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Complex marine microbial communities partition metabolism of scarce resources over the diel cycle

Authors :
Daniel Muratore
Angela K. Boysen
Matthew J. Harke
Kevin W. Becker
John R. Casey
Sacha N. Coesel
Daniel R. Mende
Samuel T. Wilson
Frank O. Aylward
John M. Eppley
Alice Vislova
Shengyun Peng
Rogelio A. Rodriguez-Gonzalez
Stephen J. Beckett
E. Virginia Armbrust
Edward F. DeLong
David M. Karl
Angelicque E. White
Jonathan P. Zehr
Benjamin A. S. Van Mooy
Sonya T. Dyhrman
Anitra E. Ingalls
Joshua S. Weitz
Source :
Nature Ecology & Evolution. 6:218-229
Publication Year :
2022
Publisher :
Springer Science and Business Media LLC, 2022.

Abstract

Complex assemblages of microbes in the surface ocean are responsible for approximately half of global carbon fixation. The persistence of high taxonomic diversity despite competition for a small suite of relatively homogeneously distributed nutrients, that is, 'the paradox of the plankton', represents a long-standing challenge for ecological theory. Here we find evidence consistent with temporal niche partitioning of nitrogen assimilation processes over a diel cycle in the North Pacific Subtropical Gyre. We jointly analysed transcript abundances, lipids and metabolites and discovered that a small number of diel archetypes can explain pervasive periodic dynamics. Metabolic pathway analysis of identified diel signals revealed asynchronous timing in the transcription of nitrogen uptake and assimilation genes among different microbial groups-cyanobacteria, heterotrophic bacteria and eukaryotes. This temporal niche partitioning of nitrogen uptake emerged despite synchronous transcription of photosynthesis and central carbon metabolism genes and associated macromolecular abundances. Temporal niche partitioning may be a mechanism by which microorganisms in the open ocean mitigate competition for scarce resources, supporting community coexistence.

Details

ISSN :
2397334X
Volume :
6
Database :
OpenAIRE
Journal :
Nature Ecology & Evolution
Accession number :
edsair.doi.dedup.....03fadb8076bfa3c3c4e1ee7b1a9ed96b