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  4. Partitioning seasonal stem carbon dioxide efflux into stem respiration, bark photosynthesis, and transport-related flux in Scots pine
 
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Partitioning seasonal stem carbon dioxide efflux into stem respiration, bark photosynthesis, and transport-related flux in Scots pine

Type
Journal article
Language
English
Date issued
2024
Author
Dukat, Paulina
Hölttä, Teemu
Oren, Ram
Salmon, Yann
Urbaniak, Marek 
Vesala, Timo
Aalto, Juho
Lintunen, Anna
Faculty
Wydział Inżynierii Środowiska i Inżynierii Mechanicznej
PBN discipline
environmental engineering, mining and energy
Journal
Journal of Experimental Botany
ISSN
0022-0957
DOI
10.1093/jxb/erae242
Web address
https://academic.oup.com/jxb/article/75/16/4944/7680161?login=true
Volume
75
Number
16
Pages from-to
4944-4959
Abstract (EN)
Stem CO2 efflux is an important component of the carbon balance in forests. The efflux is considered to principally reflect the net result of two dominating and opposing processes: stem respiration and stem photosynthesis. In addition, transport of CO2 in xylem sap is thought to play an appreciable role in affecting the net flux. This work presents an approach to partition stem CO2 efflux among these processes using sap-flux data and CO2-exchange measurements from dark and transparent chambers placed on mature Scots pine (Pinus sylvestris) trees. Seasonal changes and monthly parameters describing the studied processes were determined. Respiration contributed most to stem net CO2 flux, reaching up to 79% (considering the sum of the absolute values of stem respiration, stem photosynthesis, and flux from CO2 transported in xylem sap to be 100%) in June, when stem growth was greatest. The contribution of photosynthesis accounted for up to 13% of the stem net CO2 flux, increasing over the monitoring period. CO2 transported axially with sap flow decreased towards the end of the growing season. At a reference temperature, respiration decreased starting around midsummer, while its temperature sensitivity increased during the summer. A decline was observed for photosynthetic quantum yield around midsummer together with a decrease in light-saturation point. The proposed approach facilitates modeling net stem CO2 flux at a range of time scales.
Keywords (EN)
  • CO2 efflux

  • CO2 transport in xylem sap

  • sap flow

  • Scots pine

  • stem photosynthesis

  • stem respiration

License
cc-bycc-by CC-BY - Attribution
Open access date
May 23, 2024
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