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  4. Organic Matter Composition at Ocean Station Papa Affects Its Bioavailability, Bacterioplankton Growth Efficiency and the Responding Taxa
 
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Organic Matter Composition at Ocean Station Papa Affects Its Bioavailability, Bacterioplankton Growth Efficiency and the Responding Taxa

Journal
Frontiers in Marine Science
Journal Volume
7
Start Page
590273
ISSN
2296-7745
Date Issued
2020-12-10
Author(s)
BRANDON MICHAEL STEPHENS  
Opalk, Keri
Petras, Daniel
Liu, Shuting
Comstock, Jacqueline
Aluwihare, Lihini I.
Hansell, Dennis A.
Carlson, Craig A.
DOI
10.3389/fmars.2020.590273
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-85098155210&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/722468
Abstract
The bioavailability of organic matter (OM) to marine heterotrophic bacterioplankton is determined by both the chemical composition of OM and the microbial community composition. In the current study, changes in OM bioavailability were identified at Ocean Station Papa as part of the 2018 Export Processes in the Ocean from Remote Sensing (EXPORTS) field study. Removal rates of carbon (C) in controlled experiments were significantly correlated with the initial composition of total hydrolyzable amino acids, and C removal rates were high when the amino acid degradation index suggested a more labile composition. Carbon remineralization rates averaged 0.19 ± 0.08 μmol C L–1 d–1 over 6–10 days while bacterial growth efficiencies averaged 31 ± 7%. Amino acid composition and tandem mass spectrometry analysis of compound classes also revealed transformations to a more degraded OM composition during experiments. There was a log2-fold increase in the relative abundances of 16S rDNA-resolved bacterioplankton taxa in most experiments by members of the Methylophilaceae family (OM43 genus) and KI89A order. Additionally, when OM was more bioavailable, relative abundances increased by at least threefold for the classes Bacteroidetes (Flavobacteriaceae NS2b genus), Alphaproteobacteria (Rhodobacteraceae Sulfitobacter genus), and Gammaproteobacteria (Alteromonadales and Ectothiorhodospiraceae orders). Our data suggest that a diverse group of bacterioplankton was responsible for removing organic carbon and altering the OM composition to a more degraded state. Elevated community diversity, as inferred from the Shannon–Wiener H index, may have contributed to relatively high growth efficiencies by the bacterioplankton. The data presented here shed light on the interconnections between OM bioavailability and key bacterioplankton taxa for the degradation of marine OM.
Subjects
16S rDNA
alpha diversity
bacterial growth efficiency
dissolved organic matter
LC-MS/MS
Ocean Station Papa
organic matter remineralization
total hydrolyzable amino acids
SDGs

[SDGs]SDG14

Publisher
Frontiers Media SA
Type
journal article

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