Plasmacytoid dendritic cells (pDCs) are major producers of type I/III interferons. As interferons are crucial for antiviral defense, pDCs are assumed to play an essential role in this process; however, robust evidence supporting this dogma is scarce. Genetic or pharmacological manipulations that eliminate pDCs or disrupt their interferon production often affect other cells, confounding interpretation. Here, to overcome this issue, we engineered pDC-less mice that are specifically and constitutively devoid of pDCs by expressing diphtheria toxin under coordinated control of the Siglech and Pacsin1 genes, uniquely coexpressed in pDCs. pDC-less mice mounted protective immunity against systemic infection with mouse cytomegalovirus and showed higher survival and less lung immunopathology to intranasal infection with influenza virus and SARS-CoV-2. Thus, contrary to the prevailing dogma, we revealed that pDCs and their interferons are dispensable or deleterious during several viral infections. pDC-less mice will enable rigorously reassessing the roles of pDCs in health and disease. Previous research has suggested that pDCs are required for an effective antiviral immune response, but direct experimental evidence to support this is lacking. Here Ngo et al. develop a pDC knockin mouse model and find that pDCs are dispensable for an antiviral immune response to mouse cytomegalovirus and may be detrimental during influenza or SARS-CoV-2 infection.
The immune landscape of healthy prostate and its alterations during prostate cancer (PCa) progression remain poorly characterized. Using scRNA-sequencing and multiparametric flow-cytometry analysis, we comprehensively characterized immune cells in wild-type and PTEN(i)pe-/- mouse prostates, a model that closely recapitulates human PCa. PCa in PTEN(i)pe-/- is marked by the recruitment of tumor-associated neutrophils (TANs), which represent the dominant immune cell population and resolved into eight distinct states, Trem2+ tumor-associated-macrophages (TAMs), and exhausted CD8+ T cells. Trem2+ TAMs differ from the three main resident macrophage populations in the healthy prostate, exhibiting a strong metabolic and immunosuppressive signature, likely driven by the MIF/HIF1A-signaling axis. This study provides the first detailed characterization of immune cells in the healthy mouse prostate and reveals changes in the immune landscape associated with prostate cancer progression.
High affinity antibody-producing plasma cell (PC) production in germinal centers (GC) is crucial for antibody-mediated immune protection after vaccination or infection. The selection of high affinity B cells in the GC light zone instructs PC differentiation in a subset of cells, but the phenotype, differentiation trajectory and spatial localization of those prePC intermediates remain to be characterized. Here, we have used a mouse model to track GC-derived B cells with integrative single-cell and spatial analyses in draining lymph node after immunization. We first identified putative prePC in scRNA-seq datasets, then enriched those cells through their specific surface phenotype for further analysis of their gene expression trajectories and BCR repertoire. We found a continuum of actively proliferating transitional states bridging selected LZ GC B cells and recently exported PCs, with gradually increasing levels of endoplasmic reticulum stress-associated genes and immunoglobulin transcripts. Spatial analyses revealed that recently differentiated PC continued their maturation and proliferation at the interface between the DZ and extensions of the lymph node medulla. Our results provide insights into the intermediate stages and microenvironmental factors involved in the differentiation of GC B cells into PC, with implications for vaccine development and understanding antibody responses. ### Competing Interest Statement The authors have declared no competing interest.
Tissue damage and repair are hallmarks of inflammation. Despite a wealth of information on the mechanisms that govern tissue damage, mechanistic insight into how inflammation affects repair is lacking. Here, we investigated how interferons influence tissue repair after damage to the intestinal mucosa. We found that type III, not type I or type II, interferons delay epithelial cell regeneration by inducing the upregulation of Z-DNA-binding protein 1 (ZBP1). Z-nucleic acids formed following intestinal damage are sensed by ZBP1, leading to caspase-8 activation and the cleavage of gasdermin C (GSDMC). Cleaved GSDMC drives epithelial cell death by pyroptosis and delays repair of the large or small intestine after colitis or irradiation, respectively. The type III interferon/ZBP1/caspase-8/GSDMC axis is also active in patients with inflammatory bowel disease (IBD). Our findings highlight the capacity of type III interferons to delay gut repair, which has implications for IBD patients or individuals exposed to radiation therapies.
