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Updated: Nov 16, 2025

Probiotic Studies in Neonatal Mice Using Gavage
Published on: January 27, 2019
Multi-kingdom ecological drivers of microbiota assembly in preterm infants
Chitong Rao1, Katharine Z Coyte2,3, Wayne Bainter4
1Division of Infectious Diseases, Department of Pediatrics, Boston Children's Hospital, Boston, MA, USA.
Insights
Microbe-microbe interactions, not just environment or host, drive gut microbiome assembly in preterm infants. Specific interactions, like Klebsiella exploiting Staphylococcus, shape microbial communities crucial for infant health.
Area of Science:
- Microbiome research
- Infant health
- Ecology
Background:
- The gut microbiota of preterm infants follows a predictable assembly pattern.
- The factors driving these dynamics are largely unknown.
- Understanding these forces is critical for preterm infant health.
Purpose of the Study:
- To identify the key drivers of gut microbiome assembly in preterm infants.
- To investigate the role of microbe-microbe interactions in shaping the infant gut ecosystem.
- To explore cross-kingdom interactions within the developing microbiota.
Main Methods:
- Longitudinal cohort study of 178 preterm infants.
- Multi-kingdom absolute abundance quantification (bacteria, fungi, archaea).
- Ecological modeling and experimental validation (in vitro and in vivo).
Main Results:
- Observed microbial blooms, extinctions, and an inverse correlation between bacterial and fungal loads.
- Demonstrated that specific microbe-microbe interactions, like Klebsiella-Staphylococcus, drive assembly dynamics.
- Identified Candida albicans as inhibiting dominant gut bacterial genera.
Conclusions:
- Predictable gut microbiome assembly in preterm infants is driven by directed, context-dependent microbial interactions.
- Cross-kingdom interactions significantly influence microbiota assembly.
- Microbe-microbe interactions are central to shaping host-associated microbiota, informing targeted interventions.
Abstract:
The gut microbiota of preterm infants develops predictably1-7, with pioneer species colonizing the gut after birth, followed by an ordered succession of microorganisms. The gut microbiota is vital to the health of preterm infants8,9, but the forces that shape these predictable dynamics of microbiome assembly are unknown. The environment, the host and interactions between microorganisms all potentially shape the dynamics of the microbiota, but in such a complex ecosystem, identifying the specific role of any individual factor is challenging10-14. Here we use multi-kingdom absolute abundance quantification, ecological modelling and experimental validation to address this challenge. We quantify the absolute dynamics of bacteria, fungi and archaea in a longitudinal cohort of 178 preterm infants. We uncover microbial blooms and extinctions, and show that there is 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 microorganisms. Mirroring the dynamics of macroscopic ecosystems15-17, a late-arriving member of the microbiome, Klebsiella, exploits the pioneer microorganism, Staphylococcus, to gain a foothold within the gut. Notably, we find that interactions between different kingdoms can influence assembly, with a single fungal species-Candida albicans-inhibiting multiple dominant genera of gut bacteria. Our work reveals the centrality of simple microbe-microbe interactions in shaping host-associated microbiota, which is critical both for our understanding of microbiota ecology and for targeted microbiota interventions.
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