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Deciphering functional redundancy in the human microbiome

delete2020-12-04
delete159
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OA
AI
L
Liang Tian
X
Xuwen Wang
A
Ang-Kun Wu
范雨航 cover
范雨航 (Yuhang Fan)
J
Jonathan Friedman
A
Amber Dahlin
M
Matthew K. Waldor
G
George M. Weinstock
S
Scott T. Weiss
Y
Yang‐Yu Liu *
DOI:10.1038/s41467-020-19940-1delete
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Abstract

Abstract

En 中文
Although the taxonomic composition of the human microbiome varies tremendously across individuals, its gene composition or functional capacity is highly conserved - implying an ecological property known as functional redundancy. Such functional redundancy has been hypothesized to underlie the stability and resilience of the human microbiome, but this hypothesis has never been quantitatively tested. The origin of functional redundancy is still elusive. Here, we investigate the basis for functional redundancy in the human microbiome by analyzing its genomic content network - a bipartite graph that links microbes to the genes in their genomes. We find that this network exhibits several topological features that favor high functional redundancy. Furthermore, we develop a simple genome evolution model to generate genomic content network, finding that moderate selection pressure and high horizontal gene transfer rate are necessary to generate genomic content networks with key topological features that favor high functional redundancy. Finally, we analyze data from two published studies of fecal microbiota transplantation (FMT), finding that high functional redundancy of the recipient's pre-FMT microbiota raises barriers to donor microbiota engraftment. This work elucidates the potential ecological and evolutionary processes that create and maintain functional redundancy in the human microbiome and contribute to its resilience. Here, the authors develop a genome evolution model to investigate the origin of functional redundancy in the human microbiome by analyzing its genomic content network and illustrate potential ecological and evolutionary processes that may contribute to its resilience.
Keywords:
GUT MICROBIOTA
RESILIENCE
DIVERSITY
STABILITY
RESOURCE
DATABASE
SUBSETS
STRAINS
GENOMES
OBESE
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Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.3W
Citations:
91.2W

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H
Harvard University
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26.5W
Papers: 22.0W
Citations: 28.7W
R
rutgers university system
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Papers: 3.7W
Citations: 53
H
Hebrew University of Jerusalem
Scholars:
2.8W
Papers: 2.3W
Citations: 2.7W
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