Search results for "intestinal epithelium"

showing 10 items of 40 documents

Transcytosis of Bacillus subtilis extracellular vesicles through an in vitro intestinal epithelial cell model

2020

Bacterial EVs have been related to inter-kingdom communication between probiotic/pathogenic bacteria and their hosts. Our aim was to investigate the transcytosis process of B. subtilis EVs using an in vitro intestinal epithelial cell model. In this study, using Confocal Laser Scanning Microscopy, we report that uptake and internalization of CFSE-labeled B. subtilis EVs (115 nm ± 27 nm) by Caco-2 cells are time-dependent. To study the transcytosis process we used a transwell system and EVs were quantified in the lower chamber by Fluorescence and Nanoparticle Tracking Analysis measurements. Intact EVs are transported across a polarized cell monolayer at 60–120 min and increased after 240 min …

0301 basic medicineCell Survivalmedia_common.quotation_subjectNanoparticle tracking analysislcsh:MedicineBacillus subtilisCellular imagingmedicine.disease_causeModels BiologicalGastrointestinal epitheliumArticleEpithelium//purl.org/becyt/ford/1 [https]Extracellular Vesicles03 medical and health sciences0302 clinical medicineFunctional FoodmedicineHumansCellular microbiology//purl.org/becyt/ford/1.6 [https]Internalizationlcsh:ScienceCell Proliferationmedia_commonMicroscopy ConfocalMultidisciplinarybiologyChemistryProbioticslcsh:RCell PolarityEpithelial CellsPathogenic bacteriaExtracellular vesiclesbiology.organism_classificationGITIn vitroEpitheliumCell biologyIntestines030104 developmental biologymedicine.anatomical_structureTranscytosis030220 oncology & carcinogenesislcsh:QCaco-2 CellsTranscytosisBacillus subtilisScientific Reports
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Epithelium‐specific MyD88 signaling, but not DCs or macrophages, control acute intestinal infection with Clostridium difficile

2019

Infection with Clostridium difficile is one of the major causes of health care acquired diarrhea and colitis. Signaling though MyD88 downstream of TLRs is critical for initiating the early protective host response in mouse models of C. difficile infection (CDI). In the intestine, MyD88 is expressed in various tissues and cell types, such as the intestinal epithelium and mononuclear phagocytes (MNP), including DC or macrophages. Using a genetic gain-of-function system, we demonstrate here that restricting functional MyD88 signaling to the intestinal epithelium, but also to MNPs is sufficient to protect mice during acute CDI by upregulation of the intestinal barrier function and recruitment o…

0301 basic medicineCell typeImmunologyBiologyMice03 medical and health sciences0302 clinical medicineDownregulation and upregulationmedicineAnimalsImmunology and AllergyIntestinal MucosaColitisEnterocolitis PseudomembranousBarrier functionClostridioides difficileMacrophagesDendritic CellsClostridium difficilemedicine.diseaseIntestinal epitheliumPhenotypeEpitheliumDisease Models Animal030104 developmental biologymedicine.anatomical_structureHost-Pathogen InteractionsMyeloid Differentiation Factor 88ImmunologySignal Transduction030215 immunologyEuropean Journal of Immunology
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Usefulness of Caco-2/HT29-MTX and Caco-2/HT29-MTX/Raji B Coculture Models To Predict Intestinal and Colonic Permeability Compared to Caco-2 Monocultu…

2017

The Caco-2 cellular monolayer is a widely accepted in vitro model to predict human permeability but suffering from several and critical limitations. Therefore, some alternative cell cultures to mimic the human intestinal epithelium, as closely as possible, have been developed to achieve more physiological conditions, as the Caco-2/HT29-MTX coculture and the triple Caco-2/HT29-MTX/Raji B models. In this work the permeability of 12 model drugs of different Biopharmaceutical Classification System (BCS) characteristics, in the coculture and triple coculture models was assessed. Additionally, the utility of both models to classify compounds according to the BCS criteria was scrutinized. The obta…

