Literature DB >> 29710420

Partitioning of the net CO2 exchange using an automated chamber system reveals plant phenology as key control of production and respiration fluxes in a boreal peatland.

Järvi Järveoja1, Mats B Nilsson1, Michal Gažovič1, Patrick M Crill2,3, Matthias Peichl1.   

Abstract

The net ecosystem CO2 exchange (NEE) drives the carbon (C) sink-source strength of northern peatlands. Since NEE represents a balance between various production and respiration fluxes, accurate predictions of its response to global changes require an in depth understanding of these underlying processes. Currently, however, detailed information of the temporal dynamics as well as the separate biotic and abiotic controls of the NEE component fluxes is lacking in peatland ecosystems. In this study, we address this knowledge gap by using an automated chamber system established across natural and trenching/vegetation removal plots to partition NEE into its production (i.e., gross and net primary production; GPP and NPP) and respiration (i.e., ecosystem, heterotrophic and autotrophic respiration; ER, Rh and Ra) fluxes in a boreal peatland in northern Sweden. Our results showed that daily NEE patterns were driven by GPP while variations in ER were governed by Ra rather than Rh. Moreover, we observed pronounced seasonal shifts in the Ra/Rh and above/belowground NPP ratios throughout the main phenological phases. Generalized linear model analysis revealed that the greenness index derived from digital images (as a proxy for plant phenology) was the strongest control of NEE, GPP and NPP while explaining considerable fractions also in the variations of ER and Ra. In addition, our data exposed greater temperature sensitivity of NPP compared to Rh resulting in enhanced C sequestration with increasing temperature. Overall, our study suggests that the temporal patterns in NEE and its component fluxes are tightly coupled to vegetation dynamics in boreal peatlands and thus challenges previous studies that commonly identify abiotic factors as key drivers. These findings further emphasize the need for integrating detailed information on plant phenology into process-based models to improve predictions of global change impacts on the peatland C cycle.
© 2018 John Wiley & Sons Ltd.

Entities:  

Keywords:  autotrophic and heterotrophic respiration; biotic and abiotic controls; boreal fen; carbon dioxide; climate change; flux partitioning; gross and net primary production; vegetation phenology

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Year:  2018        PMID: 29710420     DOI: 10.1111/gcb.14292

Source DB:  PubMed          Journal:  Glob Chang Biol        ISSN: 1354-1013            Impact factor:   10.863


  2 in total

1.  Bimodal diel pattern in peatland ecosystem respiration rebuts uniform temperature response.

Authors:  Järvi Järveoja; Mats B Nilsson; Patrick M Crill; Matthias Peichl
Journal:  Nat Commun       Date:  2020-08-26       Impact factor: 14.919

2.  COSORE: A community database for continuous soil respiration and other soil-atmosphere greenhouse gas flux data.

Authors:  Ben Bond-Lamberty; Danielle S Christianson; Avni Malhotra; Stephanie C Pennington; Debjani Sihi; Amir AghaKouchak; Hassan Anjileli; M Altaf Arain; Juan J Armesto; Samaneh Ashraf; Mioko Ataka; Dennis Baldocchi; Thomas Andrew Black; Nina Buchmann; Mariah S Carbone; Shih-Chieh Chang; Patrick Crill; Peter S Curtis; Eric A Davidson; Ankur R Desai; John E Drake; Tarek S El-Madany; Michael Gavazzi; Carolyn-Monika Görres; Christopher M Gough; Michael Goulden; Jillian Gregg; Omar Gutiérrez Del Arroyo; Jin-Sheng He; Takashi Hirano; Anya Hopple; Holly Hughes; Järvi Järveoja; Rachhpal Jassal; Jinshi Jian; Haiming Kan; Jason Kaye; Yuji Kominami; Naishen Liang; David Lipson; Catriona A Macdonald; Kadmiel Maseyk; Kayla Mathes; Marguerite Mauritz; Melanie A Mayes; Steve McNulty; Guofang Miao; Mirco Migliavacca; Scott Miller; Chelcy F Miniat; Jennifer G Nietz; Mats B Nilsson; Asko Noormets; Hamidreza Norouzi; Christine S O'Connell; Bruce Osborne; Cecilio Oyonarte; Zhuo Pang; Matthias Peichl; Elise Pendall; Jorge F Perez-Quezada; Claire L Phillips; Richard P Phillips; James W Raich; Alexandre A Renchon; Nadine K Ruehr; Enrique P Sánchez-Cañete; Matthew Saunders; Kathleen E Savage; Marion Schrumpf; Russell L Scott; Ulli Seibt; Whendee L Silver; Wu Sun; Daphne Szutu; Kentaro Takagi; Masahiro Takagi; Munemasa Teramoto; Mark G Tjoelker; Susan Trumbore; Masahito Ueyama; Rodrigo Vargas; Ruth K Varner; Joseph Verfaillie; Christoph Vogel; Jinsong Wang; Greg Winston; Tana E Wood; Juying Wu; Thomas Wutzler; Jiye Zeng; Tianshan Zha; Quan Zhang; Junliang Zou
Journal:  Glob Chang Biol       Date:  2020-10-07       Impact factor: 10.863

  2 in total

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