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1.
Sci Immunol ; 9(91): eabq6930, 2024 Jan 12.
Article in English | MEDLINE | ID: mdl-38215193

ABSTRACT

The thymus is a primary lymphoid organ that is essential for the establishment of adaptive immunity through generation of immunocompetent T cells. In response to various stress signals, the thymus undergoes acute but reversible involution. However, the mechanisms governing its recovery are incompletely understood. Here, we used a dexamethasone-induced acute thymic involution mouse model to investigate how thymic hematopoietic cells (excluding T cells) contribute to thymic regeneration. scRNA-seq analysis revealed marked transcriptional and cellular changes in various thymic populations and highlighted thymus-resident innate lymphoid cells type 2 (ILC2) as a key cell type involved in the response to damage. We identified that ILC2 are activated by the alarmins IL-25 and IL-33 produced in response to tissue damage by thymic tuft cells and fibroblasts, respectively. Moreover, using mouse models deficient in either tuft cells and/or IL-33, we found that these alarmins are required for effective thymus regeneration after dexamethasone-induced damage. We also demonstrate that upon their damage-dependent activation, thymic ILC2 produce several effector molecules linked to tissue regeneration, such as amphiregulin and IL-13, which in turn promote thymic epithelial cell differentiation. Collectively, our study elucidates a previously undescribed role for thymic tuft cells and fibroblasts in thymus regeneration through activation of the type 2 immune response.


Subject(s)
Immunity, Innate , Interleukin-33 , Mice , Animals , Lymphocytes , Tuft Cells , Alarmins , Disease Models, Animal , Fibroblasts , Dexamethasone/pharmacology
3.
Nature ; 622(7981): 164-172, 2023 Oct.
Article in English | MEDLINE | ID: mdl-37674082

ABSTRACT

Development of immunocompetent T cells in the thymus is required for effective defence against all types of pathogens, including viruses, bacteria and fungi. To this end, T cells undergo a very strict educational program in the thymus, during which both non-functional and self-reactive T cell clones are eliminated by means of positive and negative selection1.Thymic epithelial cells (TECs) have an indispensable role in these processes, and previous studies have shown the notable heterogeneity of these cells2-7. Here, using multiomic analysis, we provide further insights into the functional and developmental diversity of TECs in mice, and reveal a detailed atlas of the TEC compartment according to cell transcriptional states and chromatin landscapes. Our analysis highlights unconventional TEC subsets that are similar to functionally well-defined parenchymal populations, including endocrine cells, microfold cells and myocytes. By focusing on the endocrine and microfold TEC populations, we show that endocrine TECs require Insm1 for their development and are crucial to maintaining thymus cellularity in a ghrelin-dependent manner; by contrast, microfold TECs require Spib for their development and are essential for the generation of thymic IgA+ plasma cells. Collectively, our study reveals that medullary TECs have the potential to differentiate into various types of molecularly distinct and functionally defined cells, which not only contribute to the induction of central tolerance, but also regulate the homeostasis of other thymus-resident populations.


Subject(s)
Self Tolerance , T-Lymphocytes , Thymus Gland , Animals , Mice , Cell Differentiation , Epithelial Cells/cytology , Epithelial Cells/metabolism , Self Tolerance/immunology , Self Tolerance/physiology , T-Lymphocytes/classification , T-Lymphocytes/cytology , T-Lymphocytes/immunology , Thymus Gland/cytology , Thymus Gland/immunology , Parenchymal Tissue , Muscle Cells , Endocrine Cells , Chromatin , Transcription, Genetic , Ghrelin
4.
iScience ; 26(1): 105826, 2023 Jan 20.
Article in English | MEDLINE | ID: mdl-36624839

ABSTRACT

Numerous methods have recently emerged for ordering single cells along developmental trajectories. However, accurate depiction of developmental dynamics can only be achieved after rescaling the trajectory according to the relative time spent at each developmental point. We formulate a model which estimates local cell densities and fluxes, and incorporates cell division and apoptosis rates, to infer the real-time dimension of the developmental trajectory. We validate the model using mathematical simulations and apply it to experimental high dimensional cytometry data obtained from the mouse thymus to construct the true time profile of the thymocyte developmental process. Our method can easily be implemented in any of the existing tools for trajectory inference.