0301 basic medicineDrugColonmedia_common.quotation_subjectPharmaceutical Science02 engineering and technologyBiologydigestive systemPermeability03 medical and health sciencesCell Line TumorDrug DiscoverymedicineLow permeabilityHumansIntestinal Mucosamedia_commonHt29 mtxIntestinal permeability021001 nanoscience & nanotechnologymedicine.diseaseIntestinal epitheliumCoculture Techniques030104 developmental biologyIntestinal AbsorptionCaco-2Cell culturePermeability (electromagnetism)ImmunologyCancer researchMolecular MedicineCaco-2 Cells0210 nano-technologyHT29 CellsMolecular Pharmaceutics
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Redox signaling in the gastrointestinal tract.

2017

Redox signaling regulates physiological self-renewal, proliferation, migration and differentiation in gastrointestinal epithelium by modulating Wnt/β-catenin and Notch signaling pathways mainly through NADPH oxidases (NOXs). In the intestine, intracellular and extracellular thiol redox status modulates the proliferative potential of epithelial cells. Furthermore, commensal bacteria contribute to intestine epithelial homeostasis through NOX1- and dual oxidase 2-derived reactive oxygen species (ROS). The loss of redox homeostasis is involved in the pathogenesis and development of a wide diversity of gastrointestinal disorders, such as Barrett's esophagus, esophageal adenocarcinoma, peptic ulc…

0301 basic medicineGastrointestinal DiseasesNotch signaling pathwaymedicine.disease_causeBiochemistryGastrointestinal epitheliumSuperoxide dismutase03 medical and health scienceschemistry.chemical_compoundPhysiology (medical)medicineHumansSulfhydryl CompoundsIntestinal MucosaWnt Signaling PathwayCell Proliferationchemistry.chemical_classificationReactive oxygen speciesbiologySuperoxideWnt signaling pathwayNADPH OxidasesDual oxidase 2digestive system diseasesGastrointestinal TractIntestinesOxidative Stress030104 developmental biologychemistryImmunologybiology.proteinCancer researchReactive Oxygen SpeciesOxidation-ReductionOxidative stressFree radical biologymedicine
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Clr-a: A Novel Immune-Related C-Type Lectin-like Molecule Exclusively Expressed by Mouse Gut Epithelium

2017

Abstract The mouse gut epithelium represents a constitutively challenged environment keeping intestinal commensal microbiota at bay and defending against invading enteric pathogens. The complex immunoregulatory network of the epithelial barrier surveillance also involves NK gene complex (NKC)–encoded C-type lectin-like molecules such as NKG2D and Nkrp1 receptors. To our knowledge, in this study, we report the first characterization of the orphan C-type lectin-like molecule Clr-a encoded by the Clec2e gene in the mouse NKC. Screening of a panel of mouse tissues revealed that Clec2e transcripts are restricted to the gastrointestinal tract. Using Clr-a–specific mAb, we characterize Clr-a as a …

0301 basic medicineImmunoblottingImmunologyCryptFluorescent Antibody TechniqueCell SeparationBiologyMice03 medical and health sciences0302 clinical medicineDownregulation and upregulationC-type lectinAnimalsImmunology and AllergyLectins C-TypeIntestinal MucosaReceptorMice Inbred BALB CReverse Transcriptase Polymerase Chain ReactionFlow CytometryNKG2DIntestinal epitheliumMolecular biologyGut EpitheliumMice Inbred C57BLImmunosurveillance030104 developmental biology030215 immunologyThe Journal of Immunology
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Role of Microbiota-Derived Extracellular Vesicles in Gut-Brain Communication

