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1.
J Exp Med ; 221(4)2024 Apr 01.
Article En | MEDLINE | ID: mdl-38442268

T helper 2 (Th2) responses protect against pathogens while also driving allergic inflammation, yet how large-scale Th2 responses are generated in tissue context remains unclear. Here, we used quantitative imaging to investigate early Th2 differentiation within lymph nodes (LNs) following cutaneous allergen administration. Contrary to current models, we observed extensive activation and "macro-clustering" of early Th2 cells with migratory type-2 dendritic cells (cDC2s), generating specialized Th2-promoting microenvironments. Macro-clustering was integrin-mediated and promoted localized cytokine exchange among T cells to reinforce differentiation, which contrasted the behavior during Th1 responses. Unexpectedly, formation of Th2 macro-clusters was dependent on the site of skin sensitization. Differences between sites were driven by divergent activation states of migratory cDC2 from different dermal tissues, with enhanced costimulatory molecule expression by cDC2 in Th2-generating LNs promoting prolonged T cell activation, macro-clustering, and cytokine sensing. Thus, the generation of dedicated Th2 priming microenvironments through enhanced costimulatory molecule signaling initiates Th2 responses in vivo and occurs in a skin site-specific manner.


Cytokines , Inflammation , Humans , Cell Differentiation , Integrins , Lymph Nodes , Transcription Factors
2.
J Allergy Clin Immunol ; 153(2): 487-502.e9, 2024 Feb.
Article En | MEDLINE | ID: mdl-37956733

BACKGROUND: Allergic asthma is driven largely by allergen-specific TH2 cells, which develop in regional lymph nodes on the interaction of naive CD4+ T cells with allergen-bearing dendritic cells that migrate from the lung. This migration event is dependent on CCR7 and its chemokine ligand, CCL21. However, is has been unclear whether the other CCR7 ligand, CCL19, has a role in allergic airway disease. OBJECTIVE: This study sought to define the role of CCL19 in TH2 differentiation and allergic airway disease. METHODS: Ccl19-deficient mice were studied in an animal model of allergic asthma. Dendritic cells or fibroblastic reticular cells from wild-type and Ccl19-deficient mice were cultured with naive CD4+ T cells, and cytokine production was measured by ELISA. Recombinant CCL19 was added to CD4+ T-cell cultures, and gene expression was assessed by RNA-sequencing and quantitative PCR. Transcription factor activation was assessed by flow cytometry. RESULTS: Lungs of Ccl19-deficient mice had less allergic airway inflammation, reduced airway hyperresponsiveness, and less IL-4 and IL-13 production compared with lungs of Ccl19-sufficient animals. Naive CD4+ T cells cocultured with Ccl19-deficient dendritic cells or fibroblastic reticular cells produced lower amounts of type 2 cytokines than did T cells cocultured with their wild-type counterparts. Recombinant CCL19 increased phosphorylation of STAT5 and induced expression of genes associated with TH2 cell and IL-2 signaling pathways. CONCLUSIONS: These results reveal a novel, TH2 cell-inducing function of CCL19 in allergic airway disease and suggest that strategies to block this pathway might help to reduce the incidence or severity of allergic asthma.


Asthma , Hypersensitivity , Animals , Mice , Chemokine CCL19/genetics , Receptors, CCR7 , Ligands , Asthma/genetics , Inflammation/pathology , Lung , Hypersensitivity/metabolism , Allergens/metabolism , Cell Differentiation , Th2 Cells , Dendritic Cells
3.
bioRxiv ; 2023 Jul 08.
Article En | MEDLINE | ID: mdl-37461439

Formation of T helper 2 (Th2) responses has been attributed to low-grade T cell stimulation, yet how large-scale polyclonal Th2 responses are generated in vivo remains unclear. Here, we used quantitative imaging to investigate early Th2 differentiation within lymph nodes (LNs) following cutaneous allergen administration. Contrary to current models, Th2 differentiation was associated with enhanced T cell activation and extensive integrin-dependent 'macro-clustering' at the T-B border, which also contrasted clustering behavior seen during Th1 differentiation. Unexpectedly, formation of Th2 macro-clusters within LNs was highly dependent on the site of skin sensitization. Differences between sites were driven by divergent activation states of migratory cDC2 from different dermal tissues, with enhanced costimulatory molecule expression by cDC2 in Th2-generating LNs promoting T cell macro-clustering and cytokine sensing. Thus, generation of dedicated priming micro-environments through enhanced costimulatory molecule signaling initiates the generation of Th2 responses in vivo and occurs in a skin site-specific manner.

