maintain the healthy state of an organ.