2021

Human intestinal microbiota comprise of a dynamic population of bacterial species and other microorganisms with the capacity to interact with the rest of the organism and strongly influence the host during homeostasis and disease. Commensal and pathogenic bacteria coexist in homeostasis with the intestinal epithelium and the gastrointestinal tract’s immune system, or GALT (gut-associated lymphoid tissue), of the host. However, a disruption to this homeostasis or dysbiosis by different factors (e.g., stress, diet, use of antibiotics, age, inflammatory processes) can cause brain dysfunction given the communication between the gut and brain. Recently, extracellular vesicles (EVs) derived from …

0301 basic medicineLipopolysaccharideQH301-705.5brainReviewBiologymedicine.disease_causeCatalysisInorganic ChemistryNeuroblastoma03 medical and health scienceschemistry.chemical_compound0302 clinical medicineImmune systemmedicinemicrobiotaAnimalsHumansPhysical and Theoretical ChemistryBiology (General)ReceptorbacteriaMolecular BiologyQD1-999SpectroscopyGastrointestinal tractneuropathologyOrganic ChemistryPathogenic bacteriaGeneral Medicinemedicine.diseaseIntestinal epitheliumComputer Science ApplicationsCell biologyChemistry030104 developmental biologychemistryRNA Long Noncodingextracellular vesiclesDysbiosis030217 neurology & neurosurgeryHomeostasisInternational Journal of Molecular Sciences
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The IgGFc-binding protein FCGBP is secreted with all GDPH sequences cleaved but maintained by interfragment disulfide bonds

2021

Mucus forms an important protective barrier that minimizes bacterial contact with the colonic epithelium. Intestinal mucus is organized in a complex network with several specific proteins, including the mucin-2 (MUC2) and the abundant IgGFc-binding protein, FCGBP. FCGBP is expressed in all intestinal goblet cells and is secreted into the mucus. It is comprised of repeated von Willebrand D (vWD) domain assemblies, most of which have a GDPH amino acid sequence that can be autocatalytically cleaved, as previously observed in the mucins MUC2 and mucin-5AC. However, the functions of FCGBP in the mucus are not understood. We show that all vWD domains of FCGBP with a GDPH sequence are cleaved and …

0301 basic medicineMUC5AC mucin-5ACMUC2 mucin-2 (Muc2 mouse)vWF von Willebrand factorBiochemistryvon Willebrand domainchemistry.chemical_compoundPVDF polyvinylidene difluorideMiceCricetinaeDisulfidesIntestinal MucosaPeptide sequenceEndoH endoglycosidase HbiologyChemistryrespiratory systemGDPH Gly-Asp-Pro-HisChaotropic agentBiochemistryWB Western blotIodoacetamideGuHCl guanidinium chlorideResearch ArticleIgG immunoglobulin GvWD von Willebrand D domainCHO CellsCHO Chinese hamster ovary03 medical and health sciencesEndoglycosidase HCricetulusProtein Domainsmucusvon Willebrand FactorAnimalsHumansintestinal epitheliumMolecular BiologyintestineFCGBP IgGFc-binding protein (Fcgbp mouse)GAPH Gly-Ala-Pro-HisMucin-2030102 biochemistry & molecular biologycolonBinding proteinEndoplasmic reticulumMucinITH3 inter-alpha-trypsin inhibitor heavy chain 3Cell BiologyMucusMice Inbred C57BL030104 developmental biologyMUC2Proteolysisbiology.proteinImmunoglobulin G (IgG)IAA iodoacetamideCell Adhesion MoleculesdisulfideThe Journal of Biological Chemistry
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The Presence or Absence of Intestinal Microbiota Affects Lipid Deposition and Related Genes Expression in Zebrafish (Danio rerio)

2018

Understanding how intestinal microbiota alters energy homeostasis and lipid metabolism is a critical process in energy balance and health. However, the exact role of intestinal microbiota in the regulation of lipid metabolism in fish remains unclear. Here, we used two zebrafish models (germ-free and antibiotics-treated zebrafish) to identify the role of intestinal microbiota in lipid metabolism. Conventional and germ-free zebrafish larvae were fed with egg yolk. Transmission electron microscopy was used to detect the presence of lipid droplets in the intestinal epithelium. The results showed that, microbiota increased lipid accumulation in the intestinal epithelium. The mRNA sequencing tech…

