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1.
Int J Biol Macromol ; 267(Pt 2): 131434, 2024 May.
Article En | MEDLINE | ID: mdl-38614182

The gastrointestinal (GI) tract's mucus layer serves as a critical barrier and a mediator in drug nanoparticle delivery. The mucus layer's diverse molecular structures and spatial complexity complicates the mechanistic study of the diffusion dynamics of particulate materials. In response, we developed a bi-component coarse-grained mucus model, specifically tailored for the colorectal cancer environment, that contained the two most abundant glycoproteins in GI mucus: Muc2 and Muc5AC. This model demonstrated the effects of molecular composition and concentration on mucus pore size, a key determinant in the permeability of nanoparticles. Using this computational model, we investigated the diffusion rate of polyethylene glycol (PEG) coated nanoparticles, a widely used muco-penetrating nanoparticle. We validated our model with experimentally characterized mucus pore sizes and the diffusional coefficients of PEG-coated nanoparticles in the mucus collected from cultured human colorectal goblet cells. Machine learning fingerprints were then employed to provide a mechanistic understanding of nanoparticle diffusional behavior. We found that larger nanoparticles tended to be trapped in mucus over longer durations but exhibited more ballistic diffusion over shorter time spans. Through these discoveries, our model provides a promising platform to study pharmacokinetics in the GI mucus layer.


Mucus , Nanoparticles , Polyethylene Glycols , Humans , Nanoparticles/chemistry , Diffusion , Polyethylene Glycols/chemistry , Mucus/metabolism , Mucus/chemistry , Mucin-2/metabolism , Mucin-2/chemistry , Mucin 5AC/metabolism , Mucin 5AC/chemistry , Intestinal Mucosa/metabolism , Gastrointestinal Tract/metabolism , Goblet Cells/metabolism , Models, Biological
2.
J Pharmacol Sci ; 155(2): 21-28, 2024 Jun.
Article En | MEDLINE | ID: mdl-38677782

Goblet cell hyperplasia and increased mucus production are features of airway diseases, including asthma, and excess airway mucus often worsens these conditions. Even steroids are not uniformly effective in mucus production in severe asthma, and new therapeutic options are needed. Seihaito is a Japanese traditional medicine that is used clinically as an antitussive and expectorant. In the present study, we examined the effect of Seihaito on goblet cell differentiation and mucus production. In in vitro studies, using air-liquid interface culture of guinea-pig tracheal epithelial cells, Seihaito inhibited IL-13-induced proliferation of goblet cells and MUC5AC, a major component of mucus production. Seihaito suppressed goblet cell-specific gene expression, without changing ciliary cell-specific genes, suggesting that it inhibits goblet cell differentiation. In addition, Seihaito suppressed MUC5AC expression in cells transfected with SPDEF, a transcription factor activated by IL-13. Furthermore, Seihaito attenuated in vivo goblet cell proliferation and MUC5AC mRNA expression in IL-13-treated mouse lungs. Collectively, these findings demonstrated that Seihaito has an inhibitory effect on goblet cell differentiation and mucus production, which is at least partly due to the inhibition of SPDEF.


Cell Differentiation , Cell Proliferation , Goblet Cells , Interleukin-13 , Medicine, Kampo , Metaplasia , Mucin 5AC , Mucus , Animals , Goblet Cells/drug effects , Goblet Cells/pathology , Goblet Cells/metabolism , Interleukin-13/metabolism , Mucin 5AC/genetics , Mucin 5AC/metabolism , Mucus/metabolism , Cell Differentiation/drug effects , Guinea Pigs , Cell Proliferation/drug effects , Drugs, Chinese Herbal/pharmacology , Cells, Cultured , Proto-Oncogene Proteins c-ets/genetics , Proto-Oncogene Proteins c-ets/metabolism , Male , Gene Expression/drug effects , Epithelial Cells/drug effects , Epithelial Cells/metabolism , Mice , Trachea/cytology , Trachea/drug effects , Trachea/pathology , Trachea/metabolism
3.
Elife ; 122024 Apr 09.
Article En | MEDLINE | ID: mdl-38593125

Inflammation in ulcerative colitis is typically restricted to the mucosal layer of distal gut. Disrupted mucus barrier, coupled with microbial dysbiosis, has been reported to occur prior to the onset of inflammation. Here, we show the involvement of vesicular trafficking protein Rab7 in regulating the colonic mucus system. We identified a lowered Rab7 expression in goblet cells of colon during human and murine colitis. In vivo Rab7 knocked down mice (Rab7KD) displayed a compromised mucus layer, increased microbial permeability, and depleted gut microbiota with enhanced susceptibility to dextran sodium-sulfate induced colitis. These abnormalities emerged owing to altered mucus composition, as revealed by mucus proteomics, with increased expression of mucin protease chloride channel accessory 1 (CLCA1). Mechanistically, Rab7 maintained optimal CLCA1 levels by controlling its lysosomal degradation, a process that was dysregulated during colitis. Overall, our work establishes a role for Rab7-dependent control of CLCA1 secretion required for maintaining mucosal homeostasis.


