Megasphaera elsdenii is best known as a prominent lactate consumer within the rumen microbial community in livestock, and its metabolic properties are relatively well studied. In humans, it can be isolated from healthy donors’ feces and, more often, from patients’ feces with diverse inflammatory conditions. Genetic diversity of this species is poorly understood, and it is currently unclear whether human and animal gut isolates are genetically related and perform the same metabolic function. In this study, we compared 86 M. elsdenii genomes from human feces (as a proxy for the human gut) to those of animal gut isolates. Phylogenetic analysis revealed that human and animal gut lineages intermingle within a single, genetically homogeneous branch, lacking any host-specific clustering. Human gut lineages shared most of their genes and biochemical pathways with those of swine and cattle gut isolates, despite differences in their digestive tracts. Neither unsupervised nor supervised approaches identified any notable differences in encoded pathways between different host-specific gut lineages. Genome-scale metabolic modeling suggests that human and animal gut lineages likely share identical carbon and energy source requirements. Moreover, the requirements for lactate and acetate were conserved across all studied samples, regardless of the host. Finally, we found no virulence genes, and lactate utilization remains a plausible explanation for M. elsdenii accumulation in the host intestine. IMPORTANCE Megasphaera elsdenii is considered a commensal in the human gut and animal rumen. However, M. elsdenii tends to be more abundant in patients’ feces with diverse inflammatory conditions. As we know little about the strain diversity and biology of human gut lineages, comparisons with better-studied animal isolates can be informative. In this study, we compared human gut M. elsdenii genomes to those from better-studied isolates from ruminant and non-ruminant animal hosts. Human gut samples associated with patients and healthy donors were genetically very similar to gut isolates from animals and may have shared a common origin. We found that human and animal gut lineages have a similar genomic makeup and metabolic potential, and that neither group harbors virulence genes. We hypothesize that M. elsdenii is a benign commensal that grows in response to lactate accumulation in the inflamed gut.
D. Sabirova, M. Rayko, V.B. Vinichenko et al.· bioRxiv· 0 citations
Introduction The gut microbial community plays a key role in maintaining the host immune homeostasis. However, current analytical approaches analyze individual taxa rather than gut communities, thereby missing community-level functions performed by units, such as ecological guilds. Delineating ecological units is a promising approach for summarizing the functional output of microbes and their impact on the host. Methods In this study, we investigated gut bacteria in 33 tuberculosis patients and 47 healthy controls using enterosignatures (ESs), ecological units of co-occurring bacteria related by function. We focused on detecting enterosignatures enriched in the gut communities of tuberculosis (TB) patients. For each patient-enriched enterosignature, we counted the metabolic pathways encoded by its member species. In this manner, we characterized the functional potential of ecological guilds enriched in TB patients. Finally, we tested whether ecological guilds correlate more closely with disease and host biomarkers. Results and Discussion We show that inferred ESs represent reproducible units that facilitate proper comparison of identified ecological guilds to those observed in worldwide donor populations. Namely, dominant enterosignatures in the analyzed healthy donors reproduced the same ecological guilds observed among healthy individuals worldwide. In contrast, most TB patients carried two enterosignatures (ES-Bifi and ES-Esch) that were hallmarks of disturbed gut communities and atypical for healthy adults. We estimated the abundance of metabolic pathways encoded by member species of these patient-enriched ESs. We found that an increase in bacterial species comprising ES-Bifi and ES-Esch harbor an increased number of pathways for fermenting simple sugars, with end products such as acetate and lactate. A greater number of ecological guilds that ferment glucose to lactate might indicate an altered gut environment in patients, including increased acidity and disturbed carbohydrate flux. Taken together, our analyses suggest that ESs represent a biologically meaningful unit for reducing the complexity of the human gut microbiome and a tool for recognizing sharper patterns behind noisy taxonomic and functional diversity.
M. Yunusbaeva, D. Sabirova, L. Borodina et al.· Frontiers in Cellular and In...· 0 citations
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