ABSTRACT
The ileal brake is an important reflex that ensures proper absorption of nutrients. This involves intestinal GLP-1 release, which recruits an enteric-sympathetic-spinal pathway to inhibit gastric motility and appetite. This visceral alarm system could be targeted to treat obesity and gastrointestinal dysfunction.
Subject(s)
Gastrointestinal Diseases , Glucagon-Like Peptide 1 , Brain , Humans , Ileum , ObesityABSTRACT
Glucagon-like peptide-1 (GLP-1) is a signal peptide released from enteroendocrine cells of the lower intestine. GLP-1 exerts anorectic and antimotility actions that protect the body against nutrient malabsorption. However, little is known about how intestinal GLP-1 affects distant organs despite rapid enzymatic inactivation. We show that intestinal GLP-1 inhibits gastric emptying and eating via intestinofugal neurons, a subclass of myenteric neurons that project to abdominal sympathetic ganglia. Remarkably, cell-specific ablation of intestinofugal neurons eliminated intestinal GLP-1 effects, and their chemical activation functioned as a GLP-1 mimetic. GLP-1 sensing by intestinofugal neurons then engaged a sympatho-gastro-spinal-reticular-hypothalamic pathway that links abnormal stomach distension to craniofacial programs for food rejection. Within this pathway, cell-specific activation of discrete neuronal populations caused systemic GLP-1-like effects. These molecularly identified, delimited enteric circuits may be targeted to ameliorate the abdominal bloating and loss of appetite typical of gastric motility disorders.
Subject(s)
Appetite , Glucagon-Like Peptide 1/metabolism , Ileum , Neurons , Stomach , Abdomen , Animals , Cell Communication , Glucagon-Like Peptide-1 Receptor/metabolism , Ileum/innervation , Ileum/metabolism , Male , Mice , Neurons/metabolism , Nitric Oxide/metabolism , Signal Transduction , Stomach/innervation , Stomach/metabolismABSTRACT
A mysterious feature of Crohn's disease (CD) is the extra-intestinal manifestation of "creeping fat" (CrF), defined as expansion of mesenteric adipose tissue around the inflamed and fibrotic intestine. In the current study, we explore whether microbial translocation in CD serves as a central cue for CrF development. We discovered a subset of mucosal-associated gut bacteria that consistently translocated and remained viable in CrF in CD ileal surgical resections, and identified Clostridium innocuum as a signature of this consortium with strain variation between mucosal and adipose isolates, suggesting preference for lipid-rich environments. Single-cell RNA sequencing characterized CrF as both pro-fibrotic and pro-adipogenic with a rich milieu of activated immune cells responding to microbial stimuli, which we confirm in gnotobiotic mice colonized with C. innocuum. Ex vivo validation of expression patterns suggests C. innocuum stimulates tissue remodeling via M2 macrophages, leading to an adipose tissue barrier that serves to prevent systemic dissemination of bacteria.
Subject(s)
Adipose Tissue/microbiology , Bacterial Translocation , Gastrointestinal Microbiome , Mesentery/microbiology , Adipose Tissue/pathology , Animals , Biodiversity , Biomarkers/metabolism , Cell Polarity , Cells, Cultured , Colitis, Ulcerative/pathology , Crohn Disease/microbiology , Crohn Disease/pathology , Gastrointestinal Microbiome/genetics , Gene Expression Regulation , Germ-Free Life , Humans , Ileum/microbiology , Ileum/pathology , Lipopolysaccharides/metabolism , Macrophages/metabolism , Metagenome , Metagenomics , Mice , Mice, Inbred C57BL , Phenotype , RNA, Ribosomal, 16S/genetics , Stem Cells/metabolismABSTRACT
The enteric nervous system (ENS) coordinates diverse functions in the intestine but has eluded comprehensive molecular characterization because of the rarity and diversity of cells. Here we develop two methods to profile the ENS of adult mice and humans at single-cell resolution: RAISIN RNA-seq for profiling intact nuclei with ribosome-bound mRNA and MIRACL-seq for label-free enrichment of rare cell types by droplet-based profiling. The 1,187,535 nuclei in our mouse atlas include 5,068 neurons from the ileum and colon, revealing extraordinary neuron diversity. We highlight circadian expression changes in enteric neurons, show that disease-related genes are dysregulated with aging, and identify differences between the ileum and proximal/distal colon. In humans, we profile 436,202 nuclei, recovering 1,445 neurons, and identify conserved and species-specific transcriptional programs and putative neuro-epithelial, neuro-stromal, and neuro-immune interactions. The human ENS expresses risk genes for neuropathic, inflammatory, and extra-intestinal diseases, suggesting neuronal contributions to disease.
