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Multi-kingdom ecological drivers of microbiota assembly in preterm infants

The preterm infant gut microbiota develops remarkably predictably(1–7), with pioneer species colonizing after birth, followed by an ordered succession of microbes. The gut microbiota is vital to preterm infant health(8,9) yet the forces underlying these predictable dynamics remain unknown. The envir...

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Autores principales: Rao, Chitong, Coyte, Katharine Z., Bainter, Wayne, Geha, Raif S., Martin, Camilia R., Rakoff-Nahoum, Seth
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7990694/
https://www.ncbi.nlm.nih.gov/pubmed/33627867
http://dx.doi.org/10.1038/s41586-021-03241-8
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author Rao, Chitong
Coyte, Katharine Z.
Bainter, Wayne
Geha, Raif S.
Martin, Camilia R.
Rakoff-Nahoum, Seth
author_facet Rao, Chitong
Coyte, Katharine Z.
Bainter, Wayne
Geha, Raif S.
Martin, Camilia R.
Rakoff-Nahoum, Seth
author_sort Rao, Chitong
collection PubMed
description The preterm infant gut microbiota develops remarkably predictably(1–7), with pioneer species colonizing after birth, followed by an ordered succession of microbes. The gut microbiota is vital to preterm infant health(8,9) yet the forces underlying these predictable dynamics remain unknown. The environment, the host, and microbe-microbe interactions are all likely to shape microbiota dynamics, but in such a complex ecosystem identifying the specific role of any individual factor has remained a major challenge(10–14). Here we use multi-kingdom absolute abundance quantitation, ecological modelling, and experimental validation to overcome this challenge. We quantify the absolute bacterial, fungal, and archaeal dynamics in a longitudinal cohort of 178 preterm infants. We uncover, with exquisite precision, microbial blooms and extinctions and reveal an inverse correlation between bacterial and fungal loads in the infant gut. We infer computationally and demonstrate experimentally in vitro and in vivo that predictable assembly dynamics may be driven by directed, context-dependent interactions between specific microbes. Mirroring the dynamics of macroscopic ecosystems(15–17), a late-arriving member, Klebsiella, exploits the pioneer, Staphylococcus, to gain a foothold within the gut. Remarkably, we find that interactions between kingdoms can influence assembly, with a single fungal species, Candida albicans, inhibiting multiple dominant gut bacteria. Our work unveils the centrality of simple microbe-microbe interactions in shaping host-associated microbiota, critical for both our understanding of microbiota ecology and targeted microbiota interventions.
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spelling pubmed-79906942021-08-24 Multi-kingdom ecological drivers of microbiota assembly in preterm infants Rao, Chitong Coyte, Katharine Z. Bainter, Wayne Geha, Raif S. Martin, Camilia R. Rakoff-Nahoum, Seth Nature Article The preterm infant gut microbiota develops remarkably predictably(1–7), with pioneer species colonizing after birth, followed by an ordered succession of microbes. The gut microbiota is vital to preterm infant health(8,9) yet the forces underlying these predictable dynamics remain unknown. The environment, the host, and microbe-microbe interactions are all likely to shape microbiota dynamics, but in such a complex ecosystem identifying the specific role of any individual factor has remained a major challenge(10–14). Here we use multi-kingdom absolute abundance quantitation, ecological modelling, and experimental validation to overcome this challenge. We quantify the absolute bacterial, fungal, and archaeal dynamics in a longitudinal cohort of 178 preterm infants. We uncover, with exquisite precision, microbial blooms and extinctions and reveal an inverse correlation between bacterial and fungal loads in the infant gut. We infer computationally and demonstrate experimentally in vitro and in vivo that predictable assembly dynamics may be driven by directed, context-dependent interactions between specific microbes. Mirroring the dynamics of macroscopic ecosystems(15–17), a late-arriving member, Klebsiella, exploits the pioneer, Staphylococcus, to gain a foothold within the gut. Remarkably, we find that interactions between kingdoms can influence assembly, with a single fungal species, Candida albicans, inhibiting multiple dominant gut bacteria. Our work unveils the centrality of simple microbe-microbe interactions in shaping host-associated microbiota, critical for both our understanding of microbiota ecology and targeted microbiota interventions. 2021-02-24 2021-03 /pmc/articles/PMC7990694/ /pubmed/33627867 http://dx.doi.org/10.1038/s41586-021-03241-8 Text en Reprints and permissions information is available at www.nature.com/reprints (http://www.nature.com/reprints) . Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Rao, Chitong
Coyte, Katharine Z.
Bainter, Wayne
Geha, Raif S.
Martin, Camilia R.
Rakoff-Nahoum, Seth
Multi-kingdom ecological drivers of microbiota assembly in preterm infants
title Multi-kingdom ecological drivers of microbiota assembly in preterm infants
title_full Multi-kingdom ecological drivers of microbiota assembly in preterm infants
title_fullStr Multi-kingdom ecological drivers of microbiota assembly in preterm infants
title_full_unstemmed Multi-kingdom ecological drivers of microbiota assembly in preterm infants
title_short Multi-kingdom ecological drivers of microbiota assembly in preterm infants
title_sort multi-kingdom ecological drivers of microbiota assembly in preterm infants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7990694/
https://www.ncbi.nlm.nih.gov/pubmed/33627867
http://dx.doi.org/10.1038/s41586-021-03241-8
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