5.
Sci Immunol ; 7(74): eabn8144, 2022 08 26.
Article in English | MEDLINE | ID: mdl-36026441

ABSTRACT

FOXN1 is a transcription factor critical for the development of both thymic epithelial cell (TEC) and hair follicle cell (HFC) compartments. However, mechanisms controlling its expression remain poorly understood. To address this question, we performed thorough analyses of the evolutionary conservation and chromatin status of the Foxn1 locus in different tissues and states and identified several putative cis-regulatory regions unique to TECs versus HFCs. Furthermore, experiments using genetically modified mice with specific deletions in the Foxn1 locus and additional bioinformatic analyses helped us identify key regions and transcription factors involved in either positive or negative regulation of Foxn1 in both TECs and HFCs. Specifically, we identified SIX1 and FOXN1 itself as key factors inducing Foxn1 expression in embryonic and neonatal TECs. Together, our data provide important mechanistic insights into the transcriptional regulation of the Foxn1 gene in TEC versus HFC and highlight the role of FOXN1 in its autoregulation.


Subject(s)
Epithelial Cells , Gene Expression Regulation , Animals , Mice , RNA-Binding Proteins , Thymus Gland
6.
J Exp Med ; 218(11)2021 11 01.
Article in English | MEDLINE | ID: mdl-34477806

ABSTRACT

The autoimmune regulator (AIRE) is essential for the establishment of central tolerance and prevention of autoimmunity. Interestingly, different AIRE mutations cause autoimmunity in either recessive or dominant-negative manners. Using engineered mouse models, we establish that some monoallelic mutants, including C311Y and C446G, cause breakdown of central tolerance. By using RNAseq, ATACseq, ChIPseq, and protein analyses, we dissect the underlying mechanisms for their dominancy. Specifically, we show that recessive mutations result in a lack of AIRE protein expression, while the dominant mutations in both PHD domains augment the expression of dysfunctional AIRE with altered capacity to bind chromatin and induce gene expression. Finally, we demonstrate that enhanced AIRE expression is partially due to increased chromatin accessibility of the AIRE proximal enhancer, which serves as a docking site for AIRE binding. Therefore, our data not only elucidate why some AIRE mutations are recessive while others dominant, but also identify an autoregulatory mechanism by which AIRE negatively modulates its own expression.


Subject(s)
Homeostasis/genetics , Mutation/genetics , Transcription Factors/genetics , Animals , Autoimmunity/genetics , Chromatin/genetics , Dissection/methods , Female , Humans , Male , Mice , Mice, Inbred C57BL , Mice, Inbred NOD , Models, Animal , AIRE Protein
7.
Elife ; 92020 07 20.
Article in English | MEDLINE | ID: mdl-32687059

ABSTRACT

Foxp3+ regulatory T cells (Tregs) are potent suppressor cells, essential for the maintenance of immune homeostasis. Most Tregs develop in the thymus and are then released into the immune periphery. However, some Tregs populate the thymus and constitute a major subset of yet poorly understood cells. Here we describe a subset of thymus recirculating IL18R+ Tregs with molecular characteristics highly reminiscent of tissue-resident effector Tregs. Moreover, we show that IL18R+ Tregs are endowed with higher capacity to populate the thymus than their IL18R- or IL18R-/- counterparts, highlighting the key role of IL18R in this process. Finally, we demonstrate that IL18 signaling is critical for the induction of the key thymus-homing chemokine receptor - CCR6 on Tregs. Collectively, this study provides a detailed characterization of the mature Treg subsets in the mouse thymus and identifies a key role of IL18 signaling in controlling the CCR6-CCL20-dependent migration of Tregs into the thymus.


