Science Immunology
● American Association for the Advancement of Science (AAAS)
All preprints, ranked by how well they match Science Immunology's content profile, based on 88 papers previously published here. The average preprint has a 0.09% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Koenig, J. F.; Knudsen, N. P. H.; Phelps, A.; Bruton, K.; Hoof, I.; Lund, G.; Libera, D. D.; Lund, A.; Christensen, L.; Glass, D. R.; Walker, T. D.; Fang, A.; Waserman, S.; Jordana, M.; Andersen, P. S.
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Allergen-specific IgE antibodies mediate allergic pathology in diseases such as allergic rhinitis and food allergy. Memory B cells (MBCs) contribute to circulating IgE by regenerating IgE-producing plasma cells upon allergen encounter. We report a population of type 2 polarized MBCs defined as CD23hi, IL-4Rhi, CD32low at the transcriptional and surface protein levels. These "MBC2s" are enriched in IgG1 and IgG4-expressing cells, while constitutively expressing germline transcripts for IgE. Allergen-specific B cells from patients with allergic rhinitis and food allergy were enriched in MBC2s. MBC2s generated allergen specific-IgE during sublingual immunotherapy, thereby identifying these cells as the primary reservoir of IgE. The identification of MBC2s provides insights into the maintenance of IgE memory, which is detrimental in allergic diseases, but which could be beneficial in protection against venoms and helminths. One-Sentence SummaryIdentification of a novel memory B cell subset which holds allergen specific IgE memory.
Kulalert, W.; Wells, A. C.; Link, V. M.; Lim, A. I.; Bouladoux, N.; Nagai, M.; Harrison, O. J.; Kamenyeva, O.; Kabat, J.; Enamorado, M.; Chiu, I.; Belkaid, Y.
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The somatosensory nervous system surveils external stimuli at barrier tissues, regulating innate immune cells under infection and inflammation. The roles of sensory neurons in controlling the adaptive immune system, and more specifically immunity to the microbiota, however, remain elusive. Here, we identified a novel mechanism for direct neuroimmune communication between commensal-specific T lymphocytes and somatosensory neurons mediated by the neuropeptide Calcitonin Gene-Related Peptide (CGRP) in the skin. Intravital imaging revealed that commensal-specific T cells are in close proximity to cutaneous nerve fibers in vivo. Correspondingly, we observed upregulation of the receptor for the neuropeptide CGRP, RAMP1, in CD8+ T lymphocytes induced by skin commensal colonization. Neuroimmune CGRP-RAMP1 signaling axis functions in commensal-specific T cells to constrain Type 17 responses and moderate the activation status of microbiota-reactive lymphocytes at homeostasis. As such, modulation of neuroimmune CGRP-RAMP1 signaling in commensal-specific T cells shapes the overall activation status of the skin epithelium, thereby impacting the outcome of responses to insults such as wounding. The ability of somatosensory neurons to control adaptive immunity to the microbiota via the CGRP-RAMP1 axis underscores the various layers of regulation and multisystem coordination required for optimal microbiota-reactive T cell functions under steady state and pathology. Significance statementMultisystem coordination at barrier surfaces is critical for optimal tissue functions and integrity, in response to microbial and environmental cues. In this study, we identified a novel neuroimmune crosstalk mechanism between the sensory nervous system and the adaptive immune response to the microbiota, mediated by the neuropeptide CGRP and its receptor RAMP1 on skin microbiota-induced T lymphocytes. The neuroimmune CGPR-RAMP1 axis constrains adaptive immunity to the microbiota and overall limits the activation status of the skin epithelium, impacting tissue responses to wounding. Our study opens the door to a new avenue to modulate adaptive immunity to the microbiota utilizing neuromodulators, allowing for a more integrative and tailored approach to harnessing microbiota-induced T cells to promote barrier tissue protection and repair.
