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Published on: January 27, 2019
Beyond bacteria: a study of the enteric microbial consortium in extremely low birth weight infants
Mariam Susan LaTuga1, Joseph Christopher Ellis, Charles Michael Cotton
1Department of Pediatrics, Albert Einstein College of Medicine, New York, New York, United States of America.
Insights
The gut microbiome of extremely low birth weight (ELBW) infants shows surprising fungal and viral diversity, including parasites. This complex microbial community may increase infection risk in these vulnerable infants.
Area of Science:
- Microbiology
- Neonatal Research
- Gastroenterology
Background:
- Extremely low birth weight (ELBW) infants face high risks of infection and mortality, often from invasive pathogens.
- The gastrointestinal microbiome of preterm infants is poorly understood but may harbor reservoirs for these pathogens.
- Characterizing the full spectrum of microbes, including eukaryotes and viruses, is crucial for understanding ELBW infant health.
Purpose of the Study:
- To comprehensively analyze the gut microbiome of extremely low birth weight (ELBW) infants.
- To identify bacterial, fungal, viral, and parasitic components of the ELBW infant gut microbiota.
- To investigate the diversity and potential implications of these microbial communities for infant health.
Main Methods:
- Deep pyrosequencing of bacterial, fungal, and viral ribosomal DNA from fecal samples of 11 ELBW infants.
- Shotgun sequencing of total fecal genomic DNA from two infants for metagenomic analysis.
- Analysis of microbial community diversity using the Shannon-Weaver Index.
Main Results:
- The bacterial community in ELBW infants was of low diversity, dominated by potentially invasive taxa like Enterobacteriales, Pseudomonas, Staphylococcus, and Enterococcus.
- Fungal sequences, primarily Candida sp. and Clavispora sp., along with environmental molds, were identified.
- Surprisingly, 71% of samples contained sequences for the parasite Trichinella, sometimes with the roundworm symbiont Xenorhabdus.
- Viral sequences, including bacteriophages and human adenovirus C, were also detected.
Conclusions:
- The gut microbiota of ELBW infants exhibits unexpected eukaryotic (fungal, parasitic) and viral diversity.
- The identified bacterial taxa are known to cause invasive infections in this vulnerable population.
- These findings highlight the complex microbial landscape in ELBW infants and suggest potential links to increased infection risk.
Abstract:
Extremely low birth weight (ELBW) infants have high morbidity and mortality, frequently due to invasive infections from bacteria, fungi, and viruses. The microbial communities present in the gastrointestinal tracts of preterm infants may serve as a reservoir for invasive organisms and remain poorly characterized. We used deep pyrosequencing to examine the gut-associated microbiome of 11 ELBW infants in the first postnatal month, with a first time determination of the eukaryote microbiota such as fungi and nematodes, including bacteria and viruses that have not been previously described. Among the fungi observed, Candida sp. and Clavispora sp. dominated the sequences, but a range of environmental molds were also observed. Surprisingly, seventy-one percent of the infant fecal samples tested contained ribosomal sequences corresponding to the parasitic organism Trichinella. Ribosomal DNA sequences for the roundworm symbiont Xenorhabdus accompanied these sequences in the infant with the greatest proportion of Trichinella sequences. When examining ribosomal DNA sequences in aggregate, Enterobacteriales, Pseudomonas, Staphylococcus, and Enterococcus were the most abundant bacterial taxa in a low diversity bacterial community (mean Shannon-Weaver Index of 1.02 ± 0.69), with relatively little change within individual infants through time. To supplement the ribosomal sequence data, shotgun sequencing was performed on DNA from multiple displacement amplification (MDA) of total fecal genomic DNA from two infants. In addition to the organisms mentioned previously, the metagenome also revealed sequences for gram positive and gram negative bacteriophages, as well as human adenovirus C. Together, these data reveal surprising eukaryotic and viral microbial diversity in ELBW enteric microbiota dominated bytypes of bacteria known to cause invasive disease in these infants.
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