Colitis , Goblet Cells , Animals , Humans , Mice , Chloride Channels/genetics , Chloride Channels/metabolism , Colitis/chemically induced , Colitis/metabolism , Colon/metabolism , Disease Models, Animal , Goblet Cells/metabolism , Homeostasis , Inflammation/metabolism , Intestinal Mucosa/metabolism , Mice, Inbred C57BL
4.
Redox Biol ; 72: 103160, 2024 Jun.
Article En | MEDLINE | ID: mdl-38631120

Iron overload can lead to oxidative stress and intestinal damage and happens frequently during blood transfusions and iron supplementation. However, how iron overload influences intestinal mucosa remains unknown. Here, the aim of current study was to investigate the effects of iron overload on the proliferation and differentiation of intestinal stem cells (ISCs). An iron overload mouse model was established by intraperitoneal injection of 120 mg/kg body weight iron dextran once a fortnight for a duration of 12 weeks, and an iron overload enteroid model was produced by treatment with 3 mM or 10 mM of ferric ammonium citrate for 24 h. We found that iron overload caused damage to intestinal morphology with a 64 % reduction in villus height/crypt depth ratio, and microvilli injury in the duodenum. Iron overload mediated epithelial function by inhibiting the expression of nutrient transporters and enhancing the expression of secretory factors in the duodenum. Meanwhile, iron overload inhibited the proliferation of ISCs and regulated their differentiation into secretory mature cells, such as goblet cells, through inhibiting Notch signaling pathway both in mice and enteroid. Furthermore, iron overload caused oxidative stress and ferroptosis in intestinal epithelial cells. In addition, ferroptosis could also inhibit Notch signaling pathway, and affected the proliferation and differentiation of ISCs. These findings reveal the regulatory role of iron overload on the proliferation and differentiation of ISCs, providing a new insight into the internal mechanism of iron overload affecting intestinal health, and offering important theoretical basis for the scientific application of iron nutrition regulation.


Cell Differentiation , Ferroptosis , Goblet Cells , Iron Overload , Oxidative Stress , Receptors, Notch , Signal Transduction , Stem Cells , Animals , Ferroptosis/drug effects , Mice , Goblet Cells/metabolism , Iron Overload/metabolism , Signal Transduction/drug effects , Stem Cells/metabolism , Stem Cells/cytology , Cell Differentiation/drug effects , Receptors, Notch/metabolism , Oxidative Stress/drug effects , Intestinal Mucosa/metabolism , Intestinal Mucosa/drug effects , Cell Proliferation/drug effects , Disease Models, Animal , Male
5.
Cell Death Dis ; 15(4): 301, 2024 Apr 29.
Article En | MEDLINE | ID: mdl-38684650

Understanding the mechanisms involved in colonic epithelial differentiation is key to unraveling the alterations causing inflammatory conditions and cancer. Organoid cultures provide an unique tool to address these questions but studies are scarce. We report a differentiation system toward enterocytes and goblet cells, the two major colonic epithelial cell lineages, using colon organoids generated from healthy tissue of colorectal cancer patients. Culture of these organoids in medium lacking stemness agents resulted in a modest ultrastructural differentiation phenotype with low-level expression of enterocyte (KLF4, KRT20, CA1, FABP2) and goblet cell (TFF2, TFF3, AGR2) lineage markers. BMP pathway activation through depletion of Noggin and addition of BMP4 resulted in enterocyte-biased differentiation. Contrarily, blockade of the Notch pathway using the γ-secretase inhibitor dibenzazepine (DBZ) favored goblet cell differentiation. Combination treatment with BMP4 and DBZ caused a balanced strong induction of both lineages. In contrast, colon tumor organoids responded poorly to BMP4 showing only weak signals of cell differentiation, and were unresponsive to DBZ. We also investigated the effects of 1α,25-dihydroxyvitamin D3 (calcitriol) on differentiation. Calcitriol attenuated the effects of BMP4 and DBZ on colon normal organoids, with reduced expression of differentiation genes and phenotype. Consistently, in normal organoids, calcitriol inhibited early signaling by BMP4 as assessed by reduction of the level of phospho-SMAD1/5/8. Our results show that BMP and Notch signaling play key roles in human colon stem cell differentiation to the enterocytic and goblet cell lineages and that calcitriol modulates these processes favoring stemness features.


