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dc.contributor.authorMoran, Xose Anxelu G.-
dc.contributor.authorAlonso-Saez, Laura-
dc.contributor.authorNogueira, Enrique-
dc.contributor.authorGonzalez, Natalia-
dc.contributor.authorLopez-Urrutia, Angel-
dc.contributor.authorCalvo-Diaz, Alejandra-
dc.contributor.authorArandia-Gorostidi, Nestor-
dc.contributor.authorHuete-Stauffer, Tamara M.-
dc.contributor.authorDucklow, Hugh W.-
dc.contributor.authorDiaz-Perez, Laura-
dc.date.accessioned2017-08-23T08:52:09Z-
dc.date.available2017-08-23T08:52:09Z-
dc.date.issued2015-
dc.identifierISI:000357719500011-
dc.identifier.issn0962-8452-
dc.identifier.urihttp://dspace.azti.es/handle/24689/230-
dc.description.abstractHeterotrophic bacteria play a major role in organic matter cycling in the ocean. Although the high abundances and relatively fast growth rates of coastal surface bacterioplankton make them suitable sentinels of global change, past analyses have largely overlooked this functional group. Here, time series analysis of a decade of monthly observations in temperate Atlantic coastal waters revealed strong seasonal patterns in the abundance, size and biomass of the ubiquitous flow-cytometric groups of low (LNA) and high nucleic acid (HNA) content bacteria. Over this relatively short period, we also found that bacterioplankton cells were significantly smaller, a trend that is consistent with the hypothesized temperature-driven decrease in body size. Although decadal cell shrinking was observed for both groups, it was only LNA cells that were strongly coherent, with ecological theories linking temperature, abundance and individual size on both the seasonal and interannual scale. We explain this finding because, relative to their HNA counterparts, marine LNA bacteria are less diverse, dominated by members of the SAR11 clade. Temperature manipulation experiments in 2012 confirmed a direct effect of warming on bacterial size. Concurrent with rising temperatures in spring, significant decadal trends of increasing standing stocks (3\% per year) accompanied by decreasing mean cell size (-1\% per year) suggest a major shift in community structure, with a larger contribution of LNA bacteria to total biomass. The increasing prevalence of these typically oli-gotrophic taxa may severely impact marine food webs and carbon fluxes by an overall decrease in the efficiency of the biological pump.-
dc.description.sponsorshipThis work was supported by the time series programme RADIALES from the Spanish Institute of Oceanography (IEO) and the research grant `Coastal Ocean MIcrobial communities and TEmperature' (COMITE, CTM2010-15840) funded by the Spanish Ministry of Science and Innovation.-
dc.language.isoeng-
dc.publisherROYAL SOC-
dc.subjectbacterioplankton-
dc.subjecttime series-
dc.subjecttemperature-size relationships-
dc.subjectglobal warming-
dc.subjectlong-term trends-
dc.subjectAtlantic Ocean-
dc.subjectNUCLEIC-ACID BACTERIOPLANKTON-
dc.subjectCLIMATE-CHANGE-
dc.subjectBODY-SIZE-
dc.subjectAQUATIC ECOSYSTEMS-
dc.subjectSEASONAL DYNAMICS-
dc.subjectFLOW-CYTOMETRY-
dc.subjectGROWTH-RATES-
dc.subjectTIME-SERIES-
dc.subjectTEMPERATURE-
dc.subjectATLANTIC-
dc.titleMore, smaller bacteria in response to ocean's warming?-
dc.typeArticle-
dc.identifier.journalPROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES-
dc.format.volume282-
dc.contributor.funderSpanish Institute of Oceanography (IEO)-
dc.contributor.funderSpanish Ministry of Science and Innovation \[CTM2010-15840]-
dc.identifier.e-issn1471-2954-
dc.identifier.doi10.1098/rspb.2015.0371-
Aparece en las tipos de publicación: Artículos científicos



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