4.
Immunol Rev ; 306(1): 93-107, 2022 03.
Article En | MEDLINE | ID: mdl-34845729

Immune responses must be rapid, tightly orchestrated, and tailored to the encountered stimulus. Lymphatic vessels facilitate this process by continuously collecting immunological information (ie, antigens, immune cells, and soluble mediators) about the current state of peripheral tissues, and transporting these via the lymph across the lymphatic system. Lymph nodes (LNs), which are critical meeting points for innate and adaptive immune cells, are strategically located along the lymphatic network to intercept this information. Within LNs, immune cells are spatially organized, allowing them to efficiently respond to information delivered by the lymph, and to either promote immune homeostasis or mount protective immune responses. These responses involve the activation and functional cooperation of multiple distinct cell types and are tailored to the specific inflammatory conditions. The natural patterns of lymph flow can also generate spatial gradients of antigens and agonists within draining LNs, which can in turn further regulate innate cell function and localization, as well as the downstream generation of adaptive immunity. In this review, we explore how information transmitted by the lymph shapes the spatiotemporal organization of innate and adaptive immune responses in LNs, with particular focus on steady state and Type-I vs. Type-II inflammation.


Adaptive Immunity , Dendritic Cells , Antigens/metabolism , Cell Movement , Humans , Inflammation , Lymph Nodes
5.
Sci Immunol ; 6(56)2021 02 12.
Article En | MEDLINE | ID: mdl-33579750

Microanatomical organization of innate immune cells within lymph nodes (LNs) is critical for the generation of adaptive responses. In particular, steady-state LN-resident dendritic cells (Res cDCs) are strategically localized to intercept lymph-draining antigens. Whether myeloid cell organization changes during inflammation and how that might affect the generation of immune responses are unknown. Here, we report that during type I, but not type II, inflammation after adjuvant immunization or viral infection, antigen-presenting Res cDCs undergo CCR7-dependent intranodal repositioning from the LN periphery into the T cell zone (TZ) to elicit T cell priming. Concurrently, inflammatory monocytes infiltrate the LNs via local blood vessels, enter the TZ, and cooperate with Res cDCs by providing polarizing cytokines to optimize T cell effector differentiation. Monocyte infiltration is nonuniform across LNs, generating distinct microenvironments with varied local innate cell composition. These spatial microdomains are associated with divergent early T cell effector programming, indicating that innate microenvironments within LNs play a critical role in regulating the quality and heterogeneity of T cell responses. Together, our findings reveal that dynamic modulation of innate cell microenvironments during type I inflammation leads to optimized generation of adaptive immune responses to vaccines and infections.


Cell Communication/immunology , Cellular Microenvironment/immunology , Lymph Nodes/immunology , Strongylida Infections/immunology , T-Lymphocytes/immunology , Adoptive Transfer , Animals , Cell Movement/immunology , Dendritic Cells/immunology , Disease Models, Animal , Humans , Immunity, Innate , Inflammation/immunology , Inflammation/pathology , Lymph Nodes/cytology , Lymph Nodes/pathology , Lymphocyte Activation , Mice , Mice, Transgenic , Monocytes/immunology , Nippostrongylus/immunology , Strongylida Infections/parasitology
6.
Cell Rep ; 31(3): 107523, 2020 04 21.
Article En | MEDLINE | ID: mdl-32320656