Subject(s)
Enteric Nervous System/cytology , Enteric Nervous System/metabolism , Gene Expression Regulation, Developmental/genetics , Neurons/metabolism , Nissl Bodies/metabolism , RNA, Messenger/metabolism , Single-Cell Analysis/methods , Aging/genetics , Aging/metabolism , Animals , Circadian Clocks/genetics , Colon/cytology , Colon/metabolism , Endoplasmic Reticulum, Rough/genetics , Endoplasmic Reticulum, Rough/metabolism , Endoplasmic Reticulum, Rough/ultrastructure , Epithelial Cells/metabolism , Female , Genetic Predisposition to Disease/genetics , Humans , Ileum/cytology , Ileum/metabolism , Inflammation/genetics , Inflammation/metabolism , Intestinal Diseases/genetics , Intestinal Diseases/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Microscopy, Electron, Transmission , Nervous System Diseases/genetics , Nervous System Diseases/metabolism , Neuroglia/cytology , Neuroglia/metabolism , Neurons/cytology , Nissl Bodies/genetics , Nissl Bodies/ultrastructure , RNA, Messenger/genetics , RNA-Seq , Ribosomes/metabolism , Ribosomes/ultrastructure , Stromal Cells/metabolismABSTRACT
Rotavirus (RV) encounters intestinal epithelial cells amidst diverse microbiota, opening possibilities of microbes influencing RV infection. Although RV clearance typically requires adaptive immunity, we unintentionally generated RV-resistant immunodeficient mice, which, we hypothesized, reflected select microbes protecting against RV. Accordingly, such RV resistance was transferred by co-housing and fecal transplant. RV-protecting microbiota were interrogated by heat, filtration, and antimicrobial agents, followed by limiting dilution transplant to germ-free mice and microbiome analysis. This approach revealed that segmented filamentous bacteria (SFB) were sufficient to protect mice against RV infection and associated diarrhea. Such protection was independent of previously defined RV-impeding factors, including interferon, IL-17, and IL-22. Colonization of the ileum by SFB induced changes in host gene expression and accelerated epithelial cell turnover. Incubation of RV with SFB-containing feces reduced infectivity in vitro, suggesting direct neutralization of RV. Thus, independent of immune cells, SFB confer protection against certain enteric viral infections and associated diarrheal disease.
Subject(s)
Adaptive Immunity/genetics , Diarrhea/microbiology , Intestinal Mucosa/microbiology , Rotavirus Infections/microbiology , Animals , Anti-Infective Agents/pharmacology , Bacteria/genetics , Bacteria/metabolism , Diarrhea/prevention & control , Diarrhea/virology , Feces/microbiology , Gene Expression Regulation/genetics , Humans , Ileum/microbiology , Ileum/pathology , Ileum/virology , Interferons/genetics , Interleukin-17/genetics , Interleukins/genetics , Intestinal Mucosa/pathology , Intestinal Mucosa/virology , Mice , Microbiota/genetics , Rotavirus/pathogenicity , Rotavirus Infections/prevention & control , Rotavirus Infections/virology , Interleukin-22ABSTRACT
Crohn's disease (CD) is a chronic gastrointestinal disease that is increasing in prevalence worldwide. CD is multifactorial, involving the complex interplay of genetic, immune, and environmental factors, necessitating a system-level understanding of its etiology. To characterize cell-type-specific transcriptional heterogeneity in active CD, we profiled 720,633 cells from the terminal ileum and colon of 71 donors with varying inflammation status. Our integrated datasets revealed organ- and compartment-specific responses to acute and chronic inflammation; most immune changes were in cell composition, whereas transcriptional changes dominated among epithelial and stromal cells. These changes correlated with endoscopic inflammation, but small and large intestines exhibited distinct responses, which were particularly apparent when focusing on IBD risk genes. Finally, we mapped markers of disease-associated myofibroblast activation and identified CHMP1A, TBX3, and RNF168 as regulators of fibrotic complications. Altogether, our results provide a roadmap for understanding cell-type- and organ-specific differences in CD and potential directions for therapeutic development.
