Age-related changes in the gut microbiota of a long-lived seabird suggest divergence from mammalian models

Abstract Gut microbiota plays key roles in shaping host development, immunity, and physiology. The assembly of vertebrate gut microbiota during early life follows relatively predictable trajectories across several mammalian species, largely driven by maternal transmission routes. However, birds lack these transmission mechanisms due to their oviparity, potentially leading to different age-related microbiota patterns. Here, we investigate gut microbiota variation in Atlantic puffin ( Fratercula arctica ) chicks and adults across six British populations using 16S rRNA amplicon sequencing. We find that chick microbiotas show strong population-level structuring that disappears in adults, with spatial patterns particularly pronounced in anaerobic bacteria. Puffin microbiotas become increasingly individualised and aerotolerant with age, while taxonomic richness remains stable – patterns that contrast with the convergent, richness-increasing trajectories observed in several mammalian species. Our results suggest that environmental exposure drives early-life microbiota assembly in birds, highlighting the value of avian systems for understanding vertebrate microbiota development beyond mammals.

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Publication Details

Journal
Royal Society Open Science
Published
2026-09-09
DOI
https://doi.org/10.1098/rsos.252018
Primary Topic
Gut microbiota and health
Type
article
Field-Weighted Citation Impact
0.00

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article

Age-related changes in the gut microbiota of a long-lived seabird suggest divergence from mammalian models

Annette L. Fayet, Liz Scott, Mark A. Newell, Alan Penn et al.
Royal Society Open Science
Gut microbiota and health
article

Age-related changes in the gut microbiota of a long-lived seabird suggest divergence from mammalian models

Annette L. Fayet, Liz Scott, Mark A. Newell, Alan Penn, Liping Tang, Eveliina Hanski, Kieran A. Bates, Aura Raulo, Robert Hughes
article en

Abstract

Abstract Gut microbiota plays key roles in shaping host development, immunity, and physiology. The assembly of vertebrate gut microbiota during early life follows relatively predictable trajectories across several mammalian species, largely driven by maternal transmission routes. However, birds lack these transmission mechanisms due to their oviparity, potentially leading to different age-related microbiota patterns. Here, we investigate gut microbiota variation in Atlantic puffin ( Fratercula arctica ) chicks and adults across six British populations using 16S rRNA amplicon sequencing. We find that chick microbiotas show strong population-level structuring that disappears in adults, with spatial patterns particularly pronounced in anaerobic bacteria. Puffin microbiotas become increasingly individualised and aerotolerant with age, while taxonomic richness remains stable – patterns that contrast with the convergent, richness-increasing trajectories observed in several mammalian species. Our results suggest that environmental exposure drives early-life microbiota assembly in birds, highlighting the value of avian systems for understanding vertebrate microbiota development beyond mammals.

Royal Society Open ScienceVol. 13(9)
Royal Society for the Protection of Birds (GB), University of Turku (FI), Turku University of Applied Sciences (FI), Queen Mary University of London (GB), University of Oxford (GB), UK Centre for Ecology & Hydrology (GB), Shetland Arts (GB), Avanti (United Kingdom) (GB), Institute of Zoology (KZ), Collegium Helveticum (CH), Science Oxford (GB), Norwegian Institute for Nature Research (NO), Institute of Zoology (CN)
Eidgenössische Technische Hochschule Zürich, Emil Aaltosen Säätiö, Norges Forskningsråd, Osk. Huttusen säätiö
Openalex Percentile: Top 99%
Gut microbiota and health
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