Search bioRxiv⌕ Search

Biology subjects

Iter, M.

Publications and source records attributed to Iter, M..

2 recordsLinked to original sources

An expansive animal gut microbiome dataset elucidates major compositional shifts across bilaterian evolution

Animal gut microbiomes provide key physiological functions and are critical for host health. They vary dramatically across the animal kingdom, and are shaped by factors including host diet, evolutionary history and environment. However, analyses of gut microbiomes spanning the entire metazoan clade are lacking, limiting our understanding of the fundamental principles governing gut microbiomes. Here we present the Gut Microbiome Tree of Life (GMToL), a curated 16S amplicon dataset of 17,366 samples from 1,553 host species across 26 host classes from 284 studies, enabling analysis of large-scale evolutionary trends. Using ancestral state reconstruction, we provide a critical baseline calculation of major compositional shifts in gut microbiomes throughout animal evolution. We show that the ancestral animal gut was likely dominated by Pseudomonadota. A major shift to Bacteroidota occurred during the evolution of tetrapods, followed by the emergence of Bacillota-dominated guts in mammals and birds. We identify conserved core gut microbes and demonstrate how GMToL can be leveraged to contextualize the evolutionary history of specific microbial taxa. Ultimately, this framework enables the predictive mapping of microbial symbionts across uncharacterized host lineages, and establishes a quantitative baseline for comparative microbiome research at scale.

microbiology↗

Transitions in human gut viral communities from ancient to industrialized societies

The composition and function of the human gut microbial community (the microbiome) have changed substantially over millennia, with implications for human health. While microbiome research has focused primarily on bacterial dynamics, the long-term history of gut viral communities (the virome) remains largely unexplored, despite their crucial role in shaping bacterial populations. We analyzed gut viromes from 14 pre-modern human coprolites (1301 BCE-1400s CE), as well as 502 non-industrialized and 492 industrialized contemporary human fecal samples. We found that, from pre-modern to contemporary and industrialized populations, human gut viral communities have become more similar in gene content, increasingly dominated by temperate lifestyles, and more supportive of bacterial pathogenicity. These synergistic ecological shifts suggest that long-term changes, especially with industrialization, have fundamentally altered the gut virome, likely affecting human health. These insights into historical shifts in gut viral community and function open potential avenues for ecologically grounded therapeutics to enhance gut microbiome resilience.

microbiology↗