Literature DB >> 17080602

Spatial and temporal scaling of intercellular CO2 concentration in a temperate rain forest dominated by Dacrydium cupressinum in New Zealand.

David T Tissue1, Margaret M Barbour, John E Hunt, Matthew H Turnbull, Kevin L Griffin, Adrian S Walcroft, David Whitehead.   

Abstract

Seven methods, including measurements of photosynthesis (A) and stomatal conductance (g(s)), carbon isotope discrimination, ecosystem CO2 and water vapour exchange using eddy covariance and the use of a multilayer canopy model and ecosystem Keeling plots, were employed to derive estimates of intercellular CO2 concentration (Ci) across a range of spatial and temporal scales in a low productivity rain forest ecosystem dominated by the conifer Dacrydium cupressinum Lamb. in New Zealand. Estimates of shoot and canopy Ci across temporal scales ranging from minutes to years were remarkably similar (range of 274-294 micromol mol(-1)). The gradual increase in shoot Ci with depth in the canopy was more likely attributable to decreases in A resulting from lower irradiance (Q) than to increases in g, due to changes in air saturation deficit (D). The lack of marked vertical gradients in A and g(s) at saturating Q through the canopy and the low seasonal variability in environmental conditions contributed to the efficacy of scaling Ci. However, the canopy Ci estimate calculated from the carbon isotope composition of respired ecosystem CO2 (delta13CR; 236 micromol mol(-1)) was much lower than other estimates of canopy Ci. Partitioning delta13CR into four components (soil, roots, litter and foliage) indicated root respiration as the dominant (> 50%) contributor to delta13CR. Variable time lags and differences in isotopic composition during photosynthesis and respiration make the direct estimation of canopy Ci from delta 13CR problematic.

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Year:  2006        PMID: 17080602     DOI: 10.1111/j.1365-3040.2005.01427.x

Source DB:  PubMed          Journal:  Plant Cell Environ        ISSN: 0140-7791            Impact factor:   7.228


  1 in total

1.  On the ratio of intercellular to ambient CO2 (c i/c a) derived from ecosystem flux.

Authors:  Zheng-Hong Tan; Zhi-Xiang Wu; Alice C Hughes; Douglas Schaefer; Jiye Zeng; Guo-Yu Lan; Chuang Yang; Zhong-Liang Tao; Bang-Qian Chen; Yao-Hua Tian; Liang Song; Muhammad Tahir Jatoi; Jun-Fu Zhao; Lian-Yan Yang
Journal:  Int J Biometeorol       Date:  2017-07-13       Impact factor: 3.787

  1 in total

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