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Loria-Kohen, V.

Publications and source records attributed to Loria-Kohen, V..

2 recordsLinked to original sources

Non-responsive Celiac disease symptoms associated with microbiome network structure and function

Non-responsive celiac disease (NRCD) poses a challenge for clinicians due to the persistence of symptoms despite maintaining a gluten-free diet (GFD). This study investigated the gut microbiome, mucosal integrity, and metabolomic profiles of 39 NRCD patients to gain insights into the underlying mechanisms contributing to symptom persistence. Two distinct clusters of patients were identified based on clinical and demographic variables not influenced by gluten consumption. Cluster 1, labelled "Low-grade symptoms," displayed milder symptoms and lower inflammatory markers. In contrast, Cluster 2, named "High-grade symptoms," exhibited more severe gastrointestinal and extraintestinal symptoms, along with elevated inflammatory markers and increased intestinal permeability. Despite similar mucosal damage in both clusters, network analysis of the gut microbiome revealed specific microbial taxa with potential functional implications. Cluster 1 displayed a microbiome associated with immune homeostasis and gut barrier integrity, potentially lowering inflammation and symptom severity. In contrast, Cluster 2 had a distinct microbiome linked to lactate production, Th17 activation, possibly contributing to heightened inflammation and gastrointestinal symptoms. Metabolomic analysis revealed differential metabolites between clusters, particularly in amino acid metabolism pathways. Metabolites associated with specific symptoms were identified, implicating their potential role in symptom manifestation. Notably, vitamin D deficiency was observed in both clusters, suggesting its relevance in the context of NRCD. The study highlights the importance of the gut microbiome, mucosal integrity, and metabolic pathways in symptom persistence among NRCD patients. The associations between microbial-derived metabolites and symptom severity provide valuable insights into potential therapeutic targets. Further research is needed to validate these findings and develop targeted interventions for improving clinical outcomes in NRCD patients.

microbiology↗

Metataxonomic review to elucidate the role of the microbiome in Celiac disease across the gastrointestinal tract

BackgroundDysbiosis of the microbiome has been related to the Celiac disease (CeD) progress, an autoimmune disease characterised by gluten intolerance developed in genetically susceptible individuals under certain environmental factors. The microbiome contributes to CeD pathophysiology modulating the immune response by the action of short-chain fatty acids (SCFA), affecting gut barrier integrity allowing the entrance of gluten derived proteins, and degrading immunogenic peptides of gluten through endoprolyl peptidase enzymes. We reviewed state of the art in taxonomic composition for CeD and compiled the larger dataset of 16S prokaryotic ribosomal RNA (rRNA) gene high-throughput sequencing for consensus profiling. We present for the first time an integrative analysis of metataxonomic data from CeD patients, including samples from different body sites (saliva, pharynx, duodenum, and stool). We found the presence of coordinated changes through the gastrointestinal tract characterised by an increase in Actinobacteria species in the upper tract (pharynx and duodenum), and an increase in Proteobacteria in the lower tract (duodenum and stool), as well as site- specific changes evidencing a dysbiosis in CeD patients microbiota. Moreover, we described the effect of adherence to a gluten-free diet (GFD) evidenced by an increase in beneficial bacteria and a decrease in some Betaproteobacteriales but not fully restoring CeD-related dysbiosis. We illustrate that the gut microbiota acts as an enhancer of immune response in CeD through the production of lipopolysaccharides and other bacterial components that activate the immune response and by decrease SCFA producers bacteria. Furthermore, microbial changes observed through the gastrointestinal tract of CeD patients may help manage the disease and follow-up GFD treatment.

microbiology↗