Characterization of the first alginolytic operons in a marine bacterium: from their emergence in marine Flavobacteriia to their independent transfers to marine Proteobacteria and human gut Bacteroides
François Thomas
1
,
Tristan BARBEYRON
2
,
Thierry Tonon
2
,
Sabine Genicot
2
,
M. Czjzek
2
,
Gurvan Michel
2
2
CNRS, UMR 7139 Marine Plants and Biomolecules, Station Biologique de Roscoff, F-29682 Roscoff, Brittany, France
|
Тип публикации: Journal Article
Дата публикации: 2012-04-19
scimago Q1
wos Q2
БС1
SJR: 1.345
CiteScore: 10.8
Impact factor: 4.0
ISSN: 14622912, 14622920
PubMed ID:
22513138
Microbiology
Ecology, Evolution, Behavior and Systematics
Краткое описание
Alginate constitutes a significant part of seaweed biomass and thus a crucial nutrient for numerous marine heterotrophic bacteria. However, the mechanisms for alginate assimilation remain largely unknown in marine microorganisms. We show here that the genome of the marine flavobacterium Zobellia galactanivorans contains seven putative alginate lyase genes, five of them localized within two clusters comprising additional carbohydrate-related genes. The transcription of these genes and the alginolytic activity were strongly induced when Z. galactanivorans used alginate as sole carbon source. These clusters were shown to be transcribed as polycistronic mRNAs and thus to constitute operons. Several candidate enzymes were successfully overexpressed in Escherichia coli, purified and their activity tested. Particularly, AlyA1, AlyA4, AlyA5 and AlyA7 are confirmed as active alginate lyases. Zg2622 and Zg2614 are a dehydrogenase and a kinase, respectively, further converting the terminal unsaturated monosaccharides released by alginate lyases into 2-keto-3-deoxy-6-phosphogluconate. In-depth phylogenomic analyses reveal that such alginolytic operons originated from an ancestral marine flavobacterium and were independently transferred to marine proteobacteria and Japanese gut Bacteroides. These bacteria thus gained the capacity to assimilate the main polysaccharide of brown algae, an adaptive advantage in coastal environments but also in the gut microbiota of specific human population.
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Thomas F. et al. Characterization of the first alginolytic operons in a marine bacterium: from their emergence in marine Flavobacteriia to their independent transfers to marine Proteobacteria and human gut Bacteroides // Environmental Microbiology. 2012. Vol. 14. No. 9. pp. 2379-2394.
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Thomas F., BARBEYRON T., Tonon T., Genicot S., Czjzek M., Michel G. Characterization of the first alginolytic operons in a marine bacterium: from their emergence in marine Flavobacteriia to their independent transfers to marine Proteobacteria and human gut Bacteroides // Environmental Microbiology. 2012. Vol. 14. No. 9. pp. 2379-2394.
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TY - JOUR
DO - 10.1111/j.1462-2920.2012.02751.x
UR - https://doi.org/10.1111/j.1462-2920.2012.02751.x
TI - Characterization of the first alginolytic operons in a marine bacterium: from their emergence in marine Flavobacteriia to their independent transfers to marine Proteobacteria and human gut Bacteroides
T2 - Environmental Microbiology
AU - Thomas, François
AU - BARBEYRON, Tristan
AU - Tonon, Thierry
AU - Genicot, Sabine
AU - Czjzek, M.
AU - Michel, Gurvan
PY - 2012
DA - 2012/04/19
PB - Wiley
SP - 2379-2394
IS - 9
VL - 14
PMID - 22513138
SN - 1462-2912
SN - 1462-2920
ER -
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@article{2012_Thomas,
author = {François Thomas and Tristan BARBEYRON and Thierry Tonon and Sabine Genicot and M. Czjzek and Gurvan Michel},
title = {Characterization of the first alginolytic operons in a marine bacterium: from their emergence in marine Flavobacteriia to their independent transfers to marine Proteobacteria and human gut Bacteroides},
journal = {Environmental Microbiology},
year = {2012},
volume = {14},
publisher = {Wiley},
month = {apr},
url = {https://doi.org/10.1111/j.1462-2920.2012.02751.x},
number = {9},
pages = {2379--2394},
doi = {10.1111/j.1462-2920.2012.02751.x}
}
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MLA
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Thomas, François, et al. “Characterization of the first alginolytic operons in a marine bacterium: from their emergence in marine Flavobacteriia to their independent transfers to marine Proteobacteria and human gut Bacteroides.” Environmental Microbiology, vol. 14, no. 9, Apr. 2012, pp. 2379-2394. https://doi.org/10.1111/j.1462-2920.2012.02751.x.