Plasmacytoid dendritic cells (pDCs) are major producers of type I/III interferons. As these cytokines are crucial for antiviral defense, it is assumed to be also the case for pDCs. However, robust evidence supporting this dogma is scarce. Genetic mutations or pharmacological manipulations causing pDC loss or disrupting their interferon production affect other immune cells, which could confound interpretation. To overcome this bottleneck, we engineered pDC-less mice, specifically and constitutively devoid of pDCs as expressing diphtheria toxin under coordinated control of the Siglech and Pacsin1 genes co-expressed uniquely in pDCs. pDC-less mice mounted protective intrinsic and innate immune responses against systemic infection with mouse Cytomegalovirus, and were more resistant to intranasal infection with influenza virus and SARS-CoV2. Thus, contrary to dogma, pDCs and their interferon production proved dispensable or deleterious during systemic or respiratory viral infections, respectively. pDC-less mice will enable rigorously revisiting the roles of pDCs in health and disease.### Competing Interest StatementThe authors have declared no competing interest.
Follicular lymphoma (FL) is an indolent tumor in which epigenetic alterations and BCL2 translocations foster malignant transformation by reprogramming germinal center (GC)/memory B cell immune dynamics and remodeling the tumor microenvironment (TME). Lenalidomide and other cereblon (CRBN)-targeting agents, such as the novel CELMoD, golcadomide, have shown clinical efficacy in B cell neoplasms such as FL or DLBCL. However, because these molecules lack activity in mouse models, unraveling the biological mechanisms by which CELMoDs exert their activity in complex in vivo systems, such as the native GC B cell immune response or relevant preclinical mouse models, has been limited. Here we investigated the in vivo mechanism of action of golcadomide during the normal and pathological GC B cell immune response and tested whether early intervention with immunomodulatory agents may represent a promising therapeutic avenue against FL progression. To study the in vivo effect of golcadomide during a native immune response, we developed a novel mouse model (huCRBN) by inserting the human CRBN gene upstream and in frame of the mouse Crbn gene, allowing substrate recruitment and degradation not possible in a wild-type mouse. We immunized huCRBN animals to induce GC formation and treated the mice by gavage every other day with golcadomide (3mg/kg) or vehicle for 1, 2, 3 weeks and sacrificed 48h after treatment cessation. We analyzed Ikaros and Aiolos protein levels in T and B cell subsets by flow cytometry at 6, 24h after treatment. To evaluate the therapeutic activity of golcadomide in FL in vivo, we crossed our previously characterized Kmt2d/BCL2 (KB) preclinical FL model (Brisou et al, ASH 2023) with the huCRBN mouse (KBC). We then generated chimeric mice in which hematopoietic progenitor cells from CD19Cre+ Kmt2df/+huCRBN+ mice were used as donor cells for retroviral transduction with the huBCL2-Cd2Tag vector. The engineered progenitor cells were then re-transplanted into sub-lethally irradiated immunocompetent WT (n=15) or huCRBN recipients (n=29). KBC animals at the pretumoral stages (8 months post-transplant) were randomized to receive golcadomide or vehicle alone. Spectral flow cytometry was conducted on immune subsets in spleen/lymph nodes and integrative single cell RNAseq and immune repertoire analysis was done on whole spleen in selected huCRBN and KBC animals.During the normal GC immune response, we showed that in the huCRBN mice treated with golcadomide, all splenic B and T cell subsets exhibit a rapid degradation of IKZF1 and, to a lesser extent, IKZF3 substrates in 6 hours, which is not seen in wild-type mice, confirming the relevance of the huCRBN model for evaluating CELMoD activity. Golcadomide treatment acts on B cells in all lymphoid tissues with a progressive decrease of naive and memory subsets. We observed a global increase and activation of T cells with T regulatory cells reaching 25% of the CD4 pool and a phenotypic shift to CD4/CD8 central memory and effector cells consistent with previous observations with lenalidomide. We next evaluated the efficacy of golcadomide and impact on mutant B and immune T cells in the pretumoral KBC model. As previously reported, single-cell expression profiles of the untreated KBC-mutant B cells manifested mainly as a continuum of states from proliferating GC-like to quiescent mem-like phenotypes confirming progression to FL pretumoral stages. KBC mice receiving golcadomide presented with decreased memory-like subsets whereas the GC/GC-Mem intermediates persisted and expanded, suggesting their resistance to golcadomide alone and a capacity to form a pool of residual cells after therapy. Finally, golcadomide induced a significant increase in Tregs and CD4/CD8+ towards an activated phenotype, helping to restore immune surveillance. Spatial analysis to map cellular neighborhoods of malignant B cells, immune cells on treatment is ongoing. In addition, the preclinical evaluation of a combination therapy of golcadomide with mouse anti-Cd20 immunotherapy modeling the impact of a chemo-free regimen in FL will be reported.Our original huCRBN and KBC mouse models allow the first in vivo study to unravel the efficacy and mechanism of action of CELMoDs during native immune response and early FL progression. We expect that this study will allow us to propose novel rational hypotheses for combination therapies with golcadomide to intercept FL.