Ricardo-Gonzalez, R. R.; Kotas, M. E.; Tenvooren, I.; Marquez, D. M.; Fassett, M. S.; Lee, J.; Daniel, S. G.; Bittinger, K.; Diaz, R. E.; Fraser, J. S.; Ansel, K. M.; Spitzer, M. H.; Liang, H.-E.; Locksley, R. M.
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Allergic skin diseases are common, but basal roles for type 2 immunity in cutaneous homeostasis are incompletely understood. Here, we show that skin group 2 innate lymphoid cells (ILC2s) are the predominant resident cells that secretes IL-13, which attenuates epithelial cell proliferation during anagen throughout the hair follicle (HF), including in HF stem cells. Although HF are normal in the absence of type 2 immunity, colonization with the commensal mite, Demodex musculi, results in epithelial proliferation and aberrant hair follicle morphology accompanied by loss of stable commensalism with massive infestation and expansion of inflammatory ILC2s and other immune cells. Topical anti-parasitic agents, but not broad-spectrum antibiotics, reversed the phenotype. Commensal Demodex colonization of mammalian hair follicles is ubiquitous, including in humans, revealing an unanticipated role for ILC2s and type 2 immunity for skin homeostasis in the normal environment. One Sentence SummaryDynamic regulation of skin physiology by Type 2 innate immunity regulates healthy commensalism by parasitic Demodex mites.
Bruton, K.; Spill, P.; Vohra, S.; Baribeau, O.; Manzoor, S.; Gadkar, S.; Davidson, M.; Walker, T. D.; Ellenbogen, Y.; Florescu, A.; Wen, J.; Chu, D. K.; Waserman, S.; Jimenez-Saiz, R.; Epelman, S.; Robbins, C.; Jordana, M.
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IgE production against innocuous antigens can lead to life-threatening reactions such as anaphylaxis. While IgE levels drastically decline with strict allergen avoidance, the ability to regenerate IgE can persist for a lifetime, as is the case for peanut allergy. The mechanism by which IgE regenerates remains unresolved. A novel culture system and application of single-cell RNA-sequencing, elucidated the transcriptomic signature of human peanut-reactive B and T cells and revealed IL-4/IL-13 as a signaling pathway critical for the IgE recall response. Indeed, interruption of this pathway not only prevented IgE production and anaphylaxis, but also reprogrammed the pathogenic response against peanut. This investigation advances our understanding of the mechanism that regenerates IgE in food allergy and spotlights IL-4/IL-13 blockade as a therapeutic with disease-transforming potential. One Sentence SummarySingle-cell transcriptomics of allergic memory responses reveals how to teach the immune system to forget.
Schuster, V. P.; Brown, K.; Laverde, V.; Berkowitz, N.; Granados, A. M.; Oshimori, N.; Leech, J. M.; Weckel, A.; Scharschmidt, T. C.; Ruhland, M. K.
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Conventional dendritic cells navigate complex tissues and sample peripheral antigens, balancing immune suppression and activation to achieve tissue homeostasis. However, it remains unclear how an individual dendritic cells reconciles co-incident signals from immunological opposing antigens within the tissue or tumor microenvironment, where tolerogenic self-antigen and immunogenic tumor antigen or microbes coexist. Here, using complementary in vivo fluorescent reporter systems, high-resolution imaging and endosomal profiling, we simultaneously tracked uptake, intracellular processing and cross-presentation of cutaneous self, tumor and microbial antigens in murine skin tissue, tumors and draining lymph nodes. We find that a substantial fraction of dendritic cells acquire antigen from multiple sources and that localization within endosomal compartments is dictated by antigen source. Notably, type 1 conventional dendritic cells that co-process self and tumor antigen represent a significant proportion of tumor antigen-bearing dendritic cells in the tumor and tumor draining lymph node. These dual-antigen loaded dendritic cells display a diminished capacity to prime tumor-specific CD8+ T cells and a marked reduction in tumor derived peptide presented on surface MHCI, while cross-priming of self-antigen specific T cells is significantly increased. These changes occur despite equivalent or greater tumor antigen uptake relative to self-antigen and high expression of surface MHCI and costimulatory molecules. Together, these data support a model in which multiantigen processing within dendritic cells can bias peptide loading away from tumor-derived epitopes, thereby limiting tumor-specific cross-priming. Modulating the antigenic context of the tumor microenvironment or endosomal routing after antigen uptake may therefore represent a strategy to restore effective dendritic cell-mediated antitumor immunity.
