Project description:The inter-organ cross talk between liver and intestine has been focus of intense research. Key in this cross-talk are bile acids, which are secreted from the liver into the intestine and, via the enterohepatic circulation, reach back to the liver. Important new insights have been gained in the Farnesoid X receptor (Fxr)-mediated communication from intestine-to-liver in health and disease. However, liver-to-intestine communication and the role of bile acids and FXR in this cross talk remain elusive. Here, we analyse Fxr-mediated liver-to-gut communication, and its consequences in the colon. Mice in which Fxr was selectively ablated in intestine (Fxr-intKO), the liver (Fxr-livKO), or in the full body (Fxr-totKO) were engineered. The effects on colonic gene expression (RNA sequencing), on the microbiome (16S rRNA Gene Sequencing) and on mucus barrier were analyzed. Compared to Fxr-intKO and Fxr-totKO mice, more genes were differentially expressed in the colons of Fxr-livKO mice relative to control mice (731, 1824 and 3272 respectively), suggestive of a strong role of hepatic Fxr in liver-to-gut communication. The colons of Fxr-livKO showed increased expression of anti-microbial genes, such as Regenerating islet-derived 3 beta and gamma (Reg3β and Reg3γ), Toll-like receptors (Tlrs), inflammasome related genes and differential expression of genes belonging to the ‘Mucin-type O-glycan biosynthesis’ pathway. Compared to control mice, Fxr-livKO mice have decreased levels of the predicted mucin degrading bacterium Turicibacter and a concomitant increase in the thickness of the inner sterile mucus layer. In conclusion, ablation of Fxr in the liver has a major effect on colonic gene expression, the gut microbiome and on the permeability of the mucus layer. This stresses the importance of the Fxr-mediated liver-to-gut signaling.
Project description:Metabolic dysfunction-associated steatotic liver disease (MASLD) affects ~40% of adults, but causal mechanisms remain elusive. Preclinical models implicate the gut microbiota in MASLD pathogenesis, yet translation to humans is hampered by instability and variability in microbial composition. We addressed these gaps by investigating whether stable, quantitative gut phenotypes including microbiota encroachment are pathological features of MASLD. Sigmoid colon biopsies were collected from participants with and without imaging-defined MASLD. Mucus immunostaining was paired with fluorescent in situ hybridization to image and quantify the distance separating bacteria from the colonic epithelium (i.e., encroachment). Secondary outcomes included intestinal permeability, colon histopathology, and estimates of central and adipose tissue insulin resistance (Adipo-IR). RNA-sequencing was combined with weighted gene network correlation analysis to explore relationships between colonic gene expression and clinical endpoints. Microbiota encroachment did not differentiate participants with MASLD from controls. Circulating lipopolysaccharide and flagellin-specific immunoglobulins (i.e., intestinal permeability), and colon histopathology were similar across cohorts. Adipo-IR and microbiota encroachment were related to a colonic gene network regulating insulin and lipid metabolism. Pathway analysis of this network revealed genes involved in hepatic steatosis and fibrosis, suggesting a gut-adipose-liver crosstalk.
Project description:Here we have shown that diet-mediated alterations of the gut microbiota composition cause an erosion of the colonic mucus barrier. A compensatory increase in cellular mucus production by the host is not sufficient to re-establish the barrier, possibly due to a lacking increase in mucus secretion. While microbial transplant from mice fed a fiber-rich diet can prevent the mucus defects, the mechanism seems to be independent of general fiber fermentation and rather depend on distinct bacterial species and/or their metabolites.
Project description:The gut microbiota is essential for several aspects of host physiology such as metabolism, epithelial barrier function and immunity. Previous studies have revealed that host immune system as well as diet and other environmental factors have a strong impact on the composition and activity of gut microbiota, but the molecular requirements for such functional regulation remain unknown. We show that the bacteria belonging to phylum Bacteroidetes acquire their symbiotic activity in the colonic mucus, depending on a newly characterized molecular family encoded within the polysaccharide utilization loci (PUL), which we have named Mucus-Associated Functional Factor (MAFF). We used microarray analysis of colonic epithlial cells to determin the impact of MAFF genes on colonic homeostasis.
Project description:Aging and unhealthy diets are risks for metabolic diseases including liver cancer. Bile acid receptor farnesoid X receptor (FXR) knockout (KO) mice develop metabolic liver diseases and progress into liver cancer as they age, and Western diet (WD) intake facilitates liver carcinogenesis in those mice. This study aimed to uncover molecular signatures within the gut-liver axis for diet and age-linked liver diseases in FXR-dependent or independent manners. Many more transcripts were changed due to WD intake and aging in WT mice than those in FXR KO mice. In other words, WD intake and aging impact the hepatic transcriptomes and metabolomes in an FXR-dependent manner. In WT mice, WD/aging upregulated inflammation-related genes and downregulated genes involved in oxidative phosphorylation (OXPHOS). Urine metabolomes provided clear distinguishing for differential dietary intake. By contrast, the metabolomes of the liver, serum, or urine could reflect age differences. Further, irrespective of differential diets intake or ages, transcriptomes, metabolomes, and cecal microbiota distinguished WT and FXR KO. Western dietary patterns and aging share molecular commonality with FXR deactivation. Notably, WD, aging, and FXR deactivation commonly altered hepatic cell division-related transcripts (Cenpe, Ect2, Top2a, Kif20a, Tpx2, Nuf2, Kif18b, Aspm, E2f8, and Hmmr), which are associated with overall survival rate in HCC patients. In conclusion, FXR is essential for maintaining metabolic homeostasis in response to WD intake and aging. FXR activation helps to alleviate diet and/or aging-induced metabolic health issues.