Bone Morphogenetic Protein 4 , Calcitriol , Carrier Proteins , Cell Differentiation , Colon , Dibenzazepines , Goblet Cells , Kruppel-Like Factor 4 , Organoids , Receptors, Notch , Signal Transduction , Humans , Organoids/drug effects , Organoids/metabolism , Cell Differentiation/drug effects , Bone Morphogenetic Protein 4/metabolism , Colon/drug effects , Colon/metabolism , Colon/cytology , Colon/pathology , Receptors, Notch/metabolism , Signal Transduction/drug effects , Calcitriol/pharmacology , Goblet Cells/drug effects , Goblet Cells/metabolism , Dibenzazepines/pharmacology , Cell Lineage/drug effects , Enterocytes/metabolism , Enterocytes/drug effects , Enterocytes/cytology , Vitamin D/pharmacology
6.
Mol Metab ; 83: 101924, 2024 May.
Article En | MEDLINE | ID: mdl-38521185

OBJECTIVES: Gut microbiota increases energy availability through fermentation of dietary fibers to short-chain fatty acids in conventionally raised mice. Energy deficiency in germ-free (GF) mice increases glucagon-like peptide-1 (GLP-1) levels, which slows intestinal transit. To further analyze the role of GLP-1-mediated signaling in this model of energy deficiency, we re-derived mice lacking GLP-1 receptor (GLP-1R KO) as GF. METHODS: GLP-1R KO mice were rederived as GF through hysterectomy and monitored for 30 weeks. Mice were subjected to rescue experiments either through feeding an energy-rich diet or colonization with a normal cecal microbiota. Histology and intestinal function were assessed at different ages. Intestinal organoids were assessed to investigate stemness. RESULTS: Unexpectedly, 25% of GF GLP-1R KO mice died before 20 weeks of age, associated with enlarged ceca, increased cecal water content, increased colonic expression of apical ion transporters, reduced number of goblet cells and loss of colonic epithelial integrity. Colonocytes from GLP-1R KO mice were energy-deprived and exhibited increased ER-stress; mitochondrial fragmentation, increased oxygen levels and loss of stemness. Restoring colonic energy levels either by feeding a Western-style diet or colonization with a normal gut microbiota normalized gut phenotypes and prevented lethality. CONCLUSIONS: Our findings reveal a heretofore unrecognized role for GLP-1R signaling in the maintenance of colonic physiology and survival during energy deprivation.


Colon , Energy Metabolism , Gastrointestinal Microbiome , Glucagon-Like Peptide-1 Receptor , Goblet Cells , Mice, Knockout , Signal Transduction , Animals , Glucagon-Like Peptide-1 Receptor/metabolism , Gastrointestinal Microbiome/physiology , Mice , Goblet Cells/metabolism , Colon/metabolism , Colon/microbiology , Mice, Inbred C57BL , Male , Female , Glucagon-Like Peptide 1/metabolism
7.
Sci Rep ; 14(1): 6954, 2024 03 23.
Article En | MEDLINE | ID: mdl-38521809

Mucin protein glycosylation is important in determining biological properties of mucus gels, which form protective barriers at mucosal surfaces of the body such as the intestine. Ecological factors including: age, sex, and diet can change mucus barrier properties by modulating mucin glycosylation. However, as our understanding stems from controlled laboratory studies in house mice, the combined influence of ecological factors on mucin glycosylation in real-world contexts remains limited. In this study, we used histological staining with 'Alcian Blue, Periodic Acid, Schiff's' and 'High-Iron diamine' to assess the acidic nature of mucins stored within goblet cells of the intestine, in a wild mouse population (Mus musculus). Using statistical models, we identified sex as among the most influential ecological factors determining the acidity of intestinal mucin glycans in wild mice. Our data from wild mice and experiments using laboratory mice suggest estrogen signalling associates with an increase in the relative abundance of sialylated mucins. Thus, estrogen signalling may underpin sex differences observed in the colonic mucus of wild and laboratory mice. These findings highlight the significant influence of ecological parameters on mucosal barrier sites and the complementary role of wild populations in augmenting standard laboratory studies in the advancement of mucus biology.


Colon , Mucins , Mice , Female , Male , Animals , Mucins/metabolism , Colon/pathology , Goblet Cells/metabolism , Intestines , Estrogens/metabolism , Mucin-2/metabolism , Intestinal Mucosa/metabolism
8.
Proc Natl Acad Sci U S A ; 121(13): e2309994121, 2024 Mar 26.
Article En | MEDLINE | ID: mdl-38517976

Maternal immunoglobulins of the class G (IgGs) protect offspring from enteric infection, but when, where, and how these antibodies are physiologically generated and confer protection remains enigmatic. We found that circulating IgGs in adult mice preferentially bind early-life gut commensal bacteria over their own adult gut commensal bacteria. IgG-secreting plasma cells specific for early-life gut bacteria appear in the intestine soon after weaning, where they remain into adulthood. Manipulating exposure to gut bacteria or plasma cell development before, but not after, weaning reduced IgG-secreting plasma cells targeting early-life gut bacteria throughout life. Further, the development of this anti-gut commensal IgG response coincides with the early-life interval in which goblet cell-associated antigen passages (GAPs) are present in the colon. Offspring of dams "perturbed" by B cell ablation or reduced bacterial exposure in early life were more susceptible to enteric pathogen challenge. In contrast to current concepts, protective maternal IgGs targeted translocating gut commensals in the offspring, not the enteric pathogen. These early-life events affecting anti-commensal IgG production have intergenerational effects for protection of the offspring.