Roberts, E. W.; Ruhland, M. K.; Cai, E.; Mujal, A. M.; Marchuk, K.; Beppler, C.; Nam, D.; Serwas, N. K.; Binnewies, M.; Krummel, M. F.
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In order to drive productive tumor-infiltrating lymphocyte (TIL) function, myeloid populations must direct antigens to the lymph node, including to resident antigen-presenting cells (APCs) that have never touched the tumor. It has long been supposed that APCs trade antigens with one another, but the dominant cell biology underlying that remains unknown. We used in vitro and in vivo assays together with lattice light sheet and multiphoton imaging to show that myeloid cells carry tumor antigen-laden vesicles that they trade with one another as they reach distant sites. This accounts for the majority of antigen displayed to T cells and provides tumors with a mechanism to access APCs that differentially direct T cell activation away from memory phenotypes. This work defines efficient cell biology that drives the first steps of TIL generation and represents a new frontier for engineering tumoral immunity.
Rozario, P.; Lim, Y. S.; Ding, S. L. S.; Firdaus, J. M.; Wearne, S. J.; Wong, H. S. B.; Chua, R.; Robinson, K. S.; Chu, T. S. J.; Liu, M.; Cai, S. S. C.; Tan, S. T. E.; Wee, S. K.; Lamers, M. M.; Verma, N. K.; Xia, Y.; Yap, E. P. H.; Common, J. E. A.; Zhong, F. L.
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While NLRP3 has been extensively studied in myeloid cells, its existence and regulation in epithelial cells, including keratinocytes, are unclear. In fact, whether human keratinocytes express a functional NLRP3 inflammasome at all remains a matter of debate in the inflammasome field. Here, we provide additional evidence that NLRP3 is repressed in human keratinocytes cultured under non-inflammatory conditions but can be sharply induced by interferon-{gamma} (IFN{gamma})--but not lipopolysaccharide (LPS). In this IFN{gamma}-primed state, not all established NLRP3 activators are specific to NLRP3. We report that nigericin-driven keratinocyte pyroptosis occurs via both NLRP1 and NLRP3, whereas Staphylococcus aureus -hemolysin (Hla) exclusively and nonredundantly activates NLRP3, even though both require K+ efflux. Furthermore, in the presence of T cells, certain virulent S. aureus strains can cause NLRP3-dependent pyroptotic death in keratinocytes in vitro through the cooperative actions of superantigens (SAgs) and Hla. In summary, our findings establish the strict inducibility and functional relevance of the NLRP3 inflammasome in non-myeloid, epithelial cells in vitro. These results resolve conflicting reports and position keratinocytes as a context-specific, non-hematopoietic cellular model for studying NLRP3 activation in host-microbe interactions at barrier tissues. KEY FINDINGSO_LIAdditional evidence that NLRP3 is absent in resting, nonstimulated human keratinocytes in vitro C_LIO_LIIFN{gamma}, but not LPS, is a potent priming signal for NLRP3 in human keratinocytes in vitro C_LIO_LIIn IFN{gamma}-primed keratinocytes, S. aureus -hemolysin (Hla) selectively activates NLRP3, whereas nigericin activates both NLRP1 and NLRP3 in vitro C_LIO_LISAg and Hla kill keratinocytes via NLRP3-driven pyroptosis in the presence of T cells in vitro C_LI GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=156 SRC="FIGDIR/small/669639v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@4996f4org.highwire.dtl.DTLVardef@155a2a9org.highwire.dtl.DTLVardef@12a21a0org.highwire.dtl.DTLVardef@105bc15_HPS_FORMAT_FIGEXP M_FIG C_FIG
Damo, M.; Cui, C.; William, I.; Hornick, N. I.; Kwok, D.; Clulo, K.; Damsky, W. E.; Leventhal, J. S.; Joshi, N. S.
