Genomic variation and strain-specific functional adaptation in the human gut microbiome during early life

生物 基因组 微生物群 双歧杆菌 双歧杆菌 肠道菌群 人体微生物群 适应(眼睛) 拟杆菌 长双歧杆菌 亚种 遗传学 人体胃肠道 进化生物学 基因 细菌 动物 乳酸菌 免疫学 神经科学
作者
Tommi Vatanen,Damian R. Plichta,Juhi Somani,Philipp C. Münch,Timothy D. Arthur,A. Brantley Hall,Sabine Rudolf,Edward J. Oakeley,Xiaobo Ke,Rachel Young,Henry J. Haiser,Raivo Kolde,Moran Yassour,Kristiina Luopajärvi,Heli Siljander,Suvi Μ. Virtanen,Jorma Ilonen,Raivo Uibo,Vallo Tillmann,Sergei Mokurov,Н В Доршакова,Jeffrey A. Porter,Alice C. McHardy,Harri Lähdesmäki,Hera Vlamakis,Curtis Huttenhower,Mikael Knip,Ramnik J. Xavier
出处
期刊:Nature microbiology [Nature Portfolio]
卷期号:4 (3): 470-479 被引量:197
标识
DOI:10.1038/s41564-018-0321-5
摘要

The human gut microbiome matures towards the adult composition during the first years of life and is implicated in early immune development. Here, we investigate the effects of microbial genomic diversity on gut microbiome development using integrated early childhood data sets collected in the DIABIMMUNE study in Finland, Estonia and Russian Karelia. We show that gut microbial diversity is associated with household location and linear growth of children. Single nucleotide polymorphism- and metagenomic assembly-based strain tracking revealed large and highly dynamic microbial pangenomes, especially in the genus Bacteroides, in which we identified evidence of variability deriving from Bacteroides-targeting bacteriophages. Our analyses revealed functional consequences of strain diversity; only 10% of Finnish infants harboured Bifidobacterium longum subsp. infantis, a subspecies specialized in human milk metabolism, whereas Russian infants commonly maintained a probiotic Bifidobacterium bifidum strain in infancy. Groups of bacteria contributing to diverse, characterized metabolic pathways converged to highly subject-specific configurations over the first two years of life. This longitudinal study extends the current view of early gut microbial community assembly based on strain-level genomic variation. Integration of longitudinal gut metagenomic datasets from children in Finland, Estonia and Russian Karelia reveals high strain-level diversity, which consequently impacts the functional capabilities of the early life microbiome.
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