0301 basic medicineMicrobiology (medical)CD36lcsh:QR1-502BiologyGut floraACSL5Microbiologylcsh:Microbiology03 medical and health sciences0302 clinical medicineLipid dropletantibioticlipid metabolismZebrafishOriginal Researchgut microbiotaLipid metabolismbiology.organism_classificationzebrafishIntestinal epitheliumCell biology030104 developmental biologyMRNA Sequencinggerm-freebiology.protein030217 neurology & neurosurgeryFrontiers in Microbiology
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Protease‐activated receptor signaling in intestinal permeability regulation

2019

Protease-activated receptors (PARs) are a unique class of G-protein-coupled transmembrane receptors, which revolutionized the perception of proteases from degradative enzymes to context-specific signaling factors. Although PARs are traditionally known to affect several vascular responses, recent investigations have started to pinpoint the functional role of PAR signaling in the gastrointestinal (GI) tract. This organ is exposed to the highest number of proteases, either from the gut lumen or from the mucosa. Luminal proteases include the host's digestive enzymes and the proteases released by the commensal microbiota, while mucosal proteases entail extravascular clotting factors and the enzy…

0301 basic medicineProteasesCell typeProtease-activated receptorReceptors Proteinase-ActivatedBiologyBiochemistryPermeabilityEpitheliumInflammatory bowel disease03 medical and health sciencesGastrointestinal cancer0302 clinical medicineImmune systemmedicineAnimalsHumansProtease-activated receptorIntestinal MucosaSymbiosisReceptorMolecular BiologyMicrobial proteasesGastrointestinal NeoplasmsClotting factorIntestinal permeabilityCoagulationMicrobiotaEpithelial barrier functionCell BiologyInflammatory Bowel Diseasesmedicine.diseaseIntestinal epitheliumTissue factorGastrointestinal MicrobiomeCell biologyIntestineGastrointestinal TractDisease Models Animal030104 developmental biologyGene Expression RegulationBacterial Translocation030220 oncology & carcinogenesisPeptide HydrolasesSignal Transduction
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Programming of Intestinal Epithelial Differentiation by IL-33 Derived from Pericryptal Fibroblasts in Response to Systemic Infection.

2016

SummaryThe intestinal epithelium constitutes an efficient barrier against the microbial flora. Here, we demonstrate an unexpected function of IL-33 as a regulator of epithelial barrier functions. Mice lacking IL-33 showed decreased Paneth cell numbers and lethal systemic infection in response to Salmonella typhimurium. IL-33 was produced upon microbial challenge by a distinct population of pericryptal fibroblasts neighboring the intestinal stem cell niche. IL-33 programmed the differentiation of epithelial progenitors toward secretory IEC including Paneth and goblet cells. Finally, IL-33 suppressed Notch signaling in epithelial cells and induced expression of transcription factors governing…

0301 basic medicineSalmonella typhimuriumCellular differentiationPopulationNotch signaling pathwayMice TransgenicBiologydigestive systemGeneral Biochemistry Genetics and Molecular Biology03 medical and health sciences0302 clinical medicineIntestine SmallmedicineAnimalsHumansCell LineageProgenitor cellIntestinal Mucosaeducationlcsh:QH301-705.5Cell Proliferationeducation.field_of_studySalmonella Infections AnimalReceptors NotchCell growthCell DifferentiationEpithelial CellsFibroblastsInterleukin-33Intestinal epitheliumInterleukin-1 Receptor-Like 1 ProteinCell biologyMice Inbred C57BL030104 developmental biologymedicine.anatomical_structurelcsh:Biology (General)Organ SpecificityImmunologyPaneth cellSignal transduction030215 immunologySignal TransductionCell reports
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