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The native microbiome of the nematode Caenorhabditis elegans: gateway to a new host-microbiome model

Overview of attention for article published in BMC Biology, May 2016
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Title
The native microbiome of the nematode Caenorhabditis elegans: gateway to a new host-microbiome model
Published in
BMC Biology, May 2016
DOI 10.1186/s12915-016-0258-1
Pubmed ID
Authors

Philipp Dirksen, Sarah Arnaud Marsh, Ines Braker, Nele Heitland, Sophia Wagner, Rania Nakad, Sebastian Mader, Carola Petersen, Vienna Kowallik, Philip Rosenstiel, Marie-Anne Félix, Hinrich Schulenburg

Abstract

Host-microbe associations underlie many key processes of host development, immunity, and life history. Yet, none of the current research on the central model species Caenorhabditis elegans considers the worm's natural microbiome. Instead, almost all laboratories exclusively use the canonical strain N2 and derived mutants, maintained through routine bleach sterilization in monoxenic cultures with an E. coli strain as food. Here, we characterize for the first time the native microbiome of C. elegans and assess its influence on nematode life history characteristics. Nematodes sampled directly from their native habitats carry a species-rich bacterial community, dominated by Proteobacteria such as Enterobacteriaceae and members of the genera Pseudomonas, Stenotrophomonas, Ochrobactrum, and Sphingomonas. The C. elegans microbiome is distinct from that of the worm's natural environment and the congeneric species C. remanei. Exposure to a derived experimental microbiome revealed that bacterial composition is influenced by host developmental stage and genotype. These experiments also showed that the microbes enhance host fitness under standard and also stressful conditions (e.g., high temperature and either low or high osmolarity). Taking advantage of the nematode's transparency, we further demonstrate that several Proteobacteria are able to enter the C. elegans gut and that an Ochrobactrum isolate even seems to be able to persist in the intestines under stressful conditions. Moreover, three Pseudomonas isolates produce an anti-fungal effect in vitro which we show can contribute to the worm's defense against fungal pathogens in vivo. This first systematic analysis of the nematode's native microbiome reveals a species-rich bacterial community to be associated with C. elegans, which is likely of central importance for our understanding of the worm's biology. The information acquired and the microbial isolates now available for experimental work establishes C. elegans as a tractable model for the in-depth dissection of host-microbiome interactions.

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Geographical breakdown

Country Count As %
United Kingdom 1 <1%
Chile 1 <1%
United States 1 <1%
Thailand 1 <1%
Unknown 437 99%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 95 22%
Student > Bachelor 61 14%
Researcher 52 12%
Student > Master 52 12%
Student > Doctoral Student 27 6%
Other 61 14%
Unknown 93 21%
Readers by discipline Count As %
Agricultural and Biological Sciences 129 29%
Biochemistry, Genetics and Molecular Biology 127 29%
Immunology and Microbiology 37 8%
Environmental Science 10 2%
Neuroscience 7 2%
Other 30 7%
Unknown 101 23%