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Dynamics of Baltic Sea phages driven by environmental changes
Linnaeus University, Faculty of Health and Life Sciences, Department of Biology and Environmental Science. (Ctr Ecol & Evolut Microbial Model Syst EEMiS)ORCID iD: 0000-0002-1932-6479
Linnaeus University, Faculty of Health and Life Sciences, Department of Biology and Environmental Science. (Ctr Ecol & Evolut Microbial Model Syst EEMiS)ORCID iD: 0000-0001-5103-214x
Linnaeus University, Faculty of Health and Life Sciences, Department of Biology and Environmental Science. (Ctr Ecol & Evolut Microbial Model Syst EEMiS)
Linnaeus University, Faculty of Health and Life Sciences, Department of Biology and Environmental Science. (Ctr Ecol & Evolut Microbial Model Syst EEMiS)
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2021 (English)In: Environmental Microbiology, ISSN 1462-2912, E-ISSN 1462-2920, Vol. 23, no 8, p. 4576-4594Article in journal (Refereed) Published
Abstract [en]

Phage predation constitutes a major mortality factor for bacteria in aquatic ecosystems, and thus, directly impacts nutrient cycling and microbial community dynamics. Yet, the population dynamics of specific phages across time scales from days to months remain largely unexplored, which limits our understanding of their influence on microbial succession. To investigate temporal changes in diversity and abundance of phages infecting particular host strains, we isolated 121 phage strains that infected three bacterial hosts during a Baltic Sea mesocosm experiment. Genome analysis revealed a novel Flavobacterium phage genus harboring gene sets putatively coding for synthesis of modified nucleotides and glycosylation of bacterial cell surface components. Another novel phage genus revealed a microdiversity of phage species that was largely maintained during the experiment and across mesocosms amended with different nutrients. In contrast to the newly described Flavobacterium phages, phages isolated from a Rheinheimera strain were highly similar to previously isolated genotypes, pointing to genomic consistency in this population. In the mesocosm experiment, the investigated phages were mainly detected after a phytoplankton bloom peak. This concurred with recurrent detection of the phages in the Baltic Proper during summer months, suggesting an influence on the succession of heterotrophic bacteria associated with phytoplankton blooms.

Place, publisher, year, edition, pages
John Wiley & Sons, 2021. Vol. 23, no 8, p. 4576-4594
National Category
Microbiology Ecology
Research subject
Ecology, Microbiology
Identifiers
URN: urn:nbn:se:lnu:diva-105944DOI: 10.1111/1462-2920.15651ISI: 000670193900001PubMedID: 34190387Scopus ID: 2-s2.0-85109126442Local ID: 2021OAI: oai:DiVA.org:lnu-105944DiVA, id: diva2:1580830
Available from: 2021-07-16 Created: 2021-07-16 Last updated: 2023-02-14Bibliographically approved

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Hötzinger, MatthiasNilsson, EmelieOsbeck, Christofer M. G.Pontiller, BenjaminLundin, DanielPinhassi, JaroneHolmfeldt, Karin

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Hötzinger, MatthiasNilsson, EmelieOsbeck, Christofer M. G.Pontiller, BenjaminLundin, DanielPinhassi, JaroneHolmfeldt, Karin
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