Subject(s)
Crohn Disease , Humans , Transcriptome , Colon , Ileum , Inflammation/genetics , Ubiquitin-Protein Ligases/geneticsABSTRACT
Lymphangitis and the formation of tertiary lymphoid organs (TLOs) in the mesentery are features of Crohn's disease. Here, we examined the genesis of these TLOs and their impact on disease progression. Whole-mount and intravital imaging of the ileum and ileum-draining collecting lymphatic vessels (CLVs) draining to mesenteric lymph nodes from TNFΔARE mice, a model of ileitis, revealed TLO formation at valves of CLVs. TLOs obstructed cellular and molecular outflow from the gut and were sites of lymph leakage and backflow. Tumor necrosis factor (TNF) neutralization begun at early stages of TLO formation restored lymph transport. However, robustly developed, chronic TLOs resisted regression and restoration of flow after TNF neutralization. TNF stimulation of cultured lymphatic endothelial cells reprogrammed responses to oscillatory shear stress, preventing the induction of valve-associated genes. Disrupted transport of immune cells, driven by loss of valve integrity and TLO formation, may contribute to the pathology of Crohn's disease.
Subject(s)
Crohn Disease/immunology , Endothelial Cells/immunology , Ileum/immunology , Lymph/metabolism , Lymphatic Vessels/immunology , Mesentery/immunology , Tertiary Lymphoid Structures/immunology , Tumor Necrosis Factor-alpha/metabolism , Animals , Cell Movement , Cells, Cultured , Disease Models, Animal , Humans , Ileitis , Lymphangitis , Mice , Mice, Knockout , Stress, MechanicalABSTRACT
Graft-versus-host disease (GVHD) in the gastrointestinal (GI) tract is the principal determinant of lethality following allogeneic bone marrow transplantation (BMT). Here, we examined the mechanisms that initiate GVHD, including the relevant antigen-presenting cells. MHC class II was expressed on intestinal epithelial cells (IECs) within the ileum at steady state but was absent from the IECs of germ-free mice. IEC-specific deletion of MHC class II prevented the initiation of lethal GVHD in the GI tract. MHC class II expression on IECs was absent from mice deficient in the TLR adaptors MyD88 and TRIF and required IFNγ secretion by lamina propria lymphocytes. IFNγ responses are characteristically driven by IL-12 secretion from myeloid cells. Antibiotic-mediated depletion of the microbiota inhibited IL-12/23p40 production by ileal macrophages. IL-12/23p40 neutralization prevented MHC class II upregulation on IECs and initiation of lethal GVHD in the GI tract. Thus, MHC class II expression by IECs in the ileum initiates lethal GVHD, and blockade of IL-12/23p40 may represent a readily translatable therapeutic strategy.
Subject(s)
Antigen Presentation/immunology , Antigen-Presenting Cells/immunology , Gastrointestinal Microbiome/immunology , Graft vs Host Disease/etiology , Histocompatibility Antigens Class II/immunology , Intestinal Mucosa/immunology , Animals , Antigen-Presenting Cells/metabolism , Biomarkers , Cytokines/metabolism , Disease Susceptibility , Female , Gene Expression , Graft vs Host Disease/mortality , Histocompatibility Antigens Class II/genetics , Ileum/metabolism , Intestinal Mucosa/metabolism , Intestinal Mucosa/microbiology , Kaplan-Meier Estimate , Lymphocyte Subsets/immunology , Lymphocyte Subsets/metabolism , Male , Mice , Mice, Transgenic , Prognosis , Promoter Regions, Genetic , Signal TransductionABSTRACT
Alterations of symbiosis between microbiota and intestinal epithelial cells (IEC) are associated with intestinal and systemic pathologies. Interactions between bacterial products (MAMPs) and Toll-like receptors (TLRs) are known to be mandatory for IEC homeostasis, but how TLRs may time homeostatic functions with circadian changes is unknown. Our functional and molecular dissections of the IEC circadian clock demonstrate that its integrity is required for microbiota-IEC dialog. In IEC, the antiphasic expression of the RORα activator and RevErbα repressor clock output regulators generates a circadian rhythmic TLR expression that converts the temporally arrhythmic microbiota signaling into circadian rhythmic JNK and IKKß activities, which prevents RevErbα activation by PPARα that would disrupt the circadian clock. Moreover, through activation of AP1 and NF-κB, these activities, together with RORα and RevErbα, enable timing homeostatic functions of numerous genes with IEC circadian events. Interestingly, microbiota signaling deficiencies induce a prediabetic syndrome due to ileal corticosterone overproduction consequent to clock disruption.
