The University of Southampton
University of Southampton Institutional Repository

Global oceanic diazotroph database version 2 and elevated estimate of global oceanic N$_2$ fixation

Global oceanic diazotroph database version 2 and elevated estimate of global oceanic N$_2$ fixation
Global oceanic diazotroph database version 2 and elevated estimate of global oceanic N$_2$ fixation
Marine diazotrophs convert dinitrogen (N2) gas into bioavailable nitrogen (N), supporting life in the global ocean. In 2012, the first version of the global oceanic diazotroph database (version 1) was published. Here, we present an updated version of the database (version 2), significantly increasing the number of in situ diazotrophic measurements from 13 565 to 55 286. Data points for N2 fixation rates, diazotrophic cell abundance, and nifH gene copy abundance have increased by 184 %, 86 %, and 809 %, respectively. Version 2 includes two new data sheets for the nifH gene copy abundance of non-cyanobacterial diazotrophs and cell-specific N2 fixation rates. The measurements of N2 fixation rates approximately follow a log-normal distribution in both version 1 and version 2. However, version 2 considerably extends both the left and right tails of the distribution. Consequently, when estimating global oceanic N2 fixation rates using the geometric means of different ocean basins, version 1 and version 2 yield similar rates (43–57 versus 45–63 Tg N yr−1; ranges based on one geometric standard error). In contrast, when using arithmetic means, version 2 suggests a significantly higher rate of 223±30 Tg N yr−1 (mean ± standard error; same hereafter) compared to version 1 (74±7 Tg N yr−1). Specifically, substantial rate increases are estimated for the South Pacific Ocean (88±23 versus 20±2 Tg N yr−1), primarily driven by measurements in the southwestern subtropics, and for the North Atlantic Ocean (40±9 versus 10±2 Tg N yr−1). Moreover, version 2 estimates the N2 fixation rate in the Indian Ocean to be 35±14 Tg N yr−1, which could not be estimated using version 1 due to limited data availability. Furthermore, a comparison of N2 fixation rates obtained through different measurement methods at the same months, locations, and depths reveals that the conventional 15N2 bubble method yields lower rates in 69 % cases compared to the new 15N2 dissolution method. This updated version of the database can facilitate future studies in marine ecology and biogeochemistry. The database is stored at the Figshare repository (https://doi.org/10.6084/m9.figshare.21677687; Shao et al., 2022).
1866-3516
3673-3709
Shao, Z.
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Xu, Y.
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Wang, H.
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Luo, W.
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Wang, L.
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Huang, Y.
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Agawin, N.S.R.
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Ahmed, A.
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Benavides, M.
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Bentzon-Tilia, M.
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Berman-Frank, I.
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Berthelot, H.
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Campbell, L.
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Capone, D.G.
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Cassar, N.
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Chang, B.X.
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Chappell, D.
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Chen, Y.-L.
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Church, M.J.
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Fernandez, C.
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Hörstmann, C.
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Jayakumar, A.
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Kumar, S.
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LaRoche, J.
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Liu, H.
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Liu, J.
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Lory, C.
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Löscher, C.R.
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Marañón, E.
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Messer, L.F.
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Mills, M.M.
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Mulholland, M.R.
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Nakaoka, S.
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Reeder, C.F.
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Riemann, L.
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Riou, V.
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Sato, T.
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Shiozaki, T.
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Tan, Y.
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Tang, W.
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Tremblay, J.-É.
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Zhang, Y.
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Shao, Z.
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Wang, H.
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Luo, W.
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Wang, L.
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Huang, Y.
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Agawin, N.S.R.
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Ahmed, A.
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Hörstmann, C.
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Löscher, C.R.
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Mills, M.M.
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Moisander, P.H.
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Nakaoka, S.
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Rahav, E.
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Riemann, L.
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Shiozaki, T.
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Tang, W.
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Tremblay, J.-É.
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Turk-Kubo, K.
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Wen, Z.
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White, A.E.
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Yoshida, T.
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Zehr, J.P.
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Zhang, R.
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Zhang, Y.
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Luo, Y.-W.
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Shao, Z., Xu, Y., Wang, H., Luo, W., Wang, L., Huang, Y., Agawin, N.S.R., Ahmed, A., Benavides, M., Bentzon-Tilia, M., Berman-Frank, I., Berthelot, H., Biegala, I.C., Bif, M.B., Bode, A., Bonnet, S., Bronk, D.A., Brown, M.V., Campbell, L., Capone, D.G., Carpenter, E.J., Cassar, N., Chang, B.X., Chappell, D., Chen, Y.-L., Church, M.J., Cornejo-Castillo, F.M., Detoni, A.M.S., Doney, S.C., Dupouy, C., Estrada, M., Fernandez, C., Fernández-Castro, B., Fonseca-Batista, D., Foster, R.A., Furuya, K., Garcia, N., Goto, K., Gago, J., Gradoville, M.R., Hamersley, M.R., Henke, B.A., Hörstmann, C., Jayakumar, A., Jiang, Z., Kao, S.-J., Karl, D.M., Kittu, L.R., Knapp, A.N., Kumar, S., LaRoche, J., Liu, H., Liu, J., Lory, C., Löscher, C.R., Marañón, E., Messer, L.F., Mills, M.M., Mohr, W., Moisander, P.H., Mahaffey, C., Moore, R., Mouriño-Carballido, B., Mulholland, M.R., Nakaoka, S., Needoba, J.A., Raes, E.J., Rahav, E., Ramírez-Cárdenas, T., Reeder, C.F., Riemann, L., Riou, V., Robidart, J.C., Sarma, V.V.S.S., Sato, T., Saxena, H., Selden, C., Seymour, J.R., Shi, D., Shiozaki, T., Singh, A., Sipler, R.E., Sun, J., Suzuki, K., Takahashi, K., Tan, Y., Tang, W., Tremblay, J.-É., Turk-Kubo, K., Wen, Z., White, A.E., Wilson, S.T., Yoshida, T., Zehr, J.P., Zhang, R., Zhang, Y. and Luo, Y.-W. (2023) Global oceanic diazotroph database version 2 and elevated estimate of global oceanic N$_2$ fixation. Earth System Science Data, 15 (8), 3673-3709. (doi:10.5194/essd-15-3673-2023).