Follicular lymphoma (FL) is a prototypical example of B cell lymphoma arising from germinal center (GC) B cells. Recent single cell transcriptomic studies investigating the transcriptional heterogeneity of FL suggest that tumor B cells are functionally diverse with cells acquiring an intermediate phenotype between GC and memory (mem), in line with the premalignant FL ontogeny where BCL2 + memory B cells require multiple re-entries into the GC to facilitate the transformation process. Since FL cells often hijack the epigenetic machinery through mutations in histone modifying proteins - notably KMT2D - we questioned here how epigenetic alterations contribute to the emergence of this intratumoral heterogeneity. We developed a genetically engineered mouse FL-like model (GEMM) carrying Kmt2d loss-of-function in B cells and BCL2 overexpression recapitulating different progression stages from preneoplastic hyperplasia to FL-like tumors. We analyzed 45,541 high-quality single cell transcriptomes and immune repertoires (B cell receptor, BCR and T cell receptor, TCR) from 18 mice including immunized-control mice in the context of physiological GC reaction. We developed a computational workflow on mutant B cells combining supervised and unsupervised metaclustering approaches in order to highlight recurrent gene programs active in preneoplastic hyperplasia and the various stages leading to FL-like tumors. We used inferCNV to assess the association between genetics and transcriptomic heterogeneity and inferred cell-cell interactions to characterize the microenvironmental determinants associated with B cell heterogeneity throughout FL progression. By modeling the GC cycle dynamics and building B cell signatures during a normal immune response, we found that our FL GEMM mirrored the desynchronization of the GC reaction program previously observed in human FL. Single cell expression profiles of Kmt2d-BCL2 mutant cells also showed a reproducible increase in phenotypic heterogeneity during FL progression, manifesting as a continuum of cell states from proliferating GC-like to quiescent mem-like cell states. We defined this GC-to-Mem axis as the major source of intra-tumor transcriptional heterogeneity. Single-cell BCR sequencing revealed the emergence of highly-plastic B cell states during FL evolution, co-existing within individual mice and being largely independent of subclonal genetic variation. To further elucidate the emergence and maintenance of these cell state transitions, we explored the phenotypic and transcriptional changes within the immune microenvironment along disease progression. Significant compositional changes were found, including the expansion of T follicular helper cells and T regulatory T cells together with the loss of naive CD4, CD8 T, and NK cell populations, preceding malignant transformation and creating a (pre)tumoral supportive niche persisting in advanced tumors. Prior remodeling of a premalignant supportive immune niche may be crucial in establishing malignant cell heterogeneity. Ongoing efforts aim to impair tumor-immune interactions driving tumor B cell dynamics and survival. In conclusion, our results provide a high-resolution view of events spanning FL progression and indicate a major role of early TME remodeling in establishing a suitable niche for progression. Early intervention aimed to target the B cell-tumor microenvironment interactions driving intra-tumoral heterogeneity may represent a promising therapeutic avenue against early disease and prevention of FL recurrence.
Supplementary Methods, Figures 1-6 from Tumor-Initiated Inflammation Overrides Protective Adaptive Immunity in an Induced Melanoma Model in Mice
Endo-lysosomes transport along microtubules and clustering in the perinuclear area are two necessary steps for microbes to activate specialized phagocyte functions. We report that RU N and FY VE domain-containing protein 3 (RUFY3) exists as two alternative isoforms distinguishable by the presence of a C-terminal FYVE domain and by their affinity for phosphatidylinositol 3-phosphate on endosomal membranes. The FYVE domain-bearing isoform (iRUFY3) is preferentially expressed in primary immune cells and up-regulated upon activation by microbes and Interferons. iRUFY3 is necessary for ARL8b + /LAMP1+ endo-lysosomes positioning in the pericentriolar organelles cloud of LPS-activated macrophages. We show that iRUFY3 controls macrophages migration, MHC II presentation and responses to Interferon-γ, while being important for intracellular Salmonella replication. Specific inactivation of rufy3 in phagocytes leads to aggravated pathologies in mouse upon LPS injection or bacterial pneumonia. This study highlights the role of iRUFY3 in controlling endo-lysosomal dynamics, which contributes to phagocyte activation and immune response regulation.