Subject(s)
Ileum/microbiology , Ileum/physiology , Intestinal Mucosa/microbiology , Intestinal Mucosa/physiology , Metagenome , Toll-Like Receptors/immunology , Animals , Corticosterone/metabolism , Ileum/immunology , Intestinal Mucosa/immunology , Male , Mice , Mice, Inbred C57BL , NF-kappa B/metabolism , Nuclear Receptor Subfamily 1, Group D, Member 1/metabolism , Nuclear Receptor Subfamily 1, Group F, Member 1/metabolismABSTRACT
The small intestine is the main organ for nutrient absorption, and its extensive resection leads to malabsorption and wasting conditions referred to as short bowel syndrome (SBS). Organoid technology enables an efficient expansion of intestinal epithelium tissue in vitro1, but reconstruction of the whole small intestine, including the complex lymphovascular system, has remained challenging2. Here we generate a functional small intestinalized colon (SIC) by replacing the native colonic epithelium with ileum-derived organoids. We first find that xenotransplanted human ileum organoids maintain their regional identity and form nascent villus structures in the mouse colon. In vitro culture of an organoid monolayer further reveals an essential role for luminal mechanistic flow in the formation of villi. We then develop a rat SIC model by repositioning the SIC at the ileocaecal junction, where the epithelium is exposed to a constant luminal stream of intestinal juice. This anatomical relocation provides the SIC with organ structures of the small intestine, including intact vasculature and innervation, villous structures, and the lacteal (a fat-absorbing lymphatic structure specific to the small intestine). The SIC has absorptive functions and markedly ameliorates intestinal failure in a rat model of SBS, whereas transplantation of colon organoids instead of ileum organoids invariably leads to mortality. These data provide a proof of principle for the use of intestinal organoids for regenerative purposes, and offer a feasible strategy for SBS treatment.
Subject(s)
Colon/cytology , Ileum/transplantation , Intestinal Mucosa/cytology , Organoids/transplantation , Regeneration , Regenerative Medicine/methods , Short Bowel Syndrome/therapy , Animals , Colon/blood supply , Colon/innervation , Colon/surgery , Disease Models, Animal , Heterografts , Humans , Ileum/cytology , Intestinal Mucosa/blood supply , Intestinal Mucosa/innervation , Intestinal Mucosa/surgery , Male , Organ Culture Techniques , Organoids/cytology , Rats , Rats, Inbred Lew , Short Bowel Syndrome/pathology , Short Bowel Syndrome/surgeryABSTRACT
CD4+ T cells are tightly regulated by microbiota in the intestine, but whether intestinal T cells interface with host-derived metabolites is less clear. Here, we show that CD4+ T effector (Teff) cells upregulated the xenobiotic transporter, Mdr1, in the ileum to maintain homeostasis in the presence of bile acids. Whereas wild-type Teff cells upregulated Mdr1 in the ileum, those lacking Mdr1 displayed mucosal dysfunction and induced Crohn's disease-like ileitis following transfer into Rag1-/- hosts. Mdr1 mitigated oxidative stress and enforced homeostasis in Teff cells exposed to conjugated bile acids (CBAs), a class of liver-derived emulsifying agents that actively circulate through the ileal mucosa. Blocking ileal CBA reabsorption in transferred Rag1-/- mice restored Mdr1-deficient Teff cell homeostasis and attenuated ileitis. Further, a subset of ileal Crohn's disease patients displayed MDR1 loss of function. Together, these results suggest that coordinated interaction between mucosal Teff cells and CBAs in the ileum regulate intestinal immune homeostasis.