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Peripheral tolerance is thought to result from anergy or deletion of self-reactive T cells shortly after antigen encounter. However, the frequent occurrences of immune-related Adverse Events (irAEs) following checkpoint inhibitor (CPI) treatment suggest a hypothesis that immunologically healthy individuals have self-reactive effector T cells that are kept in a non-pathogenic state through checkpoint receptor-mediated suppression, instead of anergy or deletion. We expressed self-antigens in healthy skin and found that antigen-specific CD8 T cells infiltrated the tissue, but remained tolerant, despite having a transcriptional program that resembled effector T cells found after CPIs. These self-reactive PD-1+ CD8 T cells drove IFN{gamma}-dependent increases in PD-L1 on skin myeloid cells. Blockade of PD-1 or PD-1/CTLA-4 led to post-transcriptional upregulation of effector proteins by antigen-specific CD8 T cells and elimination of antigen-expressing epithelial cells, resulting in localized tissue pathology with features of human cutaneous irAEs. This data supports the hypothesis that myeloid cells in healthy skin prevent pathology from self-reactive effector CD8 T cells through the PD-1/PD-L1 pathway.
Blum, J. E.; Kong, R.; Schulman, E. A.; Chen, F. M.; Upadhyay, R.; Romero-Meza, G.; Littman, D. R.; Fischbach, M.; Nagashima, K.; Sattely, E. S.
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Food antigens elicit immune tolerance through the action of intestinal regulatory T (Treg) cells. Unlike food allergens, the proteins that mediate tolerance are mostly undescribed. Here, we found that epitopes derived from seed storage proteins are targets of murine intestinal Treg cells, with the most frequent response targeting the C-terminus of the maize protein alpha-zein. An MHC tetramer loaded with this antigen revealed that zein-specific T cells are predominantly intestinal Treg cells, develop concurrently with weaning, and constitute up to 2% of the peripheral Treg cell pool. Zein-responsive Treg cells repressed naive T cell proliferation ex vivo and prior dietary exposure resulted in a constrained response upon multiple inflammatory challenges in vivo, supporting a specific role for gut-resident Treg cells in suppressing systemic immune responses. Together, our work reveals the development, immune suppressive characteristics, and function of naturally occurring Treg cells that recognize dietary seed-storage proteins, a previously undescribed class of antigens in oral tolerance. One-sentence summaryImmunodominant epitopes from seed storage proteins are a target of intestinal regulatory T cells that modulate immune challenge to food.
Lian, M.; Roy, T.; Tama, L.; Peng, F.; Knöpper, K.; Qiu, L.; Liang, H.-E.; Gasteiger, G.; Ricardo-Gonzalez, R. R.; Locksley, R. M.