ObjectiveIn the management of patients with IBD, there is a need to identify prognostic markers and druggable biological pathways to improve mucosal repair and probe the efficacy of tumour necrosis factor alpha biologics. Vnn1 is a pantetheinase that degrades pantetheine to pantothenate (vitamin B5, a precursor of coenzyme A (CoA) biosynthesis) and cysteamine. Vnn1 is overexpressed by inflamed colonocytes. We investigated its contribution to the tolerance of the intestinal mucosa to colitis-induced injury.DesignWe performed an RNA sequencing study on colon biopsy samples from patients with IBD stratified according to clinical severity and modalities of treatment. We generated the VIVA mouse transgenic model, which specifically overexpresses Vnn1 on intestinal epithelial cells and explored its susceptibility to colitis. We developed a pharmacological mimicry of Vnn1 overexpression by administration of Vnn1 derivatives.ResultsVNN1 overexpression on colonocytes correlates with IBD severity. VIVA mice are resistant to experimentally induced colitis. The pantetheinase activity of Vnn1 is cytoprotective in colon: it enhances CoA regeneration and metabolic adaptation of colonocytes; it favours microbiota-dependent production of short chain fatty acids and mostly butyrate, shown to regulate mucosal energetics and to be reduced in patients with IBD. This prohealing phenotype is recapitulated by treating control mice with the substrate (pantethine) or the products of pantetheinase activity prior to induction of colitis. In severe IBD, the protection conferred by the high induction of VNN1 might be compromised because its enzymatic activity may be limited by lack of available substrates. In addition, we identify the elevation of indoxyl sulfate in urine as a biomarker of Vnn1 overexpression, also detected in patients with IBD.ConclusionThe induction of Vnn1/VNN1 during colitis in mouse and human is a compensatory mechanism to reinforce the mucosal barrier. Therefore, enhancement of vitamin B5-driven metabolism should improve mucosal healing and might increase the efficacy of anti-inflammatory therapy.
Severe acute malnutrition (SAM) is a multifactorial disease affecting millions of children worldwide. It is associated with changes in intestinal physiology, microbiota, and mucosal immunity, emphasizing the need for multidisciplinary studies to unravel its full pathogenesis. We established an experimental model in which weanling mice fed a high-deficiency diet mimic key anthropometric and physiological features of SAM in children. This diet alters the intestinal microbiota (less segmented filamentous bacteria, spatial proximity to epithelium), metabolism (decreased butyrate), and immune cell populations (depletion of LysoDC in Peyer’s patches and intestinal Th17 cells). A nutritional intervention leads to a fast zoometric and intestinal physiology recovery but to an incomplete restoration of the intestinal microbiota, metabolism, and immune system. Altogether, we provide a preclinical model of SAM and have identified key markers to target with future interventions during the education of the immune system to improve SAM whole defects.
Abstract Endo-lysosomes transport along microtubules and clustering in the perinuclear area are two necessary steps for microbes to activate specialized phagocyte functions. We report that RUN and FYVE domain-containing protein 3 exists as two alternative isoforms distinguishable by the presence of a C-terminal FYVE domain and by their affinity for PtdIns(3)P on endosomal membranes. The FYVE domain-bearing isoform (iRUFY3) is preferentially expressed in immune cells and up-regulated upon activation by microbes and cytokines. iRUFY3 is necessary for ARL8b+/LAMP1+ endo-lysosomes positioning in the pericentriolar organelles cloud of LPS-activated macrophages. We show that iRUFY3 controls macrophages migration, MHC II presentation and responses to Interferon-γ while being required for Intracellular Salmonella replication. Specific inactivation of Rufy3 in phagocytes leads to aggravated pathologies in mouse upon LPS injection or bacterial pneumonia. This study highlights iRUFY3 function, as a novel modulator of immunity, controlling endo-lysosomes dynamics, and ultimately regulating the function of activated phagocytes.