B-Lymphocytes , Bacteria , Animals , Mice , Bacteria/metabolism , Goblet Cells/metabolism , Immunoglobulin G
9.
Vet Immunol Immunopathol ; 271: 110740, 2024 May.
Article En | MEDLINE | ID: mdl-38537313

Intestinal mucus barrier disruption may occur with chronic inflammatory enteropathies. The lack of studies evaluating mucus health in dogs with chronic colitis arises from inherent challenges with assessment of the intestinal mucus layer. It is therefore unknown if reduced goblet cell (GBC) numbers and/or mucin 2 (MUC2) expression, which are responsible for mucus production and secretion, correlate with inflammation severity in dogs with granulomatous colitis (GC) or lymphocytic-plasmacytic colitis (LPC). It is undetermined if Ki-67 immunoreactivity, which has been evaluated in dogs with small intestinal inflammation, similarly correlates to histologic severity in GC and LPC. Study objectives included comparing Ki-67 immunoreactivity, GBC population and MUC2 expression in dogs with GC, LPC and non-inflamed colon; and exploring the use of ribonucleic acid (RNAscope®) in-situ hybridization (ISH) to evaluate MUC2 expression in canine colon. Formalin-fixed endoscopic colonic biopsies were obtained from 48 dogs over an eight-year period. A blinded pathologist reviewed all biopsies. Dogs were classified into the GC (n=19), LPC (n=19) or no colitis (NC) (n=10) group based on final histopathological diagnosis. Ki-67 immunohistochemistry, Alcian-Blue/PAS staining to highlight GBCs, and RNAscope® ISH using customized canine MUC2-targeted probes were performed. At least five microscopic fields per dog were selected to measure Ki-67 labelling index (KI67%), GBC staining percentage (GBC%) and MUC2 expression (MUC2%) using image analysis software. Spearman's correlation coefficients were used to determine associations between World Small Animal Veterinary Association histologic score (WHS) and measured variables. Linear regression models were used to compare relationships between WHS with KI67%, GBC%, and MUC2%; and between GBC% and MUC2%. Median WHS was highest in dogs with GC. Median KI67% normalised to WHS was highest in the NC group (6.69%; range, 1.70-23.60%). Median GBC% did not correlate with colonic inflammation overall. Median MUC2% normalised to WHS in the NC group (10.02%; range, 3.05-39.09%) was two- and three-fold higher than in the GC and LPC groups respectively. With increased colonic inflammation, despite minimal changes in GBC% overall, MUC2 expression markedly declined in the LPC group (-27.4%; 95%-CI, -49.8, 5.9%) and mildly declined in the GC and NC groups. Granulomatous colitis and LPC likely involve different pathways regulating MUC2 expression. Decreased MUC2 gene expression is observed in dogs with chronic colitis compared to dogs without colonic signs. Changes in MUC2 expression appear influenced by GBC activity rather than quantity in GC and LPC.


Colitis , Dog Diseases , Goblet Cells , Ki-67 Antigen , Mucin-2 , Animals , Dogs , Mucin-2/genetics , Mucin-2/metabolism , Goblet Cells/pathology , Goblet Cells/metabolism , Ki-67 Antigen/genetics , Ki-67 Antigen/metabolism , Dog Diseases/metabolism , Dog Diseases/genetics , Dog Diseases/immunology , Colitis/veterinary , Colitis/pathology , Female , Male , Colon/pathology , Granuloma/veterinary , Granuloma/pathology , Immunohistochemistry/veterinary
10.
Cell Stem Cell ; 31(2): 227-243.e12, 2024 02 01.
Article En | MEDLINE | ID: mdl-38215738

The conjunctival epithelium covering the eye contains two main cell types: mucus-producing goblet cells and water-secreting keratinocytes, which present mucins on their apical surface. Here, we describe long-term expanding organoids and air-liquid interface representing mouse and human conjunctiva. A single-cell RNA expression atlas of primary and cultured human conjunctiva reveals that keratinocytes express multiple antimicrobial peptides and identifies conjunctival tuft cells. IL-4/-13 exposure increases goblet and tuft cell differentiation and drastically modifies the conjunctiva secretome. Human NGFR+ basal cells are identified as bipotent conjunctiva stem cells. Conjunctival cultures can be infected by herpes simplex virus 1 (HSV1), human adenovirus 8 (hAdV8), and SARS-CoV-2. HSV1 infection was reversed by acyclovir addition, whereas hAdV8 infection, which lacks an approved drug therapy, was inhibited by cidofovir. We document transcriptional programs induced by HSV1 and hAdV8. Finally, conjunctival organoids can be transplanted. Together, human conjunctiva organoid cultures enable the study of conjunctival (patho)-physiology.


