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Fricker, A. D.

Publications and source records attributed to Fricker, A. D..

3 recordsLinked to original sources

Time-resolved growth of diverse human-associated Akkermansia on human milk oligosaccharides

The infant gut microbiota is strongly influenced by human milk oligosaccharides (HMOs), a set of glycans that comprise a large constituent of milk and reach the large intestine intact. During growth on HMOs, bacteria produce beneficial metabolites including short chain fatty acids (SCFAs) that are important for host health. Select gut microorganisms have unique sets of enzymes capable of catabolizing distinct HMOs leading to host-specific differences in glycan access, and ultimately differences in SCFA production. Here we cultivated three species of human-associated Akkermansia, an early life commensal that is correlated with a healthy metabolic status in adults, on five individual HMOs in two different media backgrounds. Analysis of growth rates, growth yield, metabolic output, and individual HMO consumption through time revealed differences across species that was influenced by growth media. Most notably, A. biwaensis CSUN-19 has robust growth in both media backgrounds paired with nearly complete degradation of all HMOs. Across all conditions, overall SCFA production was generally commensurate with growth, but most strikingly, A. muciniphila MucT and A. biwaensis CSUN-19 produced succinate only when grown in the presence of N-acetyl glucosamine, but not with mucin. The third organism tested, A. massiliensis CSUN-17 had weaker growth, lower degradation of HMOs, but higher production of propionate in media containing N-acetyl glucosamine. Interactions between Akkermansia and HMOs can influence colonization of other early life commensals, potentially influencing health outcomes throughout life. This study highlights the importance of characterizing growth of individual Akkermansia species on distinct HMO leading to fermentation into organic acids. IMPORTANCEAkkermansia are a widely distributed bacterial genus found in the healthy human gut that are capable of degrading host-produced glycans including human milk oligosaccharides (HMOs). Previous end-point experiments demonstrated varying degradation efficiencies across Akkermansia species with A.biwaensis displaying enhanced growth on multiple HMOs. However, the temporal dynamics and growth preferences when offered substrate choice across the lineage are unknown. Here, we characterized the temporal growth dynamics, HMO catabolism, and metabolic output of three Akkermansia species across five HMOs and two media backgrounds. Specifically, we demonstrate that one species, A. biwaensis CSUN-19, has robust growth independent of media background with nearly complete degradation of all HMOs tested. Overall, the species-, HMO-, and media-specific response of Akkermansia may impact the colonization success of each species, ultimately influencing host-microbe and microbe-microbe interactions in the developing infant gut microbiome.

microbiology↗

The effect of particle size on wheat bran fermentation by human gut microbiota

0.Dietary fibers within whole grains reach the large intestine where they shape the microbial composition. However, the bioavailability of these dietary nutrients to the microbiota is likely limited due to entrapment within the grain particle and requires liberation by microbial enzymes. Here, we used batch fecal fermentation from mixed donors on a range of sizes of wheat particles generated by cyclone milling from a single source to identify bacterial taxa and genomic signatures that are responsive to differences in wheat bran fine structures. We present evidence that different taxa within the same genus colonize wheat bran particles of different sizes. Further, neutral sugar content varied across wheat bran particles despite originating from the same batch, suggesting different polysaccharide structures and nutritional niches. In line with the taxonomic and compositional differences, specific short chain fatty acids varied across particle sizes; in fine wheat bran particle fermentations propionate was high and butyrate low. To identify relevant genomic features implicated in bran colonization, we took a metagenomic approach. From this, we linked genes associated with polysaccharide fermentation to wheat bran particles independent of size, however, within one well-distributed taxon, Lachnospiraceae, genes related to motility were linked to large and medium wheat bran particles. Overall, these results suggest that differences in fine structures and resource availability, as generated through milling, can drive compositional changes in the gut microbiota in an organism-specific manner, mediated through its genomic capacity. IMPORTANCECereal brans comprise a large fraction of the dietary fiber consumption. Although it is well-known that dietary fibers influence the metabolic output and taxonomic composition of the gut microbiota, relatively little is known regarding whether the fine structures and resource availability of milled whole grains exert any influence on the microbial makeup. Our data suggest that the sugar content varies across bran milled from a single source to different sizes. These differences in composition may result in colonization differences by related, but unique, taxa, mediated by genes related to polysaccharide fermentation, thus leading to differences in metabolic output. Furthermore, our data suggest that genes related to motility might influence the capacity of microorganisms to colonize particles. Taken together, our data suggest that physical context can influence gut microbiota composition in turn impacting metabolic output. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=187 SRC="FIGDIR/small/654185v1_ufig1.gif" ALT="Figure 1"> View larger version (34K): org.highwire.dtl.DTLVardef@1b3b95corg.highwire.dtl.DTLVardef@4e5432org.highwire.dtl.DTLVardef@79d317org.highwire.dtl.DTLVardef@119ba9_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗

Mechanism of 2-Fucosyllactose degradation by Human-Associated Akkermansia

Among the first microorganisms to colonize the human gut of breastfed infants are bacteria capable of fermenting human milk oligosaccharides (HMOs). One of the most abundant HMOs, 2-fucosyllactose (2-FL), may specifically drive bacterial colonization of the intestine. Recently, differential growth has been observed across multiple species of Akkermansia on various HMOs including 2FL. In culture, we found growth of two species, A. muciniphila MucT and A. biwaensis CSUN-19, in HMOS corresponded to a decrease in the levels of 2-FL and an increase in lactose, indicating that the first step in 2-FL catabolism is the cleavage of fucose. Using phylogenetic analysis and transcriptional profiling, we found that the number and expression of fucosidase genes from two glycoside hydrolase (GH) families, GH29 and GH95, varies between these two species. During mid-log phase growth, the expression of several GH29 genes was increased by 2-FL in both species, whereas the GH95 genes were induced only in A. muciniphila. We further show that one putative fucosidase and a {beta}-galactosidase from A. biwaensis are involved in the breakdown of 2-FL. Our findings indicate that that plasticity of GHs of human associated Akkermansia sp. enable access to additional growth substrates present in HMOs, including 2-FL. Our work highlights the potential for Akkermansia to influence the development of the gut microbiota early in life and expands the known metabolic capabilities of this important human symbiont. IMPORTANCEAkkermansia are mucin degrading specialists widely distributed in the human population. Akkermansia biwaensis has recently been observed to have enhanced growth relative to other human associated Akkermansia on multiple human milk oligosaccharides (HMOs). However, the mechanisms for enhanced growth are not understood. Here, we characterized the phylogenetic diversity and function of select genes involved in growth of A. biwaensis on 2-fucosyllactose (2-FL), a dominant HMO. Specifically, we demonstrate that two genes in a genomic locus, a putative {beta}-galactosidase and -fucosidase, are likely responsible for the enhanced growth on 2-FL. The functional characterization of A. biwaensis growth on 2-FL delineates the significance of a single genomic locus that may facilitate enhanced colonization and functional activity of select Akkermansia early in life.

microbiology↗