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Siderophore-based microbial adaptations to iron scarcity across the eastern Pacific Ocean

  • Rene M. Boiteau
  • , Daniel R. Mende
  • , Nicholas J. Hawco
  • , Matthew R. McIlvin
  • , Jessica N. Fitzsimmons
  • , Mak A. Saito
  • , Peter N. Sedwick
  • , Edward F. Delong
  • , Daniel J. Repeta

Research output: Contribution to journalArticlepeer-review

Abstract

Nearly all iron dissolved in the ocean is complexed by strong organic ligands of unknown composition. The effect of ligand composition on microbial iron acquisition is poorly understood, but amendment experiments using model ligands show they can facilitate or impede iron uptake depending on their identity. Here we show that siderophores, organic compounds synthesized by microbes to facilitate iron uptake, are a dynamic component of the marine ligand pool in the eastern tropical Pacific Ocean. Siderophore concentrations in iron-deficient waters averaged 9 pM, up to fivefold higher than in iron-rich coastal and nutrient-depleted oligotrophic waters, and were dominated by amphibactins, amphiphilic siderophores with cell membrane affinity. Phylogenetic analysis of amphibactin biosynthetic genes suggests that the ability to produce amphibactins has transferred horizontally across multiple Gammaproteobacteria, potentially driven by pressures to compete for iron. In coastal and oligotrophic regions of the eastern Pacific Ocean, amphibactins were replaced with lower concentrations (1-2 pM) of hydrophilic ferrioxamine siderophores. Our results suggest that organic ligand composition changes across the surface ocean in response to environmental pressures. Hydrophilic siderophores are predominantly found across regions of the ocean where iron is not expected to be the limiting nutrient for the microbial community at large. However, in regions with intense competition for iron, some microbes optimize iron acquisition by producing siderophores that minimize diffusive losses to the environment. These siderophores affect iron bioavailability and thus may be an important component of the marine iron cycle.

Original languageEnglish (US)
Pages (from-to)14237-14242
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume113
Issue number50
DOIs
StatePublished - Dec 13 2016
Externally publishedYes

Bibliographical note

Funding Information:
We thank B. Twining and B. Bidigare for pigment community data; NASA Ocean Biology Processing Group for Moderate Resolution Imaging Spectroradiometer (MODIS) Aqua chlorophyll data (oceancolor.gsfc.nasa.gov); and C. McLean, P. Arevalo, M. Cutler, and M. Polz for assistance with selecting and growing Vibrio strains. We are grateful to chief scientists J. Moffett and C. German; G. Smith for sampling assistance; R. Bundy, L. Ouerdane, and O. Donard for valuable discussion; B. Sohst and the Oceanographic Data Facility for iron and nitrate data; and the scientists and crew of the R/V Thomas G. Thompson. Support was provided by the National Science Foundation (NSF) program in chemical oceanography (OCE-1356747, OCE-1233261, and OCE-1237034), the NSF Science and Technology Center for Microbial Oceanography Research and Education (DBI-0424599), the European Molecular Biology Organization (Long Term Fellowship ALTF 721-2015), the European Commission (LTFCOFUND2013, GA-2013-609409), the Gordon and Betty Moore Foundation (Grants GBMF3298 and GBMF3934), and the Simons Foundation Simons Collaborative on Ocean Processes and Ecology (329108).

Keywords

  • GEOTRACES
  • High nutrient low chlorophyll
  • Iron ligands
  • Marine microbes
  • Siderophores

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