ABSTRACT Follicular lymphoma (FL) derives from malignant transformation of germinal center (GC) B cells. FL malignant B cells are heterogeneous and diverge from their GC B cell-of-origin, but the diversity, function, and location of malignant B cell states remain to be addressed. Based on integrative single-cell RNA-seq, we identified and studied recurrent FL malignant B cell states and dynamics. Most FL B cells spanned a continuum of states from proliferating GC-like to quiescent memory (Mem)-like cell states. That GC-to-Mem axis was the main source of intra-tumor transcriptional heterogeneity. While FL B cell states were independent from subclonal B cell receptor genetics divergence, T follicular helper (T FH ) cell-derived signals controlled the transition from Mem-like to GC-like states. GC-like, T FH -activated and Mem-like FL B cells tended to occupy distinct niches within and around tumor follicles. Our study characterizes novel malignant cell states recurrent in B cell lymphomas, and highlights the functional plasticity of malignant B cells.
Thymically-derived Foxp3+ regulatory T cells (Treg) critically control immunological tolerance. These cells are generated in the medulla through high affinity interactions with medullary thymic epithelial cells (mTEC) expressing the Autoimmune regulator (Aire). Recent advances have revealed that thymic Treg contain not only developing but also recirculating cells from the periphery. Although Aire is implicated in the generation of Foxp3+ Treg, its role in the biology of recirculating Treg remains elusive. Here, we show that Aire regulates the suppressive signature of recirculating Treg independently of the remodeling of the medullary 3D organization throughout life where Treg reside. Accordingly, the adoptive transfer of peripheral Foxp3+ Treg in AireKO recipients led to an impaired suppressive signature upon their entry into the thymus. Furthermore, recirculating Treg from AireKO mice failed to attenuate the severity of multiorgan autoimmunity, demonstrating that their suppressive function is altered. Using bone marrow chimeras, we reveal that mTEC-specific expression of Aire controls the suppressive signature of recirculating Treg. Finally, mature mTEC lacking Aire were inefficient in stimulating peripheral Treg both in polyclonal and antigen-specific co-culture assays. Overall, this study demonstrates that Aire confers to mTEC the ability to restimulate recirculating Treg, unravelling a novel function for this master regulator in Treg biology.
Inflammation is a defence response to tissue damage that requires tight regulation in order to prevent impaired healing. Tissue-resident macrophages have a key role in tissue repair1, but the precise molecular mechanisms that regulate the balance between inflammatory and pro-repair macrophage responses during healing remain poorly understood. Here we demonstrate a major role for sensory neurons in promoting the tissue-repair function of macrophages. In a sunburn-like model of skin damage in mice, the conditional ablation of sensory neurons expressing the Gαi-interacting protein (GINIP) results in defective tissue regeneration and in dermal fibrosis. Elucidation of the underlying molecular mechanisms revealed a crucial role for the neuropeptide TAFA4, which is produced in the skin by C-low threshold mechanoreceptors-a subset of GINIP+ neurons. TAFA4 modulates the inflammatory profile of macrophages directly in vitro. In vivo studies in Tafa4-deficient mice revealed that TAFA4 promotes the production of IL-10 by dermal macrophages after UV-induced skin damage. This TAFA4-IL-10 axis also ensures the survival and maintenance of IL-10+TIM4+ dermal macrophages, reducing skin inflammation and promoting tissue regeneration. These results reveal a neuroimmune regulatory pathway driven by the neuropeptide TAFA4 that promotes the anti-inflammatory functions of macrophages and prevents fibrosis after tissue damage, and could lead to new therapeutic perspectives for inflammatory diseases.
Sjögren's syndrome (SS) is a chronic systemic autoimmune disease that affects predominately salivary and lacrimal glands. SS can occur alone or in combination with another autoimmune disease like systemic lupus erythematosus (SLE). Here we report that TLR7 signaling drives the development of SS since TLR8-deficient (TLR8ko) mice that develop lupus due to increased TLR7 signaling by dendritic cells, also develop an age-dependent secondary pathology similar to associated SS. The SS phenotype in TLR8ko mice is manifested by sialadenitis, increased anti-SSA and anti-SSB autoantibody production, immune complex deposition and increased cytokine production in salivary glands, as well as lung inflammation. Moreover, ectopic lymphoid structures characterized by B/T aggregates, formation of high endothelial venules and the presence of dendritic cells are formed in the salivary glands of TLR8ko mice. Interestingly, all these phenotypes are abrogated in double TLR7/8-deficient mice, suggesting that the SS phenotype in TLR8-deficient mice is TLR7-dependent. In addition, evaluation of TLR7 and inflammatory markers in the salivary glands of primary SS patients revealed significantly increased TLR7 expression levels compared to healthy individuals, that were positively correlated to TNF, LT-α, CXCL13 and CXCR5 expression. These findings establish an important role of TLR7 signaling for local and systemic SS disease manifestations, and inhibition of such will likely have therapeutic value.