Subject(s)
ATP Binding Cassette Transporter, Subfamily B, Member 1/immunology , Bile Acids and Salts/immunology , CD4-Positive T-Lymphocytes/immunology , Crohn Disease/immunology , Ileitis/immunology , Intestinal Mucosa/immunology , ATP Binding Cassette Transporter, Subfamily B, Member 1/deficiency , ATP Binding Cassette Transporter, Subfamily B, Member 1/genetics , Acridines/pharmacology , Adult , Animals , Bile Acids and Salts/metabolism , Bile Acids and Salts/pharmacology , Biological Transport , CD4-Positive T-Lymphocytes/drug effects , CD4-Positive T-Lymphocytes/pathology , Crohn Disease/genetics , Crohn Disease/pathology , Disease Models, Animal , Female , Gene Expression Regulation , Homeodomain Proteins/genetics , Homeodomain Proteins/immunology , Homeostasis/immunology , Humans , Ileitis/genetics , Ileitis/pathology , Ileum/immunology , Ileum/pathology , Immunity, Mucosal , Intestinal Mucosa/pathology , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Middle Aged , Oxidative Stress , Signal Transduction , Tetrahydroisoquinolines/pharmacologyABSTRACT
Autoreactive encephalitogenic T cells exist in the healthy immune repertoire but need a trigger to induce CNS inflammation. The underlying mechanisms remain elusive, whereby microbiota were shown to be involved in the manifestation of CNS autoimmunity. Here, we used intravital imaging to explore how microbiota affect the T cells as trigger of CNS inflammation. Encephalitogenic CD4+ T cells transduced with the calcium-sensing protein Twitch-2B showed calcium signaling with higher frequency than polyclonal T cells in the small intestinal lamina propria (LP) but not in Peyer's patches. Interestingly, nonencephalitogenic T cells specific for OVA and LCMV also showed calcium signaling in the LP, indicating a general stimulating effect of microbiota. The observed calcium signaling was microbiota and MHC class II dependent as it was significantly reduced in germfree animals and after administration of anti-MHC class II antibody, respectively. As a consequence of T cell stimulation in the small intestine, the encephalitogenic T cells start expressing Th17-axis genes. Finally, we show the migration of CD4+ T cells from the small intestine into the CNS. In summary, our direct in vivo visualization revealed that microbiota induced T cell activation in the LP, which directed T cells to adopt a Th17-like phenotype as a trigger of CNS inflammation.
Subject(s)
Intestinal Mucosa , Intestine, Small , Animals , Duodenum , Inflammation , IleumABSTRACT
Crohn's disease is a chronic inflammatory disease of the gastrointestinal tract that might lead to progressive bowel damage and disability. The exact cause of Crohn's disease is unknown, but evidence points towards multifactorial events causing dysregulation of the innate immune system in genetically susceptible people. Commonly affecting the terminal ileum and proximal colon, Crohn's disease inflammation is often discontinuous and patchy, segmental, and transmural. Identification of characteristic findings on ileocolonoscopy and histology remains the diagnostic gold standard, but complete assessment involves laboratory abnormalities, including micronutrient deficiencies, cross-sectional imaging to identify transmural disease extent, severity and complications, and a psychosocial assessment. Treatment strategies for patients with Crohn's disease now go beyond achieving clinical remission to include deeper targets of endoscopic healing and consideration of adjunctive histological and transmural targets to alter disease progression potentially further. The use of early effective advanced therapies and development of therapies targeting alternative novel pathways with improved safety profiles have resulted in a new era of healing in Crohn's disease management. Future combination of advanced therapies with diet or other biological drugs and small molecules, together with improvements in tight control monitoring tools and predictive biomarkers might continue to improve outcomes for patients with Crohn's disease.