Subject(s)
Interleukin-18/physiology , Signal Transduction , T-Lymphocytes, Regulatory/physiology , Thymus Gland/physiology , Animals , Mice , Mice, Inbred C57BL , Mice, Knockout
8.
Nat Rev Immunol ; 20(4): 239-253, 2020 04.
Article in English | MEDLINE | ID: mdl-31804611

ABSTRACT

The generation of a functional T cell repertoire in the thymus is mainly orchestrated by thymic epithelial cells (TECs), which provide developing T cells with cues for their navigation, proliferation, differentiation and survival. The TEC compartment has been segregated historically into two major populations of medullary TECs and cortical TECs, which differ in their anatomical localization, molecular characteristics and functional roles. However, recent studies have shown that TECs are highly heterogeneous and comprise multiple subpopulations with distinct molecular and functional characteristics, including tuft cell-like or corneocyte-like phenotypes. Here, we review the most recent advances in our understanding of TEC heterogeneity from a molecular, functional and developmental perspective. In particular, we highlight the key insights that were recently provided by single-cell genomic technologies and in vivo fate mapping and discuss them in the context of previously published data.


Subject(s)
Epithelial Cells/immunology , Thymus Gland/immunology , Cell Differentiation/immunology , Humans , Phenotype , T-Lymphocytes/immunology
9.
Immunol Lett ; 210: 1-9, 2019 06.
Article in English | MEDLINE | ID: mdl-30904566

ABSTRACT

Tuft cells are epithelial chemosensory cells with unique morphological and molecular characteristics, the most noticeable of which is a tuft of long and thick microvilli on their apical side, as well as expression of a very distinct set of genes, including genes encoding various members of the taste transduction machinery and pro-inflammatory cyclooxygenases. Initially discovered in rat trachea, tuft cells were gradually identified in various mucosal tissues, and later also in non-mucosal tissues, most recent of which is the thymus. Although tuft cells were discovered more than 60 years ago, their functions in the various tissues remained a mystery until recent years. Today, tuft cells are thought to function as sensors of various types of chemical signals, to which they respond by secretion of diverse biological mediators such as IL25 or acetylcholine. Intestinal tuft cells were also shown to mediate type 2 immunity against parasites. Here, we review the current knowledge on tuft cell characteristics, development and heterogeneity, discuss their potential functions and explore the possible implications and significance of their discovery in the thymus.


Subject(s)
Epithelial Cells/cytology , Epithelial Cells/metabolism , Mucous Membrane/cytology , Thymus Gland/cytology , Animals , Biomarkers , Cell Differentiation , Disease Susceptibility , Humans , Microvilli/metabolism , Phenotype
10.
Nature ; 559(7715): 622-626, 2018 07.
Article in English | MEDLINE | ID: mdl-30022162

ABSTRACT

T cell development and selection are coordinated in the thymus by a specialized niche of diverse stromal populations1-3. Although much progress has been made over the years in identifying the functions of the different cell types of the thymic stromal compartment, there is no comprehensive characterization of their diversity and heterogeneity. Here we combined massively parallel single-cell RNA-sequencing4,5, spatial mapping, chromatin profiling and gene targeting to characterize de novo the entire stromal compartment of the mouse thymus. We identified dozens of cell states, with thymic epithelial cells (TECs) showing the highest degree of heterogeneity. Our analysis highlights four major medullary TEC (mTEC I-IV) populations, with distinct molecular functions, epigenetic landscapes and lineage regulators. Specifically, mTEC IV constitutes a new and highly divergent TEC lineage with molecular characteristics of the gut chemosensory epithelial tuft cells. Mice deficient in Pou2f3, a master regulator of tuft cells, have complete and specific depletion of mTEC IV cells, which results in increased levels of thymus-resident type-2 innate lymphoid cells. Overall, our study provides a comprehensive characterization of the thymic stroma and identifies a new tuft-like TEC population, which is critical for shaping the immune niche in the thymus.


