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Deconvolving mechanisms of particle flux attenuation using nitrogen isotope analyses of amino acids

Paul K. Wojtal; Shannon C. Doherty; Connor H. Shea; Brian N. Popp; Claudia R. Benitez‐Nelson; Ken O. Buesseler; Margaret L. Estapa; Montserrat Roca‐Martí; Hilary G. Close
Limnology and Oceanography · Vol. 68, Issue 9 · pp. 1965-1981 · 2023

Abstract

Particulate organic matter settling out of the euphotic zone is a major sink for atmospheric carbon dioxide and serves as a primary food source to mesopelagic food webs. Degradation of this organic matter encompasses a suite of mechanisms that attenuate flux, including heterotrophic metabolic processes of microbes and metazoans. The relative contributions of microbial and metazoan heterotrophy to flux attenuation, however, have been difficult to determine. We present results of compound specific nitrogen isotope analysis of amino acids of sinking particles from sediment traps and size‐fractionated particles from in situ filtration between the surface and 500 m at Ocean Station Papa, collected during NASA EXPORTS (EXport Processes in the Ocean from RemoTe Sensing). With increasing depth, we observe: (1) that, based on the δ 15 N values of threonine, fecal pellets dominate the sinking particle flux and that attenuation of downward particle flux occurs largely via disaggregation in the upper mesopelagic; (2) an increasing trophic position of particles in the upper water column, reflecting increasing heterotrophic contributions to the nitrogen pool and the loss of particles via remineralization; and (3) increasing δ 15 N values of source amino acids in submicron and small (1–6 μ m) particles, reflecting microbial particle solubilization. We further employ a Bayesian mixing model to estimate the relative proportions of fecal pellets, phytodetritus, and microbially degraded material in particles and compare these results and our interpretations of flux attenuation mechanisms to other, independent methods used during EXPORTS.

Bibliographic Information

JournalLimnology and Oceanography
PublisherWiley
Publication Date2023-09-01
Publication Year2023
Volume68
Issue9
Pages1965-1981
Document TypeJournal Article
Print ISSN0024-3590
eISSN1939-5590
DOI10.1002/lno.12398
SubjectAquatic Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://aslopubs.onlinelibrary.wiley.com/loi/19395590
Publisher PageOpen Publisher Page
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