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Revising the nitrogen cycle in the Peruvian oxygen minimum zone

  • Phyllis Lam
  • , Gaute Lavik
  • , Marlene M. Jensen
  • , Jack De Van Vossenberg
  • , Markus Schmid
  • , Dagmar Woebken
  • , Dimitri Gutiérrez
  • , Rudolf Amann
  • , Mike S.M. Jetten
  • , Marcel M.M. Kuypers
  • Max Planck Institute for Marine Microbiology (MPIMM)
  • University of Vienna
  • Radboud University
  • Stanford University
  • Direcció N de Investigaciones Oceanográ Ficas, Instituto Del Mar Del Perú (IMARPE)

Research output: Contribution to journalArticlepeer-review

658 Scopus citations

Abstract

The oxygen minimum zone (OMZ) of the Eastern Tropical South Pacific (ETSP) is 1 of the 3 major regions in the world where oceanic nitrogen is lost in the pelagic realm. The recent identification of anammox, instead of denitrification, as the likely prevalent pathway for nitrogen loss in this OMZ raises strong questions about our understanding of nitrogen cycling and organic matter remineralization in these waters. Without detectable denitrification, it is unclear how NH 4 + is remineralized from organic matter and sustains anammox or how secondary NO 2 - maxima arise within the OMZ. Here we show that in the ETSP-OMZ, anammox obtains 67% or more of NO 2 - from nitrate reduction, and 33% or less from aerobic ammonia oxidation, based on stable-isotope pairing experiments corroborated by functional gene expression analyses. Dissimila- tory nitrate reduction to ammonium was detected in an open- ocean setting. It occurred throughout the OMZ and could satisfy a substantial part of the NH 4 - requirement for anammox. The remaining NH 4 - came from remineralization via nitrate reduction and probably from microaerobic respiration. Altogether, deep-sea NO 3 - accounted for only ∼50% of the nitrogen loss in the ETSP, rather than 100% as commonly assumed. Because oceanic OMZs seem to be expanding because of global climate change, it is increasingly imperative to incorporate the correct nitrogen-loss pathways in global biogeochemical models to predict more accurately how the nitrogen cycle in our future ocean may respond.

Original languageEnglish
Pages (from-to)4752-4757
Number of pages6
JournalProceedings of the National Academy of Sciences of the United States of America
Volume106
Issue number12
DOIs
StatePublished - 24 Mar 2009
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 13 - Climate Action
    SDG 13 Climate Action

Keywords

  • Anammox
  • Dissimilatory nitrate reduction to ammonium
  • Nitrogen loss functional gene expression
  • Remineralization

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