Subject(s)
Epithelial Cells/cytology , Epithelial Cells/metabolism , Interleukin-17/metabolism , Interleukins/metabolism , Single-Cell Analysis , Thymus Gland/cytology , Thymus Gland/immunology , Animals , Epigenesis, Genetic , Epithelial Cells/immunology , Female , Humans , Interleukin-17/biosynthesis , Interleukins/biosynthesis , Male , Mice , Mice, Inbred BALB C , Mice, Inbred C57BL , Models, Molecular , Transcription Factors/biosynthesis , Transcription Factors/deficiency , Transcription Factors/genetics , Transcription Factors/metabolism , AIRE Protein
11.
Sci Rep ; 8(1): 59, 2018 01 08.
Article in English | MEDLINE | ID: mdl-29311649

ABSTRACT

microRNAs (miRNAs) are critical for neuronal function and their dysregulation is repeatedly observed in neurodegenerative diseases. Here, we implemented high content image analysis for investigating the impact of several miRNAs in mouse primary motor neurons. This survey directed our attention to the neuron-specific miR-124, which controls axonal morphology. By performing next generation sequencing analysis and molecular studies, we characterized novel roles for miR-124 in control of mitochondria localization and function. We further demonstrated that the intermediate filament Vimentin is a key target of miR-124 in this system. Our data establishes a new pathway for control of mitochondria function in motor neurons, revealing the value of a neuron-specific miRNA gene as a mechanism for the re-shaping of otherwise ubiquitously-expressed intermediate filament network, upstream of mitochondria activity and cellular metabolism.


Subject(s)
Gene Expression Regulation , MicroRNAs/genetics , Mitochondria/genetics , Mitochondria/metabolism , Motor Neurons/metabolism , RNA Interference , Vimentin/genetics , Animals , Axons , Cells, Cultured , Computational Biology/methods , Gene Expression Profiling , Gene Ontology , Mice , Molecular Imaging , Transcriptome , Vimentin/metabolism
12.
Nat Immunol ; 18(2): 161-172, 2017 02.
Article in English | MEDLINE | ID: mdl-27941786

ABSTRACT

Aire is a transcriptional regulator that induces promiscuous expression of thousands of genes encoding tissue-restricted antigens (TRAs) in medullary thymic epithelial cells (mTECs). While the target genes of Aire are well characterized, the transcriptional programs that regulate its own expression have remained elusive. Here we comprehensively analyzed both cis-acting and trans-acting regulatory mechanisms and found that the Aire locus was insulated by the global chromatin organizer CTCF and was hypermethylated in cells and tissues that did not express Aire. In mTECs, however, Aire expression was facilitated by concurrent eviction of CTCF, specific demethylation of exon 2 and the proximal promoter, and the coordinated action of several transcription activators, including Irf4, Irf8, Tbx21, Tcf7 and Ctcfl, which acted on mTEC-specific accessible regions in the Aire locus.


Subject(s)
Epithelial Cells/immunology , Gene Regulatory Networks , T-Lymphocytes/physiology , Thymus Gland/immunology , Transcription Factors/metabolism , Animals , Antigen Presentation/genetics , Autoantigens/metabolism , CCCTC-Binding Factor , Cell Differentiation , Cells, Cultured , Clonal Selection, Antigen-Mediated , DNA Methylation , Gene Expression Regulation , Interferon Regulatory Factors/genetics , Interferon Regulatory Factors/metabolism , Mice , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Organ Specificity/genetics , Repressor Proteins/genetics , Repressor Proteins/metabolism , T-Box Domain Proteins/genetics , T-Box Domain Proteins/metabolism , Thymus Gland/cytology , Transcription Factors/genetics , AIRE Protein
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