Literature DB >> 35545448

Rapid evolution and strain turnover in the infant gut microbiome.

Daisy W Chen1,2, Nandita R Garud3,4.   

Abstract

Although the ecological dynamics of the infant gut microbiome have been intensely studied, relatively little is known about evolutionary dynamics in the infant gut microbiome. Here we analyze longitudinal fecal metagenomic data from more than 700 infants and their mothers over the first year of life and find that the evolutionary dynamics in infant gut microbiomes are distinct from those of adults. We find evidence for more than a 10-fold increase in the rate of evolution and strain turnover in the infant gut compared with healthy adults, with the mother-infant transition at delivery being a particularly dynamic period in which gene loss dominates. Within a few months after birth, these dynamics stabilize, and gene gains become increasingly frequent as the microbiome matures. We furthermore find that evolutionary changes in infants show signatures of being seeded by a mixture of de novo mutations and transmissions of pre-evolved lineages from the broader family. Several of these evolutionary changes occur in parallel across infants, highlighting candidate genes that may play important roles in the development of the infant gut microbiome. Our results point to a picture of a volatile infant gut microbiome characterized by rapid evolutionary and ecological change in the early days of life.
© 2022 Chen and Garud; Published by Cold Spring Harbor Laboratory Press.

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Year:  2022        PMID: 35545448      PMCID: PMC9248880          DOI: 10.1101/gr.276306.121

Source DB:  PubMed          Journal:  Genome Res        ISSN: 1088-9051            Impact factor:   9.438


  78 in total

1.  Ecology drives a global network of gene exchange connecting the human microbiome.

Authors:  Chris S Smillie; Mark B Smith; Jonathan Friedman; Otto X Cordero; Lawrence A David; Eric J Alm
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2.  Tracking microbial evolution in the human gut using Hi-C reveals extensive horizontal gene transfer, persistence and adaptation.

Authors:  Eitan Yaffe; David A Relman
Journal:  Nat Microbiol       Date:  2019-12-23       Impact factor: 17.745

Review 3.  Evolution of the gut microbiome in infancy within an ecological context.

Authors:  Sharon M Donovan
Journal:  Curr Opin Clin Nutr Metab Care       Date:  2020-05       Impact factor: 4.294

4.  Antibiotics, birth mode, and diet shape microbiome maturation during early life.

Authors:  Nicholas A Bokulich; Jennifer Chung; Thomas Battaglia; Nora Henderson; Melanie Jay; Huilin Li; Arnon D Lieber; Fen Wu; Guillermo I Perez-Perez; Yu Chen; William Schweizer; Xuhui Zheng; Monica Contreras; Maria Gloria Dominguez-Bello; Martin J Blaser
Journal:  Sci Transl Med       Date:  2016-06-15       Impact factor: 17.956

5.  Delivery mode shapes the acquisition and structure of the initial microbiota across multiple body habitats in newborns.

Authors:  Maria G Dominguez-Bello; Elizabeth K Costello; Monica Contreras; Magda Magris; Glida Hidalgo; Noah Fierer; Rob Knight
Journal:  Proc Natl Acad Sci U S A       Date:  2010-06-21       Impact factor: 11.205

6.  Host remodeling of the gut microbiome and metabolic changes during pregnancy.

Authors:  Omry Koren; Julia K Goodrich; Tyler C Cullender; Aymé Spor; Kirsi Laitinen; Helene Kling Bäckhed; Antonio Gonzalez; Jeffrey J Werner; Largus T Angenent; Rob Knight; Fredrik Bäckhed; Erika Isolauri; Seppo Salminen; Ruth E Ley
Journal:  Cell       Date:  2012-08-03       Impact factor: 41.582

7.  Metagenomic analysis with strain-level resolution reveals fine-scale variation in the human pregnancy microbiome.

Authors:  Daniela S Aliaga Goltsman; Christine L Sun; Diana M Proctor; Daniel B DiGiulio; Anna Robaczewska; Brian C Thomas; Gary M Shaw; David K Stevenson; Susan P Holmes; Jillian F Banfield; David A Relman
Journal:  Genome Res       Date:  2018-09-19       Impact factor: 9.043

8.  Microevolutionary analysis of Clostridium difficile genomes to investigate transmission.

Authors:  Xavier Didelot; David W Eyre; Madeleine Cule; Camilla L C Ip; M Azim Ansari; David Griffiths; Alison Vaughan; Lily O'Connor; Tanya Golubchik; Elizabeth M Batty; Paolo Piazza; Daniel J Wilson; Rory Bowden; Peter J Donnelly; Kate E Dingle; Mark Wilcox; A Sarah Walker; Derrick W Crook; Tim E A Peto; Rosalind M Harding
Journal:  Genome Biol       Date:  2012-12-21       Impact factor: 13.583

9.  Characterization of GH2 and GH42 β-galactosidases derived from bifidobacterial infant isolates.

Authors:  Valentina Ambrogi; Francesca Bottacini; Joyce O'Sullivan; Mary O'Connell Motherway; Cao Linqiu; Barry Schoemaker; Margriet Schoterman; Douwe van Sinderen
Journal:  AMB Express       Date:  2019-01-19       Impact factor: 3.298

10.  Temporal development of the gut microbiome in early childhood from the TEDDY study.

Authors:  Christopher J Stewart; Nadim J Ajami; Jacqueline L O'Brien; Diane S Hutchinson; Daniel P Smith; Matthew C Wong; Matthew C Ross; Richard E Lloyd; HarshaVardhan Doddapaneni; Ginger A Metcalf; Donna Muzny; Richard A Gibbs; Tommi Vatanen; Curtis Huttenhower; Ramnik J Xavier; Marian Rewers; William Hagopian; Jorma Toppari; Anette-G Ziegler; Jin-Xiong She; Beena Akolkar; Ake Lernmark; Heikki Hyoty; Kendra Vehik; Jeffrey P Krischer; Joseph F Petrosino
Journal:  Nature       Date:  2018-10-24       Impact factor: 69.504

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  1 in total

1.  A longitudinal study of dominant E. coli lineages and antimicrobial resistance in the gut of children living in an upper middle-income country.

Authors:  Diana Calderón; Paúl A Cárdenas; Belen Prado-Vivar; Jay P Graham; Gabriel Trueba
Journal:  J Glob Antimicrob Resist       Date:  2022-03-10       Impact factor: 4.349

  1 in total

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