Conjunctiva , Goblet Cells , Humans , Mice , Animals , Conjunctiva/metabolism , Goblet Cells/metabolism , Epithelium , Interleukin-13 , Homeostasis , Organoids
11.
EMBO J ; 43(5): 695-718, 2024 Mar.
Article En | MEDLINE | ID: mdl-38177501

Intestinal goblet cells are secretory cells specialized in the production of mucins, and as such are challenged by the need for efficient protein folding. Goblet cells express Inositol-Requiring Enzyme-1ß (IRE1ß), a unique sensor in the unfolded protein response (UPR), which is part of an adaptive mechanism that regulates the demands of mucin production and secretion. However, how IRE1ß activity is tuned to mucus folding load remains unknown. We identified the disulfide isomerase and mucin chaperone AGR2 as a goblet cell-specific protein that crucially regulates IRE1ß-, but not IRE1α-mediated signaling. AGR2 binding to IRE1ß disrupts IRE1ß oligomerization, thereby blocking its downstream endonuclease activity. Depletion of endogenous AGR2 from goblet cells induces spontaneous IRE1ß activation, suggesting that alterations in AGR2 availability in the endoplasmic reticulum set the threshold for IRE1ß activation. We found that AGR2 mutants lacking their catalytic cysteine, or displaying the disease-associated mutation H117Y, were no longer able to dampen IRE1ß activity. Collectively, these results demonstrate that AGR2 is a central chaperone regulating the goblet cell UPR by acting as a rheostat of IRE1ß endonuclease activity.


Goblet Cells , Molecular Chaperones , Mucins , Endonucleases , Goblet Cells/metabolism , Molecular Chaperones/genetics , Mucins/genetics , Protein Disulfide-Isomerases , Humans , Cell Line, Tumor
12.
EMBO J ; 43(5): 719-753, 2024 Mar.
Article En | MEDLINE | ID: mdl-38177498

Effector mechanisms of the unfolded protein response (UPR) in the endoplasmic reticulum (ER) are well-characterised, but how ER proteostasis is sensed is less well understood. Here, we exploited the beta isoform of the UPR transducer IRE1, that is specific to mucin-producing cells in order to gauge the relative regulatory roles of activating ligands and repressing chaperones of the specialised ER of goblet cells. Replacement of the stress-sensing luminal domain of endogenous IRE1α in CHO cells (normally expressing neither mucin nor IRE1ß) with the luminal domain of IRE1ß deregulated basal IRE1 activity. The mucin-specific chaperone AGR2 repressed IRE1 activity in cells expressing the domain-swapped IRE1ß/α chimera, but had no effect on IRE1α. Introduction of the goblet cell-specific client MUC2 reversed AGR2-mediated repression of the IRE1ß/α chimera. In vitro, AGR2 actively de-stabilised the IRE1ß luminal domain dimer and formed a reversible complex with the inactive monomer. These features of the IRE1ß-AGR2 couple suggest that active repression of IRE1ß by a specialised mucin chaperone subordinates IRE1 activity to a proteostatic challenge unique to goblet cells, a challenge that is otherwise poorly recognised by the pervasive UPR transducers.


Endoribonucleases , Goblet Cells , Mucins , Animals , Cricetinae , Humans , Cricetulus , Goblet Cells/metabolism , Molecular Chaperones/genetics , Mucins/genetics , Mucoproteins/genetics , Oncogene Proteins , Protein Serine-Threonine Kinases/genetics , CHO Cells
13.
Am J Physiol Lung Cell Mol Physiol ; 326(3): L377-L392, 2024 Mar 01.
Article En | MEDLINE | ID: mdl-38290992

Sphingosine kinase 1 (SPHK1) has been shown to play a key role in the pathogenesis of asthma where SPHK1-generated sphingosine-1-phosphate (S1P) is known to mediate innate and adaptive immunity while promoting mast cell degranulation. Goblet cell metaplasia (GCM) contributes to airway obstruction in asthma and has been demonstrated in animal models. We investigated the role of PF543, a SPHK1-specific inhibitor, in preventing the pathogenesis of GCM using a murine (C57BL/6) model of allergen-induced acute asthma. Treatment with PF543 before triple allergen exposure (DRA: House dust mite, Ragweed pollen, and Aspergillus) reduced inflammation, eosinophilic response, and GCM followed by reduced airway hyperreactivity to intravenous methacholine. Furthermore, DRA exposure was associated with increased expression of SPHK1 in the airway epithelium which was reduced by PF543. DRA-induced reduction of acetylated α-tubulin in airway epithelium was associated with an increased expression of NOTCH2 and SPDEF which was prevented by PF543. In vitro studies using human primary airway epithelial cells showed that inhibition of SPHK1 using PF543 prevented an allergen-induced increase of both NOTCH2 and SPDEF. siRNA silencing of SPHK1 prevented the allergen-induced increase of both NOTCH2 and SPDEF. NOTCH2 silencing was associated with a reduction of SPDEF but not that of SPHK1 upon allergen exposure. Our studies demonstrate that inhibition of SPHK1 protected allergen-challenged airways by preventing GCM and airway hyperreactivity, associated with downregulation of the NOTCH2-SPDEF signaling pathway. This suggests a potential novel link between SPHK1, GCM, and airway remodeling in asthma.NEW & NOTEWORTHY The role of SPHK1-specific inhibitor, PF543, in preventing goblet cell metaplasia (GCM) and airway hyperreactivity (AHR) is established in an allergen-induced mouse model. This protection was associated with the downregulation of NOTCH2-SPDEF signaling pathway, suggesting a novel link between SPHK1, GCM, and AHR.