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Tissue-resident immune cells are critical for lung homeostasis and protection against inflammation. Here, we describe a novel population of migratory inflammatory CD103+ skin ILC2s (skILC2s) that accumulate in the lung vasculature following transient infestation with ubiquitous Demodex mites, hair follicle commensals that drive local skILC2 proliferation and entry into blood. With time, ex-skILC2s become tissue resident in the lung, occupy previously described immune cell adventitial niches and respond earlier to lung perturbations than endogenous lung ST2+ ILC2s to alter the trajectories of a subsequent immune response. Thus, like transiting ex-gut ILC2s described after small intestinal infection by helminths and protists, ex-skILC2s migrate post-birth in response to pathobionts to change the inflammatory milieu of the lung, revealing a common paradigm by which internal mucosal responses become shaped by ILC2s from barrier epithelia colonized post-birth. HighlightsO_LIDemodex mites infestation drives local expansion of CD103+ skin ILC2s that egress and enter the circulation C_LIO_LIMigratory CD103+ skin-like ILC2s infiltrate into lung, adapt to the local environment and establish long-term residency C_LIO_LIPrior Demodex mite exposure re-organizes the lung ILC2 landscape C_LIO_LIThe distinct cytokine and receptor repertoire of ex-skILC2 alters lung immunity C_LI
Dhariwala, M. O.; DeRogatis, A. M.; Okoro, J. N.; Weckel, A. A.; Tran, V. M.; Habrylo, I.; Ojewumi, O. T.; Tammen, A. E.; Leech, J. M.; Merana, G. R.; Carale, R. O.; Barrere-Cain, R.; Hiam-Galvez, K. J.; Spitzer, M. H.; Scharschmidt, T. C.
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Early life microbe-immune interactions at barrier surfaces have lasting impacts on the trajectory towards health versus disease. Monocytes, macrophages and dendritic cells are primary sentinels in barrier tissues, yet the salient contributions of commensal-myeloid crosstalk during tissue development remain poorly understood. Here, we identify that commensal microbes facilitate accumulation of a population of monocytes in neonatal skin. Transient postnatal depletion of these monocytes resulted in heightened IL-17A production by skin T cells, which was particularly sustained among CD4+ T cells and sufficient to exacerbate inflammatory skin pathologies. Neonatal skin monocytes were enriched in expression of negative regulators of the IL-1 pathway. Functional in vivo experiments confirmed a key role for excessive IL-1R1 signaling in T cells as contributing to the dysregulated type 17 response in neonatal monocyte-depleted mice. Thus, a commensal-driven wave of monocytes into neonatal skin critically facilitates immune homeostasis in this prominent barrier tissue.
Durham, L. E.; Humby, F.; Ng, N.; Gray, E. H.; Ryan, S. E.; Ross, R.; Povoleri, G. A. M.; Nuamah, R.; Fung, K.; Kallayil, A. M.; Dhami, P.; Kirkham, B. W.; Taams, L. S.
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We hypothesised that skin and joint inflammation in psoriatic arthritis (PsA) is linked in terms of CD8+ T-cell phenotype and clonality. We employed scRNAseq to directly compare the transcriptional signature and T-cell receptor repertoire of memory T-cells from paired skin and synovial tissue and/or fluid from patients with PsA. We identified an enrichment of type-17 CD8+ tissue-resident memory (TRM) T-cells in both skin and joint, with a stronger IL-17 signature in the skin than the joint. Several T-cell clones were shared between the skin and joint and these shared clones tended to have the same signature at both sites, characterised by increased expression of genes associated with a cytotoxic, tissue-resident phenotype. Our findings support the hypothesis that skin and joint inflammation in PsA is linked in terms of T-cell clonality and raises the possibility that specific T-cells migrate between these compartments to propagate inflammation across both sites.
Altenburger, L. M.; Claudino Carvoeiro, D.; Dehio, P.; Zhou, J.; Laura, C.; Katoch, M.; Krueger, C.; Barreto de Albuquerque, J.; Pfenninger, P.; Martinez Magdaleno, J.; Abe, J.; Mehling, M.; Dengjel, J.; Iannacone, M.; Hashemi Gheinani, A.; Stein, J. V.