Recently developed approaches for highly multiplexed imaging have revealed complex patterns of cellular positioning and cell-cell interactions with important roles in both cellular- and tissue-level physiology. However, tools to quantitatively study cellular patterning and tissue architecture are currently lacking. Here, we develop a spatial analysis toolbox, the histo-cytometric multidimensional analysis pipeline (CytoMAP), which incorporates data clustering, positional correlation, dimensionality reduction, and 2D/3D region reconstruction to identify localized cellular networks and reveal features of tissue organization. We apply CytoMAP to study the microanatomy of innate immune subsets in murine lymph nodes (LNs) and reveal mutually exclusive segregation of migratory dendritic cells (DCs), regionalized compartmentalization of SIRPα- dermal DCs, and preferential association of resident DCs with select LN vasculature. The findings provide insights into the organization of myeloid cells in LNs and demonstrate that CytoMAP is a comprehensive analytics toolbox for revealing features of tissue organization in imaging datasets.


Lymphoid Tissue/metabolism , Myeloid Cells/metabolism , Animals , Mice , Spatial Analysis
7.
Immunity ; 49(1): 33-41.e7, 2018 07 17.
Article En | MEDLINE | ID: mdl-30021144

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.


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
8.
Methods Mol Biol ; 1799: 237-246, 2018.
Article En | MEDLINE | ID: mdl-29956156

Pulmonary dendritic cells (DCs) are potent antigen-presenting cells that can activate both naïve and memory/effector T cells. However, very little is known of how movements and localization of DCs contribute to these events. To study this, we have developed new procedures that combine precision-cut lung slices with cell staining using fluorescently tagged antibodies to detect individual cell types. In this chapter, we describe these methods in detail and show how they can be used to study the localization of not only DCs but also other leukocytes of interest, as well as structural cells within the lung.


Chemotaxis, Leukocyte/immunology , Leukocytes/immunology , Leukocytes/metabolism , Lung/immunology , Lung/metabolism , Molecular Imaging , Animals , Mice , Microscopy, Confocal , Molecular Imaging/methods
9.
J Allergy Clin Immunol ; 142(4): 1229-1242.e6, 2018 10.
Article En | MEDLINE | ID: mdl-29154958

BACKGROUND: Mechanisms that elicit mucosal TH17 cell responses have been described, yet how these cells are sustained in chronically inflamed tissues remains unclear. OBJECTIVE: We sought to understand whether maintenance of lung TH17 inflammation requires environmental agents in addition to antigen and to identify the lung antigen-presenting cell (APC) types that sustain the self-renewal of TH17 cells. METHODS: Animals were exposed repeatedly to aspiration of ovalbumin alone or together with environmental adjuvants, including common house dust extract (HDE), to test their role in maintaining lung inflammation. Alternatively, antigen-specific effector/memory TH17 cells, generated in culture with CD4+ T cells from Il17a fate-mapping mice, were adoptively transferred to assess their persistence in genetically modified animals lacking distinct lung APC subsets or cell-specific Toll-like receptor (TLR) 4 signaling. TH17 cells were also cocultured with lung APC subsets to determine which of these could revive their expansion and activation. RESULTS: TH17 cells and the consequent neutrophilic inflammation were poorly sustained by inhaled antigen alone but were augmented by inhalation of antigen together with HDE. This was associated with weight loss and changes in lung physiology consistent with interstitial lung disease. The effect of HDE required TLR4 signaling predominantly in lung hematopoietic cells, including CD11c+ cells. CD103+ and CD11b+ conventional dendritic cells interacted directly with TH17 cells in situ and revived the clonal expansion of TH17 cells both ex vivo and in vivo, whereas lung macrophages and B cells could not. CONCLUSION: TH17-dependent inflammation in the lungs can be sustained by persistent TLR4-mediated activation of lung conventional dendritic cells.