Project description:Malnutrition is a major global health challenge that increases intestinal permeability and susceptibility to sepsis, yet the mechanisms driving barrier dysfunction remain poorly defined. We aimed to identify how the gut microbiome and microbiota-derived metabolites regulate intestinal barrier integrity during malnutrition. We used a low-protein, low-fat diet (LPLFD) to induce malnutrition in specific pathogen-free (SPF) and germ-free (GF) mice. Colonic permeability and mucus thickness were quantified. Metabolomics identified microbiota-derived metabolites altered by malnutrition. Human colonoids were used to test mechanistic effects of candidate metabolites. Barrier restoration was evaluated following colonic administration of isovalerate or oral supplementation with its precursor amino acid, leucine. LPLFD-induced malnutrition increased colonic permeability and reduced mucus thickness in male, but not female, SPF mice. These defects were absent in malnourished GF mice, indicating a microbiota-dependent and sexually dimorphic mechanism of barrier disruption. Metabolomic analysis revealed reduced colonic levels of branched-chain fatty acids (BCFAs) in malnourished mice. Supplementation of human colonoids with the BCFA isovalerate improved barrier function and altered expression of genes associated with epithelial junctional complexes. Restoring isovalerate levels, either directly via colonic administration or indirectly through oral leucine supplementation, partially rescued barrier defects in malnourished male mice. These findings identify BCFAs, particularly isovalerate, as essential microbiota-derived regulators of intestinal barrier integrity during malnutrition. This work reveals a sex-specific, microbiota-dependent pathway of barrier dysfunction and highlights microbial metabolites as promising therapeutic targets for mitigating sepsis risk in undernourished populations.
Project description:Malnutrition is a major global health challenge that increases intestinal permeability and susceptibility to sepsis, yet the mechanisms driving barrier dysfunction remain poorly defined. We aimed to identify how the gut microbiome and microbiota-derived metabolites regulate intestinal barrier integrity during malnutrition. We used a low-protein, low-fat diet (LPLFD) to induce malnutrition in specific pathogen-free (SPF) and germ-free (GF) mice. Colonic permeability and mucus thickness were quantified. Metabolomics identified microbiota-derived metabolites altered by malnutrition. Human colonoids were used to test mechanistic effects of candidate metabolites. Barrier restoration was evaluated following colonic administration of isovalerate or oral supplementation with its precursor amino acid, leucine. LPLFD-induced malnutrition increased colonic permeability and reduced mucus thickness in male, but not female, SPF mice. These defects were absent in malnourished GF mice, indicating a microbiota-dependent and sexually dimorphic mechanism of barrier disruption. Metabolomic analysis revealed reduced colonic levels of branched-chain fatty acids (BCFAs) in malnourished mice. Supplementation of human colonoids with the BCFA isovalerate improved barrier function and altered expression of genes associated with epithelial junctional complexes. Restoring isovalerate levels, either directly via colonic administration or indirectly through oral leucine supplementation, partially rescued barrier defects in malnourished male mice. These findings identify BCFAs, particularly isovalerate, as essential microbiota-derived regulators of intestinal barrier integrity during malnutrition. This work reveals a sex-specific, microbiota-dependent pathway of barrier dysfunction and highlights microbial metabolites as promising therapeutic targets for mitigating sepsis risk in undernourished populations.
Project description:Proteome analysis of the surface matrix of chitinous barrier membranes of the tunicate Ciona intestinalis Type A, a marine filter-feeding invertebrate chordate. This chitinous membrane separate food microbes from the gut epithelium, as a physical barrier. As controls, we used mucus cords from the esophagus.
Project description:Colonic goblet cells respond to invading enteropathogens by secreting Muc2 mucin and other specific goblet cell proteins that physically entrap and expel microbes away from the epithelium. At present, it is unclear how innate effectors in the gut, including small cationic cathelicidin peptides secreted by the intestinal epithelium and leukocytes, contribute to mucus barrier defense during infections. In this study, we used cathelicidin-deficient (Camp-/-) mice, colonoids, and human colonic LS174T goblet cells to elucidate the mechanisms by which cathelicidin regulates goblet cell secretions in innate host defense against attaching/effacing Citrobacter rodentium. We showed that even though Camp-/- littermates infected with C. rodentium displayed increased fecal shedding and epithelial colonization, Muc2 mucin granules were retained in bloated colonic goblet cells that impaired mucus secretion and expressed less mucus-associated proteins, as quantified by proteomic analysis. C. rodentium infected Camp-/- littermates showed impaired reactive oxygen species (ROS) production and transcriptomic profiling associated with decreased ROS biosynthesis and an increase in ROS negative regulators. Camp-/- bone marrow derived macrophages produced less ROS than their wild-type counterparts. In LS174T goblet cells, human cathelicidin LL-37 promptly induced the secretion of goblet cell-associated TFF3 and RELMβ, which was dependent on ROS production. These findings demonstrate that cathelicidin signaling in colonic goblet cells regulates mucus and mucin-associated protein secretion via an ROS-dependent mechanism to clear bacterial infections and restore gut homeostasis.