Record type: Article

Abstract

Marine diazotrophs convert dinitrogen (N2) gas into bioavailable nitrogen (N), supporting life in the global ocean. In 2012, the first version of the global oceanic diazotroph database (version 1) was published. Here, we present an updated version of the database (version 2), significantly increasing the number of in situ diazotrophic measurements from 13 565 to 55 286. Data points for N2 fixation rates, diazotrophic cell abundance, and nifH gene copy abundance have increased by 184 %, 86 %, and 809 %, respectively. Version 2 includes two new data sheets for the nifH gene copy abundance of non-cyanobacterial diazotrophs and cell-specific N2 fixation rates. The measurements of N2 fixation rates approximately follow a log-normal distribution in both version 1 and version 2. However, version 2 considerably extends both the left and right tails of the distribution. Consequently, when estimating global oceanic N2 fixation rates using the geometric means of different ocean basins, version 1 and version 2 yield similar rates (43–57 versus 45–63 Tg N yr−1; ranges based on one geometric standard error). In contrast, when using arithmetic means, version 2 suggests a significantly higher rate of 223±30 Tg N yr−1 (mean ± standard error; same hereafter) compared to version 1 (74±7 Tg N yr−1). Specifically, substantial rate increases are estimated for the South Pacific Ocean (88±23 versus 20±2 Tg N yr−1), primarily driven by measurements in the southwestern subtropics, and for the North Atlantic Ocean (40±9 versus 10±2 Tg N yr−1). Moreover, version 2 estimates the N2 fixation rate in the Indian Ocean to be 35±14 Tg N yr−1, which could not be estimated using version 1 due to limited data availability. Furthermore, a comparison of N2 fixation rates obtained through different measurement methods at the same months, locations, and depths reveals that the conventional 15N2 bubble method yields lower rates in 69 % cases compared to the new 15N2 dissolution method. This updated version of the database can facilitate future studies in marine ecology and biogeochemistry. The database is stored at the Figshare repository (https://doi.org/10.6084/m9.figshare.21677687; Shao et al., 2022).

