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Respiration regimes in rivers: Partitioning source-specific respiration from metabolism time series

Publication ,  Journal Article
Bertuzzo, E; Hotchkiss, ER; Argerich, A; Kominoski, JS; Oviedo-Vargas, D; Savoy, P; Scarlett, R; von Schiller, D; Heffernan, JB
Published in: Limnology and Oceanography
November 1, 2022

Respiration in streams is controlled by the timing, magnitude, and quality of organic matter (OM) inputs from internal primary production and external fluxes. Here, we estimated the contribution of different OM sources to seasonal, annual, and event-driven characteristics of whole-stream ecosystem respiration (ER) using an inverse modeling framework that accounts for possible time-lags between OM inputs and respiration. We modeled site-specific, dynamic OM stocks contributing to ER: autochthonous OM from gross primary production (GPP); allochthonous OM delivered during flow events; and seasonal pulses of leaf litter. OM stored in the sediment and dissolved organic matter (DOM) transported during baseflow were modeled as a stable stock contributing to baseline respiration. We applied this modeling framework to five streams with different catchment size, climate, and canopy cover, where multi-year time series of ER and environmental variables were available. Overall, the model explained between 53% and 74% of observed ER dynamics. Respiration of autochthonous OM tracked seasonal peaks in GPP in spring or summer. Increases in ER were often associated with high-flow events. Respiration associated with litter inputs was larger in smaller streams. Time lags between leaf inputs and respiration were longer than for other OM sources, likely due to lower biological reactivity. Model estimates of source-specific ER and OM stocks compared well with existing measures of OM stocks, inputs, and respiration or decomposition. Our modeling approach has the potential to expand the scale of comparative analyses of OM dynamics within and among freshwater ecosystems.

Duke Scholars

Published In

Limnology and Oceanography

DOI

EISSN

1939-5590

Publication Date

November 1, 2022

Volume

67

Issue

11

Start / End Page

2374 / 2388

Related Subject Headings

  • Marine Biology & Hydrobiology
  • 41 Environmental sciences
  • 37 Earth sciences
  • 31 Biological sciences
  • 06 Biological Sciences
  • 05 Environmental Sciences
  • 04 Earth Sciences
 

Citation

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Bertuzzo, E., Hotchkiss, E. R., Argerich, A., Kominoski, J. S., Oviedo-Vargas, D., Savoy, P., … Heffernan, J. B. (2022). Respiration regimes in rivers: Partitioning source-specific respiration from metabolism time series. Limnology and Oceanography, 67(11), 2374–2388. https://doi.org/10.1002/lno.12207
Bertuzzo, E., E. R. Hotchkiss, A. Argerich, J. S. Kominoski, D. Oviedo-Vargas, P. Savoy, R. Scarlett, D. von Schiller, and J. B. Heffernan. “Respiration regimes in rivers: Partitioning source-specific respiration from metabolism time series.” Limnology and Oceanography 67, no. 11 (November 1, 2022): 2374–88. https://doi.org/10.1002/lno.12207.
Bertuzzo E, Hotchkiss ER, Argerich A, Kominoski JS, Oviedo-Vargas D, Savoy P, et al. Respiration regimes in rivers: Partitioning source-specific respiration from metabolism time series. Limnology and Oceanography. 2022 Nov 1;67(11):2374–88.
Bertuzzo, E., et al. “Respiration regimes in rivers: Partitioning source-specific respiration from metabolism time series.” Limnology and Oceanography, vol. 67, no. 11, Nov. 2022, pp. 2374–88. Scopus, doi:10.1002/lno.12207.
Bertuzzo E, Hotchkiss ER, Argerich A, Kominoski JS, Oviedo-Vargas D, Savoy P, Scarlett R, von Schiller D, Heffernan JB. Respiration regimes in rivers: Partitioning source-specific respiration from metabolism time series. Limnology and Oceanography. 2022 Nov 1;67(11):2374–2388.
Journal cover image

Published In

Limnology and Oceanography

DOI

EISSN

1939-5590

Publication Date

November 1, 2022

Volume

67

Issue

11

Start / End Page

2374 / 2388

Related Subject Headings

  • Marine Biology & Hydrobiology
  • 41 Environmental sciences
  • 37 Earth sciences
  • 31 Biological sciences
  • 06 Biological Sciences
  • 05 Environmental Sciences
  • 04 Earth Sciences