Subject(s)
Crohn Disease , Humans , Crohn Disease/therapy , Crohn Disease/drug therapy , Ileum/pathology , Endoscopy , BiomarkersABSTRACT
BACKGROUND & AIMS: Hirschsprung's disease is defined by the absence of the enteric nervous system (ENS) from the distal bowel. Primary treatment is "pull-through" surgery to remove bowel that lacks ENS, with reanastomosis of "normal" bowel near the anal verge. Problems after pull-through are common, and some may be due to retained hypoganglionic bowel (ie, low ENS density). Testing this hypothesis has been difficult because counting enteric neurons in tissue sections is unreliable, even for experts. Tissue clearing and 3-dimensional imaging provide better data about ENS structure than sectioning. METHODS: Regions from 11 human colons and 1 ileal specimen resected during Hirschsprung's disease pull-through surgery were cleared, stained with antibodies to visualize the ENS, and imaged by confocal microscopy. Control distal colon from people with no known bowel problems were similarly cleared, stained, and imaged. RESULTS: Quantitative analyses of human colon, ranging from 3 days to 60 years old, suggest age-dependent changes in the myenteric plexus area, ENS ganglion area, percentage of myenteric plexus occupied by ganglia, neurons/mm2, and neuron Feret's diameter. Neuron counting using 3-dimensional images was highly reproducible. High ENS density in neonatal colon allowed reliable neuron counts using 500-µm2 × 500-µm2 regions (36-fold smaller than in adults). Hirschsprung's samples varied 8-fold in proximal margin enteric neuron density and had diverse ENS architecture in resected bowel. CONCLUSIONS: Tissue clearing and 3-dimensional imaging provide more reliable information about ENS structure than tissue sections. ENS structure changes during childhood. Three-dimensional ENS anatomy may provide new insight into human bowel motility disorders, including Hirschsprung's disease.
Subject(s)
Colon , Enteric Nervous System , Hirschsprung Disease , Imaging, Three-Dimensional , Microscopy, Confocal , Humans , Hirschsprung Disease/pathology , Hirschsprung Disease/diagnostic imaging , Hirschsprung Disease/surgery , Colon/innervation , Colon/pathology , Colon/diagnostic imaging , Child , Infant , Enteric Nervous System/pathology , Enteric Nervous System/diagnostic imaging , Child, Preschool , Adolescent , Adult , Infant, Newborn , Middle Aged , Female , Male , Young Adult , Myenteric Plexus/pathology , Myenteric Plexus/diagnostic imaging , Ileum/diagnostic imaging , Ileum/innervation , Ileum/pathology , Age FactorsABSTRACT
BACKGROUND & AIMS: Putative anion transporter-1 (PAT1, SLC26A6) plays a key role in intestinal oxalate and bicarbonate secretion. PAT1 knockout (PKO) mice exhibit hyperoxaluria and nephrolithiasis. Notably, diseases such as inflammatory bowel disease are also associated with higher risk of hyperoxaluria and nephrolithiasis. However, the potential role of PAT1 deficiency in gut-barrier integrity and susceptibility to colitis is currently elusive. METHODS: Age-matched PKO and wild-type littermates were administered 3.5% dextran sulfate sodium in drinking water for 6 days. Ileum and colon of control and treated mice were harvested. Messenger RNA and protein expression of tight junction proteins were determined by reverse transcription polymerase chain reaction and western blotting. Severity of inflammation was assessed by measuring diarrheal phenotype, cytokine expression, and hematoxylin and eosin staining. Gut microbiome and associated metabolome were analyzed by 16S ribosomal RNA sequencing and mass spectrometry, respectively. RESULTS: PKO mice exhibited significantly higher loss of body weight, gut permeability, colonic inflammation, and diarrhea in response to dextran sulfate sodium treatment. In addition, PKO mice showed microbial dysbiosis and significantly reduced levels of butyrate and butyrate-producing microbes compared with controls. Co-housing wild-type and PKO mice for 4 weeks resulted in PKO-like signatures on the expression of tight junction proteins in the colons of wild-type mice. CONCLUSIONS: Our data demonstrate that loss of PAT1 disrupts gut microbiome and related metabolites, decreases gut-barrier integrity, and increases host susceptibility to intestinal inflammation. These findings, thus, highlight a novel role of the oxalate transporter PAT1 in promoting gut-barrier integrity, and its deficiency appears to contribute to the pathogenesis of inflammatory bowel diseases.
