4.8 Article

Multi-omic interactions in the gut of children at the onset of islet autoimmunity

Journal

MICROBIOME
Volume 10, Issue 1, Pages -

Publisher

BMC
DOI: 10.1186/s40168-022-01425-6

Keywords

Gut microbiota; Microbiome; Metaproteome; Virome; Type 1 diabetes; Islet autoimmunity; Infant/child; Faecalibacterium; Mastadenovirus

Categories

Funding

  1. Juvenile Diabetes Research Foundation
  2. Children's Hospital Foundation [3-SRA-2019-730-S-B]
  3. National Health and Medical Research Council Practitioner fellowship [WIS0202018]
  4. Juvenile Diabetes Research Foundation Postdoctoral Fellowship [APP1136735]
  5. Australian Government [3-PDF-2020-940-A-N]

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The study demonstrates the interconnectedness of the gut microbiota, metaproteome, and virome in young children. A functional remodeling of the gut microbiota accompanies both islet autoimmunity and viral infection, with a switch in function in Faecalibacterium occurring at the onset of islet autoimmunity.
Background The gastrointestinal ecosystem is a highly complex environment with a profound influence on human health. Inflammation in the gut, linked to an altered gut microbiome, has been associated with the development of multiple human conditions including type 1 diabetes (T1D). Viruses infecting the gastrointestinal tract, especially enteroviruses, are also thought to play an important role in T1D pathogenesis possibly via overlapping mechanisms. However, it is not known whether the microbiome and virome act together or which risk factor may be of greater importance at the time when islet autoimmunity is initiated. Results Here, we apply an integrative approach to combine comprehensive fecal virome, microbiome, and metaproteome data sampled before and at the onset of islet autoimmunity in 40 children at increased risk of T1D. We show strong age-related effects, with microbial and metaproteome diversity increasing with age while host antibody number and abundance declined with age. Mastadenovirus, which has been associated with a reduced risk of T1D, was associated with profound changes in the metaproteome indicating a functional shift in the microbiota. Multi-omic factor analysis modeling revealed a cluster of proteins associated with carbohydrate transport from the genus Faecalibacterium were associated with islet autoimmunity. Conclusions These findings demonstrate the interrelatedness of the gut microbiota, metaproteome and virome in young children. We show a functional remodeling of the gut microbiota accompanies both islet autoimmunity and viral infection with a switch in function in Faecalibacterium occurring at the onset of islet autoimmunity.

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