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Functional biogeography of marine microbial heterotrophs

  • Emily J. Zakem
  • , Jesse McNichol
  • , J. L. Weissman
  • , Yubin Raut
  • , Liang Xu
  • , Elisa R. Halewood
  • , Craig A. Carlson
  • , Stephanie Dutkiewicz
  • , Jed A. Fuhrman
  • , Naomi M. Levine
  • Carnegie Institution of Washington
  • Saint Francis Xavier University
  • University of Southern California
  • Massachusetts Institute of Technology
  • University of California at Santa Barbara

Research output: Contribution to journalArticlepeer-review

16 Scopus citations

Abstract

Heterotrophic bacteria and archaea (“heteroprokaryotes”) drive global carbon cycling, but how to quantitatively organize their functional complexity remains unclear. We generated a global-scale understanding of marine heteroprokaryotic functional biogeography by synthesizing genetic sequencing data with a mechanistic marine ecosystem model. We incorporated heteroprokaryotic diversity into the trait-based model along two axes: substrate lability and growth strategy. Using genetic sequences along three ocean transects, we compiled 21 heteroprokaryotic guilds and estimated their degree of optimization for rapid growth (copiotrophy). Data and model consistency indicated that gradients in grazing and substrate lability predominantly set biogeographical patterns, and we identified deep-ocean “slow copiotrophs” whose ecological interactions control the surface accumulation of dissolved organic carbon.

Original languageEnglish
Article numbereado5323
JournalScience
Volume388
Issue number6749
DOIs
StatePublished - May 22 2025

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