Subject(s)
Antiporters , Colitis , Dysbiosis , Gastrointestinal Microbiome , Sulfate Transporters , Animals , Male , Mice , Antiporters/genetics , Antiporters/metabolism , Antiporters/deficiency , Colitis/microbiology , Colitis/metabolism , Colitis/chemically induced , Colitis/pathology , Colitis/genetics , Colon/microbiology , Colon/pathology , Colon/metabolism , Dextran Sulfate , Diarrhea/microbiology , Diarrhea/metabolism , Disease Models, Animal , Ileum/pathology , Ileum/microbiology , Ileum/metabolism , Intestinal Mucosa/microbiology , Intestinal Mucosa/metabolism , Intestinal Mucosa/pathology , Mice, Inbred C57BL , Mice, Knockout , Permeability , Sulfate Transporters/genetics , Sulfate Transporters/metabolism , Tight Junction Proteins/metabolism , Tight Junction Proteins/geneticsABSTRACT
One in six people are projected to be 65 years or older by 2050. As the population ages, better treatments for injuries that disproportionately impact the aged population will be needed. Clinical studies show that people aged 65 and older experience higher rates of morbidity and mortality after burn injury, including a greater incidence of pulmonary complications when compared to younger burn injured adults, which we and others believe is mediated, in part, by inflammation originating in the intestines. Herein, we use our clinically relevant model of scald burn injury in young and aged mice to determine whether cohousing aged mice with young mice or giving aged mice oral gavage of fecal material from young mice is sufficient to alter the microbiome of the aged mice and protect them from inflammation in the ileum and the lungs. Aged burn injured mice have less DNA expression of Bacteroidetes in the feces and an unhealthy Firmicutes/Bacteroidetes ratio. Both Bacteroidetes and the ratio of these two phyla are restored in aged burn injured by prior cohousing for a month with younger mice but not fecal transfer from young mice. This shift in the microbiome coincides with heightened expression of danger-associated molecular patterns (DAMP), and pro-inflammatory cytokine interleukin-6 (il6) in the ileum and lung of aged, burn injured mice, and heightened antimicrobial peptide camp in the lung. Cohousing reverses DAMP expression in the ileum and lung, and cathelicidin-related antimicrobial peptide protein (camp) in the lung, while fecal transfer heightened DAMPs while reducing camp in the lung, and also increased IL-6 protein in the lungs. These results highlight the importance of the intestinal microbiome in mediating inflammation within the gut-lung axis, giving insights into potential future treatments in the clinic.
Subject(s)
Burns , Gastrointestinal Microbiome , Inflammation , Animals , Burns/microbiology , Mice , Inflammation/microbiology , Mice, Inbred C57BL , Male , Aging , Feces/microbiology , Lung/microbiology , Lung/metabolism , Lung/pathology , Fecal Microbiota Transplantation , Bacteroidetes , Ileum/microbiology , Ileum/metabolismABSTRACT
It is unclear why disease occurs in only a small proportion of persons carrying common risk alleles of disease susceptibility genes. Here we demonstrate that an interaction between a specific virus infection and a mutation in the Crohn's disease susceptibility gene Atg16L1 induces intestinal pathologies in mice. This virus-plus-susceptibility gene interaction generated abnormalities in granule packaging and unique patterns of gene expression in Paneth cells. Further, the response to injury induced by the toxic substance dextran sodium sulfate was fundamentally altered to include pathologies resembling aspects of Crohn's disease. These pathologies triggered by virus-plus-susceptibility gene interaction were dependent on TNFalpha and IFNgamma and were prevented by treatment with broad spectrum antibiotics. Thus, we provide a specific example of how a virus-plus-susceptibility gene interaction can, in combination with additional environmental factors and commensal bacteria, determine the phenotype of hosts carrying common risk alleles for inflammatory disease.
Subject(s)
Carrier Proteins/genetics , Crohn Disease/genetics , Crohn Disease/virology , Genetic Predisposition to Disease , Ileum/pathology , Norovirus , Animals , Autophagy-Related Proteins , Crohn Disease/pathology , Gene Expression Profiling , Humans , Interferon-gamma/metabolism , Mice , Paneth Cells/metabolism , Paneth Cells/virology , Tumor Necrosis Factor-alpha/metabolismABSTRACT
Paneth cells are intestinal epithelial cells that release antimicrobial peptides, such as α-defensin as part of host defense. Together with mesenchymal cells, Paneth cells provide niche factors for epithelial stem cell homeostasis. Here, we report two subtypes of murine Paneth cells, differentiated by their production and utilization of fucosyltransferase 2 (Fut2), which regulates α(1,2)fucosylation to create cohabitation niches for commensal bacteria and prevent invasion of the intestine by pathogenic bacteria. The majority of Fut2- Paneth cells were localized in the duodenum, whereas the majority of Fut2+ Paneth cells were in the ileum. Fut2+ Paneth cells showed higher granularity and structural complexity than did Fut2- Paneth cells, suggesting that Fut2+ Paneth cells are involved in host defense. Signaling by the commensal bacteria, together with interleukin 22 (IL-22), induced the development of Fut2+ Paneth cells. IL-22 was found to affect the α-defensin secretion system via modulation of Fut2 expression, and IL-17a was found to increase the production of α-defensin in the intestinal tract. Thus, these intestinal cytokines regulate the development and function of Fut2+ Paneth cells as part of gut defense.
