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Published on: January 26, 2024
Impact of phage enrichment on the observed infant gut phageome
Sandro Valenzuela-Diaz1, Evgenia Dikareva2, Brandon Hickman1
1Human Microbiome Research Program, Faculty of Medicine, University of Helsinki, Helsinki, Finland.
Insights
Optimizing DNA enrichment from infant gut samples improves viral detection. This new polyethylene glycol (PEG)-based method enhances phage DNA recovery, revealing crucial infant virome details previously missed.
Area of Science:
- Microbiology
- Virology
- Human Gut Microbiome Research
Background:
- Infant gut microbiota is crucial for health, but the virome, dominated by bacteriophages, is understudied.
- Technical challenges in viral DNA detection limit understanding of the infant gut virome.
- Existing methods struggle with low-input infant fecal samples.
Purpose of the Study:
- To optimize a polyethylene glycol (PEG)-based protocol for phage DNA enrichment from infant fecal samples.
- To maximize viral yield from minimal input material for robust virome profiling.
- To assess the impact of phage enrichment on infant gut virome composition.
Main Methods:
- Developed and optimized a PEG-based protocol for phage DNA enrichment.
- Validated the protocol on fecal samples from 41 infants at 1, 6, and 12 months.
- Analyzed the impact of enrichment on observed gut phageome composition.
Main Results:
- The optimized protocol significantly improves viral DNA recovery from infant samples.
- Phage enrichment alters virome composition, particularly in older infants.
- Key infant gut virome features are underrepresented or missed without proper enrichment.
Conclusions:
- Protocol optimization is critical for accurate and comprehensive infant virome studies.
- The developed method provides a scalable and cost-effective solution for infant gut virome profiling.
- This work overcomes longstanding methodological challenges in studying the infant virome.
Abstract:
The human gut microbiota, particularly during infancy, plays a pivotal role in shaping long-term health outcomes. While research on the bacterial microbiota has advanced rapidly, the infant gut virome-dominated by bacteriophages-remains underexplored due to technical challenges in viral DNA detection and recovery. To address this, we optimized a polyethylene glycol (PEG)-based protocol for phage DNA enrichment tailored to the constraints of infant fecal samples, focusing on maximizing viral yield from minimal input material. We validated the optimized protocol on fecal samples from 41 infants at 1, 6, and 12 months of age and assessed the impact of phage enrichment on the observed gut phageome. The results demonstrate that the optimized protocol improves viral DNA recovery and significantly alters the observed virome composition, especially in older infants. Without appropriate enrichment, key features of the gut virome may be underrepresented or missed entirely. These findings underscore the importance of protocol optimization in virome studies and provide a scalable, cost-effective method for robust infant gut virome profiling.IMPORTANCEUnderstanding the viral component of the infant gut microbiome is essential for uncovering its role in early-life health, yet technical limitations have hindered its study. This work presents a systematically optimized and validated protocol for enriching viral DNA from infant stool samples, designed specifically for low-input material typical of early life. By adapting polyethylene glycol-based precipitation methods, we achieved consistent and scalable recovery of viral DNA across infants of different ages. Application of this protocol revealed key age- and delivery mode-specific differences in phage diversity and replication strategies that were undetectable using standard approaches. Our findings demonstrate that careful protocol optimization is critical for accurate virome profiling in infants and offer a practical solution to overcome longstanding methodological challenges in the field.
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