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The generation of effector CD8+ T cells (TEFF) requires activation of naive CD8+ T cells (TN) by dendritic cells (DCs) within lymphoid tissue. To date, it remains elusive how the duration of TN-DC interactions and integration of activation signals are controlled in vivo. Here, we report that lymphoid stroma-secreted ligands for CCR7 constrained interaction duration by gradually inducing CD8+ T cell release from DCs. At late time points of interactions, CCR7 ligands repositioned the F-actin-promoting factor DOCK2 away from the DC interface to enable CD8+ T cell detachment, proliferation onset and acquisition of cytotoxicity. Lack of CCR7 signaling, as during ex vivo activation or in chronically inflamed lymphoid tissue, caused sustained T cell-DC interactions, and generated dysfunctional TEFF with high expression of inhibitory receptors, impaired antimicrobial activity, and poor recall responses. In sum, our findings uncover that lymphoid stromal chemokines act as built-in "disruptors" of T cell-DC interactions for long-term preservation of TEFF functionality.
Samiea, A.; Bahn-Bales, R.; Vanderstreet, J.; Al-Ghezi, M.; Gao, L.; Rettig, M.; Guo, Z.; Yadav, R.; Herzig, D. O.; Fang, S. H.; Tsikitis, L.; Kardosh, A.; Rodda, L. B.; Pucci, F.; Yu, W. Y.; Duhen, R.; Moreau, J. M.
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Tissue-resident memory B cells (BRM) provide powerful localized protection against microbial infection in barrier tissues. It is unknown if analogous BRM populations survey solid tumors and contribute to anti-cancer immunity. We profiled B cells from patients with colorectal cancer and cutaneous basal cell carcinoma and identified a CD69+ memory B cell population consistent with a tissue-resident phenotype. Integrative analysis of transcriptomic datasets identified an optimized signature enriched across cancer types. Tumor infiltrating BRM-like cells preferentially exhibited autoreactivity and their signature correlated with patient outcomes and response to immunotherapy. Skin and lung targeted vaccination established localized BRM that provided IgA dependent organ specific protection upon tumor challenge in murine models. These findings establish BRM as an active component of anti-cancer immunity via preferential reactivity to tumor associated self-antigens.
Khatwani, N.; Searles, T.; Han, J.; Messier, C.; Mittal, N.; Molodtsov, A.; Ramirez, D.; Hawkes, A.; Williams, O. M.; Huang, Y. H.; Kolling, F. W.; Rosato, P.; Turk, M. J.
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Resident memory (Trm) cells play an essential role in anti-tumor immunity. However, little is known about the precursors that differentiate into protective Trm populations against cancer. Here we employed an established model of B16 melanoma neoadjuvant anti-CD4 therapy, to track tumor antigen-specific CD8+ T cells through tissues and across time; from their priming as effectors to their differentiation into Trm. We show that tumor-draining lymph nodes (TDLNs) contain Teff cells that begin to express canonical Trm markers CD103 and CD69. These tumor-specific Teff cells seeded skin and tumor during the effector phase of the response, although egress from these tissues was not required Trm development in LNs. Paired scRNAseq/scTCRseq was used to identify Teff clonotypes in TDLNs and trace their differentiation, in real-time, into Trm populations. We found that expanded clonotypes favored the Trm fate and were unlikely to co-differentiate into other lineages. Precursors of Trm (pre-Trm) clonotypes that subsequently seeded populations throughout tumors, LNs, and skin, were characterized by early expression of tissue residency, stemness, and type-1 IFN sensing genes. These multipotent pre-Trm cells sensed plasmacytoid dendritic cell-derived type-1 interferons in TDLNs, and their expression of interferon alpha receptor was required for their formation of Trm populations in LNs but not in skin. These findings reveal the defining features of pre-Trm cells in response to tumor antigens, and reveal a previously unappreciated role for type-1 IFNs in programming regional Trm immunity to cancer. One Sentence SummaryAnti-tumor effector CD8 T cells adopt early characteristics of tissue residency and stemness, and rely on the sensing of type-1 interferons for their local differentiation into resident memory T cells.
Merrill, E. D.; Prudent, V.; Moghadam, P.; Rodriguez, A.; Hurabielle, C.; Wells, E.; Basso, P.; Scharschmidt, T. C.; Rosenblum, M.; Molofsky, A. B.; Noble, S. B.