Dendritic Cells/immunology , Inflammation/immunology , Lung/immunology , Th17 Cells/immunology , Toll-Like Receptor 4/immunology , Allergens/immunology , Animals , Aspergillus oryzae/immunology , Dust , Endotoxins/immunology , Mice, Inbred C57BL , Mice, Transgenic , Ovalbumin/immunology , Toll-Like Receptor 4/genetics
10.
J Vis Exp ; (122)2017 04 05.
Article En | MEDLINE | ID: mdl-28448013

Inhalation of allergens and pathogens elicits multiple changes in a variety of immune cell types in the lung. Flow cytometry is a powerful technique for quantitative analysis of cell surface proteins on immune cells, but it provides no information on the localization and migration patterns of these cells within the lung. Similarly, chemotaxis assays can be performed to study the potential of cells to respond to chemotactic factors in vitro, but these assays do not reproduce the complex environment of the intact lung. In contrast to these aforementioned techniques, the location of individual cell types within the lung can be readily visualized by generating Precision-cut Lung Slices (PCLS), staining them with commercially available, fluorescently tagged antibodies, and visualizing the sections by confocal microscopy. PCLS can be used for both live and fixed lung tissue, and the slices can encompass areas as large as a cross section of an entire lobe. We have used this protocol to successfully visualize the location of a wide variety of cell types in the lung, including distinct types of dendritic cells, macrophages, neutrophils, T cells and B cells, as well as structural cells such as lymphatic, endothelial, and epithelial cells. The ability to visualize cellular interactions, such as those between dendritic cells and T cells, in live, three-dimensional lung tissue, can reveal how cells move within the lung and interact with one another at steady state and during inflammation. Thus, when used in combination with other procedures, such as flow cytometry and quantitative PCR, PCLS can contribute to a comprehensive understanding of cellular events that underlie allergic and inflammatory diseases of the lung.


Dendritic Cells/immunology , Epithelial Cells/immunology , Histological Techniques/methods , Lung/cytology , Tissue Culture Techniques , Allergens , Animals , Flow Cytometry , Fluorescent Antibody Technique , Macrophages/immunology , Mice , Specimen Handling/methods
11.
J Leukoc Biol ; 101(5): 1143-1153, 2017 05.
Article En | MEDLINE | ID: mdl-28148720

Precursors of dendritic cells (pre-DCs) arise in the bone marrow (BM), egress to the blood, and finally migrate to peripheral tissue, where they differentiate to conventional dendritic cells (cDCs). Upon their activation, antigen-bearing cDCs migrate from peripheral tissue to regional lymph nodes (LNs) in a manner dependent on the chemokine receptor, CCR7. To maintain immune homeostasis, these departing cDCs must be replenished by new cDCs that develop from pre-DCs, but the molecular signals that direct pre-DC trafficking from the BM to the blood and peripheral tissues remain poorly understood. In the present study, we found that pre-DCs express the chemokine receptors CXCR4, CCR2, and CX3CR1, and that each of these receptors has a distinct role in pre-DC trafficking. Flow cytometric analysis of pre-DCs lacking CXCR4 revealed that this receptor is required for the retention of pre-DCs in the BM. Analyses of mice lacking CCR2 or CX3CR1, or both, revealed that they promote pre-DC migration to the lung at steady state. CCR2, but not CX3CR1, was required for pre-DC migration to the inflamed lung. Thus, these multiple chemokine receptors cooperate in a step-wise fashion to coordinate the trafficking of pre-DCs from the BM to the circulation and peripheral tissues.


Bone Marrow Cells/immunology , Dendritic Cells/immunology , Lung/immunology , Pneumonia/immunology , Receptors, CCR2/immunology , Receptors, CXCR4/immunology , Receptors, Chemokine/immunology , Animals , Bone Marrow Cells/drug effects , Bone Marrow Cells/pathology , CX3C Chemokine Receptor 1 , Cell Differentiation , Cell Movement/drug effects , Dendritic Cells/drug effects , Dendritic Cells/pathology , Gene Expression Regulation , Lipopolysaccharides , Lung/drug effects , Lung/pathology , Lymph Nodes/drug effects , Lymph Nodes/immunology , Lymph Nodes/pathology , Mice , Mice, Inbred C57BL , Mice, Knockout , Pneumonia/chemically induced , Pneumonia/genetics , Pneumonia/pathology , Receptors, CCR2/deficiency , Receptors, CCR2/genetics , Receptors, CCR7/genetics , Receptors, CCR7/immunology , Receptors, CXCR4/deficiency , Receptors, CXCR4/genetics , Receptors, Chemokine/deficiency , Receptors, Chemokine/genetics , Signal Transduction
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