BACKGROUND:Etiological diagnosis is a key to therapeutic adaptation and improved prognosis, particularly for infections such as endocarditis. In blood culture-negative endocarditis (BCNE), 22% of cases remain undiagnosed despite an updated comprehensive syndromic approach. This prompted us to develop a new diagnostic approach.METHODS:Eleven valves from 10 BCNE patients were analyzed using a method that combines human RNA bait-depletion with phi29 DNA polymerase-based multiple displacement amplification and shotgun DNA sequencing. An additional case in which a microbe was serendipitously visualized by immunofluorescence was analyzed using the same method, but after laser capture microdissection.RESULTS:Background DNA prevented any diagnosis in cases analyzed without microdissection because the majority of sequences were contaminants. Moraxella sequences were dramatically enriched in the stained microdissected region of the additional case. A consensus genome sequence of 2.4 Mbp covering more than 94% of the Moraxella osloensis KSH reference genome was reconstructed with 234X average coverage. Several antibiotic-resistance genes were observed. Etiological diagnosis was confirmed using Western blot and specific polymerase chain reaction with sequencing on a different valve sample.CONCLUSIONS:Microdissection could be a key to the metagenomic diagnosis of infectious diseases when a microbe is visualized but remains unidentified despite an updated optimal approach. Moraxella osloensis should be tested in blood culture-negative endocarditis.
In humans, psychological stress has been associated with a higher risk of infectious illness. However, the mechanisms by which the stress pathway interferes with host response to pathogens remain unclear. We demonstrate here a role for the β2-adrenergic receptor (β2-AR), which binds the stress mediators adrenaline and noradrenaline, in modulating host response to mouse cytomegalovirus (MCMV) infection. Mice treated with a β2-AR agonist were more susceptible to MCMV infection. By contrast, β2-AR deficiency resulted in a better clearance of the virus, less tissue damage, and greater resistance to MCMV. Mechanistically, we found a correlation between higher levels of IFN-γ production by liver natural killer (NK) cells and stronger resistance to MCMV. However, the control of NK cell IFN-γ production was not cell intrinsic, revealing a cell-extrinsic downregulation of the antiviral NK cell response by adrenergic neuroendocrine signals. This pathway reduces host immune defense, suggesting that the blockade of the β2-AR signaling could be used to increase resistance to infectious diseases.
In stressed cells, phosphorylation of eukaryotic initiation factor 2α (eIF2α) controls transcriptome-wide changes in mRNA translation and gene expression known as the integrated stress response (ISR). We show here that dendritic cells (DCs) display unusually high eIF2α phosphorylation, which is mostly caused by a developmentally regulated activation of the ER kinase PERK (EIF2AK3). Despite high p-eIF2α levels, differentiated DCs display active protein synthesis and no signs of a chronic ISR. eIF2α phosphorylation does not majorly impact DC differentiation nor cytokines production. It is however important to adapt protein homeostasis to the variations imposed on DCs by the immune or physiological contexts. This biochemical specificity prevents translation arrest and expression of the transcription factor ATF4 during ER-stress induction by subtilase cytotoxin or upon DC stimulation with bacterial lipopolysaccharides. This is also exemplified by the influence of the actin cytoskeleton dynamics on eIF2α phosphorylation and the migratory deficit observed in PERK-deficient DCs.
The monocyte-derived phagocytes termed LysoDCs are hallmarks of Peyer's patches, where their main function is to sample intestinal microorganisms. Here, we study their differentiation pathways in relation with their sampling, migratory, and T cell-priming abilities. Among four identified LysoDC differentiation stages displaying similar phagocytic activity, one is located in follicles, and the others reside in subepithelial domes (SED), where they proliferate and mature as they get closer to the epithelium. Mature LysoDCs but not macrophages express a gene set in common with conventional dendritic cells and prime naive helper T cells in vitro. At steady state, they do not migrate into naive T cell-enriched interfollicular regions (IFRs), but upon stimulation, they express the chemokine receptor CCR7 and migrate from SED to the IFR periphery, where they strongly interact with proliferative immune cells. Finally, we show that LysoDCs populate human Peyer's patches, strengthening their interest as targets for modulating intestinal immunity.