Asthma , Goblet Cells , Lysophospholipids , Phosphotransferases (Alcohol Group Acceptor) , Pyrrolidines , Sphingosine/analogs & derivatives , Sulfones , Animals , Humans , Mice , Goblet Cells/metabolism , Mice, Inbred C57BL , Asthma/pathology , Epithelium/metabolism , Transcription Factors/metabolism , Metaplasia/metabolism , Metaplasia/pathology , Allergens , Methanol
14.
Nat Commun ; 15(1): 143, 2024 Jan 02.
Article En | MEDLINE | ID: mdl-38168066

Extracellular matrix (ECM) assembly/disassembly is a critical regulator for airway epithelial development and remodeling. Airway organoid is widely used in respiratory research, yet there is limited study to indicate the roles and mechanisms of ECM organization in epithelial growth and differentiation by using in vitro organoid system. Moreover, most of current Matrigel-based airway organoids are in basal-out orientation where accessing the apical surface is challenging. We present a human apical-out airway organoid using a biochemically defined hybrid hydrogel system. During human nasal epithelial progenitor cells (hNEPCs) differentiation, the gel gradually degrade, leading to the organoid apical surfaces facing outward. The expression and activity of ECM-degrading enzymes, matrix metalloproteinases (MMP7, MMP9, MMP10 and MMP13) increases during organoid differentiation, where inhibition of MMPs significantly suppresses the normal ciliation, resulting in increased goblet cell proportion. Moreover, a decrease of MMPs is found in goblet cell hyperplastic epithelium in inflammatory mucosa. This system reveals essential roles of epithelial-derived MMPs on epithelial cell fate determination, and provides an applicable platform enabling further study for ECM in regulating airway development in health and diseases.


Epithelial Cells , Organoids , Humans , Epithelial Cells/metabolism , Organoids/metabolism , Matrix Metalloproteinases/metabolism , Goblet Cells/metabolism , Stem Cells/metabolism , Extracellular Matrix/metabolism
15.
Sci Rep ; 14(1): 1799, 2024 01 20.
Article En | MEDLINE | ID: mdl-38245585

Mucin overproduction is a common feature of chronic airway diseases such as asthma and chronic obstructive pulmonary disease (COPD), and exacerbates their underlying respiratory condition. Surfactant protein D (SP-D) protects against airway diseases through modulation of immune reactions, but whether it also exerts direct effects on airway epithelial cells has remained unclear. Therefore, we sought to investigate the inhibitory role of SP-D on mucin production in airway epithelial cells. We prepared air-liquid interface (ALI) cultures of human primary bronchial epithelial cells (HBECs), which recapitulated a well-differentiated human airway epithelium. Benzo(a)pyrene (BaP), a key toxicant in cigarette smoke, induced mucin 5AC (MUC5AC) production in ALI-cultured HBECs, airway secretory cell lines, and airway epithelia of mice. Then, the protective effects of SP-D against the BaP-induced mucin overproduction were examined. BaP increased MUC5AC production in ALI cultures of HBECs, and this effect was attenuated by SP-D. SP-D also suppressed the BaP-induced phosphorylation of extracellular signal-regulated kinase (ERK) and MUC5AC expression in NCI-H292 goblet-like cells, but not in NCI-H441 club-like cells. Signal regulatory protein α (SIRPα) was found to be expressed in HBECs and NCI-H292 cells but absent in NCI-H441 cells. In NCI-H292 cells, SP-D activated SH2 domain-containing tyrosine phosphatase-1 (SHP-1), downstream of SIRPα, and knockdown of SIRPα abolished the suppressive effects of SP-D on BaP-induced ERK phosphorylation and MUC5AC production. Consistent with these in vitro findings, intratracheal instillation of SP-D prevented the BaP-induced phosphorylation of ERK and Muc5ac expression in airway epithelial cells in a mouse model. SP-D acts directly on airway epithelial cells to inhibit mucin secretion through ligation of SIRPα and SHP-1-mediated dephosphorylation of ERK. Targeting of SIRPα is therefore a potential new therapeutic approach to suppression of mucin hypersecretion in chronic airway diseases such as COPD and asthma.


