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Functional Divergence in Gut Clostridia from Hadza Hunter-Gatherers Reveals Diet-Adapted Metabolic Machinery That Shapes Gut Ecology

Created on 01 Oct 2026

Authors

Takeuchi, T., Reddy, A., Robinson, E. K., Kotaka, K., Higginbottom, S. K., Sonnenburg, E. D., Sonnenburg, J. L.

Abstract

Lifestyle changes associated with industrialization, including shifts in diet, are linked to extensive remodeling of the human gut microbiome. Investigating the gut microbiomes of traditional populations living non-industrialized lifestyles, such as the Hadza hunter-gatherers of Tanzania, therefore offers insight into bacterial taxa and functions depleted in industrialized microbiomes. Despite pronounced compositional differences that correspond to lifestyle, many commensal gut species are shared between industrialized and non-industrialized populations, raising a fundamental question of whether and how their functional repertoires diverge across contrasting gut environments. Here, by integrating strain-resolved metagenomics with culturomics and in vivo models, we identify phylogenetic and functional divergence within prevalent gut species shared between Hadza and industrialized populations, particularly among members of the Clostridia class. Dorea longicatena, prevalent across diverse human populations independent of lifestyle, is a poorly characterized member of Clostridia. Using strains of this D. longicatena isolated from either Hadza or industrialized human stool samples we uncover metabolic pathways selectively enriched in Hadza strains, including machinery for utilizing plant-derived pectic polysaccharides. We further demonstrate that this Hadza-enriched polysaccharide-utilization machinery can be leveraged with its cognate dietary substrate to promote D. longicatena colonization within a model industrialized microbiota, reshaping intestinal and portal-vein metabolite profiles. Together, our findings reveal substantial functional divergence within gut bacterial species shared across lifestyles, providing a framework for identifying diet-responsive strains and pathways that may complement ecological and metabolic functions underrepresented in industrialized microbiotas.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 01 Oct 2026.

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