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Biology subjects

Do, T. V. T.

Publications and source records attributed to Do, T. V. T..

2 recordsLinked to original sources

Mucinolysome in gut microbiomes of farm animals and humans

Mucins are glycoproteins that create a protective barrier protecting host tissues from microbial pathogens and are instrumental for host health. Here, we provide evidence that mucin glycan degradation in the gut can be mediated by mucinolysomes, defined as extracellular multi-enzyme complexes specializing in mucin glycan degradation. We computationally predicted the presence of mucinolysomes across 63 metagenome-assembled genomes (MAGs) and two isolated genomes of anaerobic Limousia bacteria, including seven MAGs from human samples of six countries. All 65 genomes were found to display core mucinolysome components, consisting of 3[~]6 scaffoldins (containing up to 12 cohesin modules) and up to 22 dockerin-containing mucin glycan-degrading CAZymes (carbohydrate active enzymes). The organization of mucinolysomes allows the assembly of up to 24 CAZymes in the same complex. We validated that a cultivated Limousia strain ET540 from chicken cecum can support growth on mucins as its sole carbon source, triggering the expression of most mucinolysome-related genes, including both scaffoldins and CAZymes. We also modeled the assembly of proteins into a multi-enzyme complex by predicting the cohesin-dockerin interactions among most of the mucinolysome proteins using AlphaFold3. While mucinolysosome-encoding Limousia have low abundance in different animal hosts, their abundance and prevalence are higher in farm animals than in humans, highlighting a potentially important role in livestock gut ecosystems. Our findings reveal a novel mechanism of mucin glycan degradation and provide a framework to explore microbial contributions to gut health and host-microbe interactions across species.

bioinformatics↗

Dissecting the Role of Flagellar Subunits in Clostridioides difficile Mucosal Colonization

Clostridioides difficile is a common cause of acute gastrointestinal (GI) inflammation in mammals, which can have detrimental effects on host health. C. difficile associated disease (CDAD) requires the secretion of high-molecular weight toxins after colonization of the GI tract. The molecular mechanisms of GI colonization by C. difficile, include potential interactions with host cells and the mucus layer formed from secreted mucin glycoproteins. C. difficile associates with the mucus layer in vivo and will associate with both epithelial cells and mucosal surfaces in vitro. Previously, we found a substantial defect in binding to mucosal surfaces for mutants of the major flagellar subunit, fliC, while mutation of the major subunit of type IV pili, pilA1, showed increased adhesion. To elucidate the mechanisms by which C. difficile interacts with ex vivo mucosal surfaces, we have measured swimming motility, mucosal adhesion and levels of flagellation by transmission electron microscopy for mutants of flagellar and T4P genes in C. difficile R20291. We discovered that the pilA1 mutant showed increased flagellation, while decreases in flagellation were found for fliC, fliD, and flg-OFF (a phase-locked mutant with low transcription of the F3 flagellar operon) which were associated with both low swimming motility and low adhesion to mucosal surfaces. However, the reversed flg-ON mutant showed increased flagellation without a significant increase in adhesion. We also found that the fliC mutant was defective in binding to mucus-secreting HT-29 MTX cells, but not HT-29 cells. These results imply that at least two molecular pathways contribute to C. difficile mucosal adhesion. In addition to their direct roles encoding T4P and flagellar subunits, pilA1 and fliC may contribute to regulating other factors relevant to mucosal adhesion.

microbiology↗