Asthma , Pulmonary Disease, Chronic Obstructive , Animals , Humans , Mice , Epithelial Cells/metabolism , Extracellular Signal-Regulated MAP Kinases/metabolism , Goblet Cells/metabolism , Mucin 5AC/genetics , Mucins , Pulmonary Surfactant-Associated Protein D
16.
Biol Trace Elem Res ; 202(4): 1699-1710, 2024 Apr.
Article En | MEDLINE | ID: mdl-37454307

Dietary selenium intake within the normal physiological range is critical for various supporting biological functions. However, the effect of nano-selenium on biological mechanism of goblet cells associated with autophagy is largely unknown.The purpose of this study was to investigate the effect of nano-selenium on the mucosal immune-defense mechanism of goblet cells (GCs) in the small intestine of laying hens.The autophagy was determined by using specific markers. Nano-selenium-treated group of immunohistochemistry (IHC), immunofluorescence (IF), and western blotting (WB) results indicated the strong positive immune signaling of microtubule-associated light chain (LC3) within the mucosal surface of the small intestine. However, weak expression of LC3 was observed in the 3-methyladenine autophagy inhibitor (3-MA) group. IHC and IF staining results showed the opposite tendency for LC3 of sequestosome 1 (P62/SQSTM1). P62/SQSTM1 showed strong positive immune signaling within the mucosal surface of the small intestine of the 3-MAgroup, and weak immune signaling of P62/SQSTM1 in the nano-selenium-treated group. Moreover, pinpointing autophagy was involved in the mucosal production and enrichment of mucosal immunity of the GCs. The morphology and ultrastructure evidence showed that the mucus secretion of GCs was significantly increased after nano-selenium treatment confirmed by light and transmission electron microscopy. Besides that, immunostaining of IHC, IF and WB showed that autophagy enhanced the secretion of Mucin2 (Muc2) protein in nano-selenium-treated group. This work illustrates that the nano-selenium particle might enhance the mucosal immune-defense mechanism via the protective role of GCs for intestinal homeostasis through autophagy.


Goblet Cells , Selenium , Animals , Female , Goblet Cells/metabolism , Sequestosome-1 Protein/metabolism , Selenium/pharmacology , Selenium/metabolism , Chickens/metabolism , Autophagy , Intestine, Small/metabolism
17.
Kaohsiung J Med Sci ; 40(2): 139-149, 2024 Feb.
Article En | MEDLINE | ID: mdl-37916742

Airway mucous cell metaplasia and mucous hypersecretion is one of the key characteristic pathophysiological status of chronic obstructive pulmonary disease (COPD). micro(mi)RNAs are acknowledged as non-encoding RNA molecules playing important roles in gene expression regulation. In this study, we searched the Gene Expression Omnibus (GEO) database for the differentially expressed miRNAs between COPD and non-COPD controls with bioinformatics analysis. Finally, we focused on miR-513a-5p and investigated the potential mechanism by which miR-513a-5p regulates airway mucous hypersecretion and goblet cell metaplasia. A dual-luciferase reporter assay was then showing that miR-513a-5p targeted the 3'-UTR of TFR1 and inhibited its expression in vitro. In vivo transfection demonstrated that TFR1 downregulation partially blocked MUC5AC hypersecretion and goblet cell hyperplasia in COPD model rats. In vitro study, CSE increased the intracellular expression and secretion of MUC5AC by BEAS-2B branchial epithelial cells in the BEAS-2B cell and THP-1 cell coculture system. Coculture with either miR-513a-5p mimic-pretreated or TFR1-deficient THP-1 cells attenuated intracellular MUC5AC expression in BEAS-2B cells exposed to CSE. ELISA demonstrated that transfection of TFR1 siRNA or pretreatment with miR-513a-5p mimic reduced the secretion of inflammatory factors that are responsible for airway goblet cell hyperplasia, such as IL-1ß, IL-13, and IL-17, by THP-1 cells after CSE stimulation. Our findings supported that miR-513a-5p/TFR1 signaling axis might activate macrophages as well as promote airway inflammation and airway mucous cell hyperplasia in COPD.


MicroRNAs , Pulmonary Disease, Chronic Obstructive , Rats , Animals , Goblet Cells/metabolism , Hyperplasia/genetics , MicroRNAs/genetics , MicroRNAs/metabolism , Pulmonary Disease, Chronic Obstructive/genetics , Pulmonary Disease, Chronic Obstructive/metabolism , Metaplasia
18.
Am J Pathol ; 194(1): 85-100, 2024 Jan.
Article En | MEDLINE | ID: mdl-37918798

Sleep deficiency is associated with intestinal inflammatory conditions and is increasingly recognized as a public health concern worldwide. However, the effects of sleep deficiency on intestinal goblet cells (GCs), which play a major role in intestinal barrier formation, remain elusive. Herein, the effects of sleep deprivation on intestinal GCs were determined using a sleep-deprivation mouse model. Sleep deprivation impaired the intestinal mucosal barrier and decreased the expression of tight junction proteins. According to single-cell RNA sequencing and histologic assessments, sleep deprivation significantly reduced GC numbers and mucin protein levels in intestinal tissues. Furthermore, sleep deprivation initiated endoplasmic reticulum stress by activating transcription factor 6 and binding Ig protein. Treatment with melatonin, an endoplasmic reticulum stress regulator, significantly alleviated endoplasmic reticulum stress responses in intestinal GCs. In addition, melatonin increased the villus length, reduced the crypt depth, and restored intestinal barrier function in mice with sleep deprivation. Overall, the findings revealed that sleep deprivation could impair intestinal mucosal barrier integrity and GC function. Targeting endoplasmic reticulum stress could represent an ideal strategy for treating sleep deficiency-induced gastrointestinal disorders.


