Iron limitation of heterotrophic bacteria in the California Current System tracks relative availability of organic carbon and iron

Author:

Manck Lauren E123,Coale Tyler H4256,Stephens Brandon M127,Forsch Kiefer O12,Aluwihare Lihini I12,Dupont Christopher L689,Allen Andrew E426,Barbeau Katherine A12

Affiliation:

1. Geosciences Research Division , Scripps Institution of Oceanography, , La Jolla, CA 92093 , United States

2. University of California San Diego , Scripps Institution of Oceanography, , La Jolla, CA 92093 , United States

3. Flathead Lake Biological Station, University of Montana , Polson, MT 59860 , United States

4. Integrative Oceanography Division , Scripps Institution of Oceanography, , La Jolla, CA 92093 , United States

5. Ocean Sciences Department, University of California Santa Cruz , Santa Cruz, CA 95064 , United States

6. Department of Environment and Sustainability, J. Craig Venter Institute , La Jolla, CA 92037 , United States

7. Institute of Oceanography, National Taiwan University , Taipei, 106 , Taiwan

8. Department of Human Health, J. Craig Venter Institute , La Jolla, CA 92037 , United States

9. Department of Synthetic Biology, J. Craig Venter Institute , La Jolla, CA 92037 , United States

Abstract

Abstract Iron is an essential nutrient for all microorganisms of the marine environment. Iron limitation of primary production has been well documented across a significant portion of the global surface ocean, but much less is known regarding the potential for iron limitation of the marine heterotrophic microbial community. In this work, we characterize the transcriptomic response of the heterotrophic bacterial community to iron additions in the California Current System, an eastern boundary upwelling system, to detect in situ iron stress of heterotrophic bacteria. Changes in gene expression in response to iron availability by heterotrophic bacteria were detected under conditions of high productivity when carbon limitation was relieved but when iron availability remained low. The ratio of particulate organic carbon to dissolved iron emerged as a biogeochemical proxy for iron limitation of heterotrophic bacteria in this system. Iron stress was characterized by high expression levels of iron transport pathways and decreased expression of iron-containing enzymes involved in carbon metabolism, where a majority of the heterotrophic bacterial iron requirement resides. Expression of iron stress biomarkers, as identified in the iron-addition experiments, was also detected insitu. These results suggest iron availability will impact the processing of organic matter by heterotrophic bacteria with potential consequences for the marine biological carbon pump.

Funder

NSF

Simons Postdoctoral Fellowship in Marine Microbial Ecology

Simons Collaboration on Principles of Microbial Ecosystems

Publisher

Oxford University Press (OUP)

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