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Public health alarm concerning the emerging fungus Candida auris is fueled by its antifungal drug resistance and propensity to cause deadly outbreaks. Persistent skin colonization drives transmission and lethal sepsis although its basis remains mysterious. We compared the skin colonization dynamics of C. auris with its relative C. albicans, quantifying skin fungal persistence and distribution and immune composition and positioning. C. auris displayed a higher propensity to colonize hair follicles and avidly bound to human hair. While C. albicans triggered an effective sterilizing type 3/17 antifungal immune response driven by IL-17A/F-producing lymphocytes, C. auris triggered a type 1, IFN{gamma}-driven immune response targeting hair follicles. Rather than promoting fungal clearance, IFN{gamma} enhanced C. auris skin colonization by acting directly on keratinocytes impairing epithelial barrier integrity and repressing antifungal defense programs. C. auris exploits focal skin immune responses to create a niche for persistence in hair follicles.
Liu, L.; Zhu, L.; Monteiro-Martins, S.; Griffin, A.; Vlahos, L. J.; Fujita, M.; Berrouet, C.; Zanoni, F.; Marasa, M.; Zhang, J. Y.; Zhou, X.-j.; Caliskan, Y.; Akchurin, O.; Al-Akash, S.; Jankauskiene, A.; Bodria, M.; Chishti, A.; Esposito, C.; Esposito, V.; Claes, D.; Tesar, V.; Davis, T. K.; Samsonov, D.; Kaminska, D.; Hryszko, T.; Zaza, G.; Flynn, J. T.; Iorember, F.; Lugani, F.; Rizk, D.; Julian, B. A.; Hidalgo, G.; Kallash, M.; Biancone, L.; Amoroso, A.; Bono, L.; Mani, L.-Y.; Vogt, B.; Lin, F.; Sreedharan, R.; Weng, P.; Ranch, D.; Xiao, N.; Quiroga, A.; Matar, R. B.; Rheault, M.; Wenderfe
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IgA vasculitis (IgAV) is a pediatric disease with skin and systemic manifestations. Here, we conducted genome, transcriptome, and proteome-wide association studies in 2,170 IgAV cases and 5,928 controls, generated IgAV-specific maps of gene expression and splicing from blood of 255 pediatric cases, and reconstructed myeloid-specific regulatory networks to define disease master regulators modulated by the newly identified disease driver genes. We observed significant association at the HLA-DRB1 (OR=1.55, P=1.1x10-25) and fine-mapped specific amino-acid risk substitutions in DR{beta}1. We discovered two novel non-HLA loci: FCAR (OR=1.51, P=1.0x10-20) encoding a myeloid IgA receptor FcR, and INPP5D (OR=1.34, P=2.2x10-09) encoding a known inhibitor of FcR signaling. The FCAR risk locus co-localized with a cis-eQTL increasing FCAR expression; the risk alleles disrupted a PRDM1 binding motif within a myeloid enhancer of FCAR. Another risk locus was associated with a higher genetically predicted levels of plasma IL6R. The IL6R risk haplotype carried a missense variant contributing to accelerated cleavage of IL6R into a soluble form. Using systems biology approaches, we prioritized IgAV master regulators co-modulated by FCAR, INPP5D and IL6R in myeloid cells. We additionally identified 21 shared loci in a cross-phenotype analysis of IgAV with IgA nephropathy, including novel loci PAID4, WLS, and ANKRD55.
Narasimhan, H.; Richter, M. L.; Shakiba, R.; Papaioannou, N. E.; Stehle, C.; Ravi Rengarajan, K.; Ulmert, I.; Küntzel, V.; Stange, E.-L.; Antonova, A. U.; Klein, L.; Dudziak, D.; Colonna, M.; Torow, N.; Hornef, M. W.; Lahl, K.; Romagnani, C.; Colome-Tatche, M.; Schraml, B. U.