Intestinal Diseases , Melatonin , Mice , Animals , Goblet Cells/metabolism , Sleep Deprivation/complications , Sleep Deprivation/metabolism , Sleep Deprivation/pathology , Melatonin/metabolism , Melatonin/pharmacology , Intestinal Mucosa/metabolism , Intestinal Diseases/metabolism , Endoplasmic Reticulum Stress
19.
Sci Rep ; 13(1): 22839, 2023 12 21.
Article En | MEDLINE | ID: mdl-38129447

Goblet cells (GCs) in the conjunctiva are specialized epithelial cells secreting mucins for the mucus layer of protective tear film and playing immune tolerance functions for ocular surface health. Because GC loss is observed in various ocular surface diseases, GC examination is important for precision diagnosis. Moxifloxacin-based fluorescence microscopy (MBFM) was recently developed for non-invasive high-contrast GC visualization. MBFM showed promise for GC examination by high-speed large-area imaging and a robust analysis method is needed to provide GC information. In this study, we developed a deep learning framework for GC image analysis, named dual-channel attention U-Net (DCAU-Net). Dual-channel convolution was used both to extract the overall image texture and to acquire the GC morphological characteristics. A global channel attention module was adopted by combining attention algorithms and channel-wise pooling. DCAU-Net showed 93.1% GC segmentation accuracy and 94.3% GC density estimation accuracy. Further application to both normal and ocular surface damage rabbit models revealed the spatial variations of both GC density and size in normal rabbits and the decreases of both GC density and size in damage rabbit models during recovery after acute damage. The GC analysis results were consistent with histology. Together with the non-invasive high-contrast imaging method, DCAU-Net would provide GC information for the diagnosis of ocular surface diseases.


Deep Learning , Eye Diseases , Lagomorpha , Animals , Rabbits , Goblet Cells/metabolism , Conjunctiva/pathology , Tears/metabolism , Eye Diseases/metabolism , Cell Count
20.
Rev Med Inst Mex Seguro Soc ; 61(Suppl 2): S233-S238, 2023 Sep 18.
Article Es | MEDLINE | ID: mdl-38016098

Background: Barrett's esophagus (BE) is the replacement of the usual esophageal mucosa by a simple columnar epithelium with the presence of goblet cells (GC) of intestinal type. It has been related to different risk factors such as gastroesophageal reflux disease (GERD), inappropriate consumption of irritating foods, smoking and overweight. There are CC mimic cells, known as blue cells (BC), which make the diagnosis of BE difficult, due to the lack of a precise definition of the nature and location of the gastroesophageal junction and the microscopic variations in this area. Objective: To identify morphologically and with histochemical techniques Alcian blue (AA) and periodic acid-Schiff (PAS) between GC and BC. Material and methods: Retrolective cross-sectional analytical study where 45 samples of patients diagnosed with BE were included. Results: The morphological characteristics are similar in both cell varieties. PAS staining was 100%, unlike AA staining, with only 16 cases with staining, corresponding to 35.55%. Conclusions: PAS staining has a high sensitivity and specificity for the identification of GC, this being a fundamental pillar for the correct diagnosis of BE. The presence of BC detected by AA does not exclude the diagnosis of BE, since both cell types can coexist.


Introducción: el esófago de Barrett (EB) es el recambio de la mucosa habitual esofágica por un epitelio cilíndrico simple con presencia de células caliciformes (CC) de tipo intestinal. Se ha relacionado con factores de riesgo como la enfermedad por reflujo gastroesofágico (ERGE), consumo inapropiado de alimentos irritantes, tabaquismo o sobrepeso. Hay células imitadoras de las CC, las células azules (CA), que dificultan el diagnóstico del EB y es debido a falta de una definición precisa sobre la naturaleza y ubicación de la unión gastroesofágica y las variaciones microscópicas en esta zona. Objetivo: identificar morfológicamente y con las técnicas de histoquímica azul alciano (AA) y ácido peryódico de Schiff (PAS) las CC y las CA. Material y métodos: estudio transversal retrolectivo analítico; se incluyeron 45 muestras de pacientes diagnosticados con EB. Resultados: las características morfológicas son similares en ambas variedades celulares. La tinción de PAS fue del 100%, a diferencia de la tinción de AA, con solo 16 casos con tinción, correspondiente al 35.55%. Conclusiones: la tinción de PAS tiene una alta sensibilidad y especificidad para la identificación de CC, lo cual es fundamental para el correcto diagnóstico de la EB. La presencia de CA detectadas mediante AA no excluye el diagnóstico de EB, ya que ambos tipos celulares pueden coexistir.


Barrett Esophagus , Humans , Barrett Esophagus/diagnosis , Barrett Esophagus/complications , Barrett Esophagus/metabolism , Goblet Cells/metabolism , Cross-Sectional Studies , Alcian Blue/metabolism
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