Subject(s)
Cytokines/metabolism , Fucosyltransferases/metabolism , Gastrointestinal Microbiome/physiology , Paneth Cells/metabolism , Animals , Fucosyltransferases/genetics , Ileum , Interleukin-17/metabolism , Interleukins/metabolism , Mice , Symbiosis , alpha-Defensins/metabolism , Interleukin-22 , Galactoside 2-alpha-L-fucosyltransferaseABSTRACT
This study aimed to explore the impact of SCD Probiotics supplementation on biomolecule profiles and histopathology of ileum and colon tissues during a 30-day intermittent fasting (IF) program. Male Sprague-Dawley rats, aged 24 months, underwent 18-h daily fasting and received 3 mL (1 × 108 CFU) of SCD Probiotics. The differences in biomolecule profiles were determined using FTIR Spectroscopy and two machine learning techniques, Linear Discriminant Analysis (LDA) and Support Vector Machine (SVM), which showed significant differences with high accuracy rates. Spectrochemical bands indicating alterations in lipid, protein and nucleic acid profiles in both tissues. The most notable changes were observed in the group subjected to both IF and SCD Probiotics, particularly in the colon. Both interventions, individually and in combination, decreased protein carbonylation levels. SCD Probiotics exerted a more substantial impact on membrane dynamics than IF alone. Additionally, both IF and SCD Probiotics were found to have protective effects on intestinal structure and stability by reducing mast cell density and levels of TNF-α and NF-κB expression in ileum and colon tissues, thus potentially mitigating age-related intestinal damage and inflammation. Furthermore, our results illustrated that while IF and SCD Probiotics individually instigate unique changes in ileum and colon tissues, their combined application yielded more substantial benefits. This study provides evidence for the synergistic potential of IF and SCD Probiotics in combating age-related intestinal alterations.
Subject(s)
Intermittent Fasting , Probiotics , Male , Rats , Animals , Rats, Sprague-Dawley , Ileum , Probiotics/pharmacology , ColonABSTRACT
BACKGROUND: In the beef industry, bull calves are usually castrated to improve flavor and meat quality; however, this can reduce their growth and slaughter performance. The gut microbiota is known to exert a significant influence on growth and slaughter performance. However, there is a paucity of research investigating the impact of castration on gut microbiota composition and its subsequent effects on slaughter performance and meat flavor. RESULT: The objective of this study was to examine the processes via which castration hinders slaughter productivity and enhances meat quality. Bull and castrated calves were maintained under the same management conditions, and at slaughter, meat quality was assessed, and ileum and epithelial tissue samples were obtained. The research employed metagenomic sequencing and non-targeted metabolomics techniques to investigate the makeup of the microbiota and identify differential metabolites. The findings of this study revealed the Carcass weight and eye muscle area /carcass weight in the bull group were significantly higher than those in the steer group. There were no significant differences in the length, width, and crypt depth of the ileum villi between the two groups. A total of 53 flavor compounds were identified in the two groups of beef, of which 16 were significantly higher in the steer group than in the bull group, and 5 were significantly higher in the bull group than in the steer group. In addition, bacteria, Eukaryota, and virus species were significantly separated between the two groups. The lipid metabolism pathways of α-linolenic acid, linoleic acid, and unsaturated fatty acids were significantly enriched in the Steers group. Compared with the steer group, the organic system pathway is significantly enriched in the bull group. The study also found that five metabolites (LPC (0:0/20:3), LPC (20:3/0:0), LPE (0:0/22:5), LPE (22:5/0:0), D-Mannosamine), and three species (s_Cloning_vector_Hsp70_LexA-HP1, s_Bacteroides_Coprophilus_CAG: 333, and s_Clostridium_nexile-CAG: 348) interfere with each other and collectively have a positive impact on the flavor compounds of beef. CONCLUSIONS: These findings provide a basic understanding that under the same management conditions, castration does indeed reduce the slaughter performance of bulls and improve the flavor of beef. Microorganisms and metabolites contribute to these changes through interactions.