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Conventional dendritic cells (cDCs) are potent antigen presenting cells (APCs) that exhibit tissue and age-specific diversity allowing them to direct situation-adapted immunity. Thereby they harbor great potential for being targeted in vaccination and cancer. Here, we resolve conflicting data about expression of retinoic acid receptor-related orphan receptor-{gamma}t (ROR{psi}t) in cDCs. We show that ROR{psi}t+ DCs exist in murine lymphoid and non-lymphoid tissues across age. Fate mapping, functional assays and single cell multiomic profiling reveal these cells as ontogenetically and transcriptionally distinct from other well characterized cDC subtypes, as well as from ROR{psi}t+ type 3 innate lymphocytes (ILC3s). We show that ROR{psi}t+ DCs can migrate to lymph nodes and activate naive CD4+ T cells in response to inflammatory triggers. Comparative and cross-species transcriptomics revealed homologous populations in human spleen, lymph nodes and intestines. Further, integrated meta-analyses aligned ROR{psi}t+ DCs identified here with other emerging populations of ROR{psi}t+APCs, including R-DC-like cells, Janus cells/extrathymic Aire expressing cells (eTACs) and subtypes of Thetis cells. While ROR{psi}t+APCs have primarily been linked to T cell tolerance, our work establishes ROR{psi}t+ DCs as unique lineage of immune sentinel cells conserved across tissues and species that expands the functional repertoire of ROR{psi}t+ APCs beyond promoting tolerance. One sentence summaryROR{gamma}t+ DC exhibit versatile APC functions and are a distinct immune lineage conserved across age, tissues and species that entails Thetis cells, Janus cells/ROR{gamma}t+ eTACs and R-DC-like cells.
Schuster, V. P.; Brown, K.; Unsworth, J. R.; Berkowitz, N.; Ruhland, M. K.
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Conventional dendritic cells orchestrate adaptive immunity by trafficking peripheral antigens to draining lymph nodes and presenting peptide-MHC complexes to prime naive T cells. Migratory and lymph node resident conventional dendritic cell subsets occupy distinct anatomical niches and have been shown to shape T cell activation in a variety of immunologic contexts including infection, vaccination and cancer. How peripheral tissue context and dendritic cell subset specific transcriptional programs collaborate to determine CD8+ T cell priming remains incompletely defined. Using fluorescent antigen, we tracked antigen distribution, dendritic cell transcriptional programming, and functional cross-presentation across tumor, inflammatory, and steady state tissue contexts. We find that skin tumor antigen is more widely distributed amongst draining lymph node conventional dendritic cells than skin antigen derived from either steady state or inflamed skin tissue. Comparing across dendritic cell subsets, migratory type 1 dendritic cells display higher expression of MHCI antigen presentation machinery and genes associated with cross-presentation compared with lymph node resident type 1 dendritic cells in tumor and inflamed tissue contexts. Similarly, they exhibited superior per-cell cross-presentation and stronger induction of naive CD8+ T cell responses. We find that both antigen access in the lymph node and cell-intrinsic cross-presentation efficiency together predict the magnitude and quality of CD8+ T cell priming regardless of tissue context. These results identify migratory dendritic cells, particularly type 1, as central mediators of antitumor CD8+ T cell responses and support therapeutic strategies that either restrict antigen dispersal from migratory dendritic cells or augment the efficiency of resident dendritic cell cross-presentation. SYNOPSISAntigen transfer from migratory to resident conventional dendritic cell subsets is increased in melanoma compared to steady state or inflamed skin draining lymph nodes. Superior T cell proliferation and expression of cross-presentation machinery by migratory dendritic cells following antigen uptake of tumor suggests retaining antigen within these dendritic cell subsets may improve antitumor CD8+ T cell responses.
Lyons-Cohen, M. R.; Shamskhou, E.; Gerner, M. Y.
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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.