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Accepted/In Press date: 1 July 2023
e-pub ahead of print date: 15 August 2023
Published date: 15 August 2023
Additional Information: Funding Information: This research has been supported by the National Natural Science Foundation of China (grant nos. 41890802 and 42076153). Individual authors were also supported by other awards. Publisher Copyright: © 2023 Copernicus GmbH. All rights reserved.

Identifiers

Local EPrints ID: 481957
URI: http://eprints.soton.ac.uk/id/eprint/481957
ISSN: 1866-3516
PURE UUID: a4e0e503-bbbd-4c58-b6dd-9d0e1c813771
ORCID for B. Fernández-Castro: ORCID iD orcid.org/0000-0001-7797-854X

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Date deposited: 14 Sep 2023 16:34
Last modified: 12 Nov 2024 03:05

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Contributors

Author: Z. Shao
Author: Y. Xu
Author: H. Wang
Author: W. Luo
Author: L. Wang
Author: Y. Huang
Author: N.S.R. Agawin
Author: A. Ahmed
Author: M. Benavides
Author: M. Bentzon-Tilia
Author: I. Berman-Frank
Author: H. Berthelot
Author: I.C. Biegala
Author: M.B. Bif
Author: A. Bode
Author: S. Bonnet
Author: D.A. Bronk
Author: M.V. Brown
Author: L. Campbell
Author: D.G. Capone
Author: E.J. Carpenter
Author: N. Cassar
Author: B.X. Chang
Author: D. Chappell
Author: Y.-L. Chen
Author: M.J. Church
Author: F.M. Cornejo-Castillo
Author: A.M.S. Detoni
Author: S.C. Doney
Author: C. Dupouy
Author: M. Estrada
Author: C. Fernandez
Author: D. Fonseca-Batista
Author: R.A. Foster
Author: K. Furuya
Author: N. Garcia
Author: K. Goto
Author: J. Gago
Author: M.R. Gradoville
Author: M.R. Hamersley
Author: B.A. Henke
Author: C. Hörstmann
Author: A. Jayakumar
Author: Z. Jiang
Author: S.-J. Kao
Author: D.M. Karl
Author: L.R. Kittu
Author: A.N. Knapp
Author: S. Kumar
Author: J. LaRoche
Author: H. Liu
Author: J. Liu
Author: C. Lory
Author: C.R. Löscher
Author: E. Marañón
Author: L.F. Messer
Author: M.M. Mills
Author: W. Mohr
Author: P.H. Moisander
Author: C. Mahaffey
Author: R. Moore
Author: B. Mouriño-Carballido
Author: M.R. Mulholland
Author: S. Nakaoka
Author: J.A. Needoba
Author: E.J. Raes
Author: E. Rahav
Author: T. Ramírez-Cárdenas
Author: C.F. Reeder
Author: L. Riemann
Author: V. Riou
Author: J.C. Robidart
Author: V.V.S.S. Sarma
Author: T. Sato
Author: H. Saxena
Author: C. Selden
Author: J.R. Seymour
Author: D. Shi
Author: T. Shiozaki
Author: A. Singh
Author: R.E. Sipler
Author: J. Sun
Author: K. Suzuki
Author: K. Takahashi
Author: Y. Tan
Author: W. Tang
Author: J.-É. Tremblay
Author: K. Turk-Kubo
Author: Z. Wen
Author: A.E. White
Author: S.T. Wilson
Author: T. Yoshida
Author: J.P. Zehr
Author: R. Zhang
Author: Y. Zhang
Author: Y.-W. Luo

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