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Zioutis, C.

Publications and source records attributed to Zioutis, C..

2 recordsLinked to original sources

Rapid genetic diversification of Bacteroides thetaiotaomicron in mono-associated mice revealed through deep population-level sequencing

Bacteria often feature short generation times and large populations, thereby allowing them to quickly evolve and adapt to new environments. Although it is known that gut bacteria can evolve on relatively short time scales, the extent of genetic diversification of bacteria in the gut environment remains underexplored. Here, we characterize the genetic diversification of the gut commensal Bacteroides thetaiotaomicron during 28 days of colonization of germ-free mice using deep shotgun sequencing as well as genome analysis of evolved isolates. We detect thousands of genetic polymorphisms as early as three days post inoculation and observe highly dynamic genetic diversity in the distal gut. We identify multiple haplotypes of a phase-variable polysaccharide utilization locus (BT2260 - BT2268) and propose that phase variation may be an important mechanism for diversification and adaptation in the gut. In addition, we find evidence that hybrid two-component system (HTCS) regulators are mutational hotspots. We identify multiple persistent and parallelly evolved genetic polymorphisms in genes, including the TonB-dependent transporter BT0867 - a homolog of BF3581 from the commensal colonization factor (ccf) in B. fragilis. Lastly, we find that the small intestine accumulated approximately 20 times more polymorphisms compared to the large intestine, highlighting overall the importance of studying spatiotemporal distribution of genetic variants. These results underscore the prevalence of rapid genetic diversification of gut bacteria, which may have important implications for adaptation as well as interactions in the microbiome and with the host. ImportanceStudying the within-host evolution of gut commensals is an essential step for understanding the role of microbiome in health and disease. It can provide insights into the mechanisms underlying the development of various gastrointestinal disorders, metabolic conditions, autoimmune diseases, and other health disorders. Additionally, this kind of research can further drive the development of personalized therapies, such as strain-level or gene specific interventions for improving health outcomes. Here, we report extensive genetic variation within days upon colonization of mice with B. thetaiotaomicron and identify genes that accumulate persistent and highly prevalent genetic polymorphisms across a mouse population. We also detect several haplotypes in phase-variable loci. Altogether, our findings underscore the rapid pace of genetic diversification and phase variation upon colonization of the gut environment.

microbiology↗

Nutrient landscape shapes the genetic diversification of the human gut commensal Bacteroides thetaiotaomicron

Bacteroides thetaiotaomicron is a prominent member of the human gut microbiome that has evolved a suite of polysaccharide utilization loci (PUL) to break down a range of diet- and host-derived glycans. To gain insight into the evolution of this bacterium on ecologically meaningful time scales, we carried out an in vitro evolution study in which B. thetaiotaomicron was cultivated on media of different carbohydrate complexity for three months. Shotgun sequencing of the evolved populations revealed an increased number of single nucleotide polymorphisms with increased medium complexity, suggesting that genetic diversification is driven in part by the nutrient landscape. We also observed high-frequency reversible DNA inversions mediated by site-specific DNA integrases, which may be important to production and maintenance of phenotypic heterogeneity in the population. Competition experiments against the ancestor revealed adaption to the experimental conditions, with a fitness gain of the evolved populations and lineages thereof. This fitness advantage was accompanied by an increase in cell size, faster glucose depletion rates, and increased amylopectin degradation in the presence of glucose. In conclusion, rapid adaptive genetic diversification in B. thetaiotaomicron is induced and maintained in part by a complex nutritional environment.

microbiology↗