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CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings

White birch (Betula paperifera Mash) seedlings were exposed to progressively warming in greenhouses under ambient and elevated CO (2) concentrations for 5 months to explore boreal tree species’ potential capacity to acclimate to global climate warming and CO (2) elevation. In situ foliar gas exchang...

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Autores principales: Zhang, Shouren, Dang, Qing-Lai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: F1000Research 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3869490/
https://www.ncbi.nlm.nih.gov/pubmed/24555025
http://dx.doi.org/10.12688/f1000research.2-13.v1
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author Zhang, Shouren
Dang, Qing-Lai
author_facet Zhang, Shouren
Dang, Qing-Lai
author_sort Zhang, Shouren
collection PubMed
description White birch (Betula paperifera Mash) seedlings were exposed to progressively warming in greenhouses under ambient and elevated CO (2) concentrations for 5 months to explore boreal tree species’ potential capacity to acclimate to global climate warming and CO (2) elevation. In situ foliar gas exchange, in vivo carboxylation characteristics and chlorophyll fluorescence were measured at temperatures of 26 (o)C and 37 (o)C. Elevated CO (2) significantly increased net photosynthetic rate (Pn) at both measurement temperatures, and Pn at 37 (o)C was higher than that at 26 (o)C under elevated CO (2). Stomatal conductance (gs) was lower at 37 (o)C than at 26 (o)C, while transpiration rate (E) was higher at 37 (o)C than that at 26 (o)C. Elevated CO (2) significantly increased instantaneous water-use efficiency (WUE) at both 26 (o)C and 37 (o)C, but WUE was markedly enhanced at 37 (o)C under elevated CO (2). The effect of temperature on maximal carboxylation rate (Vcmax), PAR-saturated electron transport rate (Jmax) and triose phosphate utilization (TPU) varied with CO (2,) and the Vcmax and Jmax were significantly higher at 37 (o)C than at 26 (o)C under elevated CO (2). However, there were no significant interactive effects of CO (2) and temperature on TPU. The actual photochemical efficiency of PSII (DF/ Fm’), total photosynthetic linear electron transport rate through PSII (JT) and the partitioning of JT to carboxylation (Jc) were higher at 37 (o)C than at 26 (o)C under elevated CO (2). Elevated CO (2) significantly suppressed the partitioning of JT to oxygenation (Jo/JT). The data suggest that the CO (2) elevation and progressive warming greatly enhanced photosynthesis in white birch seedlings in an interactive fashion.
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spelling pubmed-38694902013-12-27 CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings Zhang, Shouren Dang, Qing-Lai F1000Res Research Article White birch (Betula paperifera Mash) seedlings were exposed to progressively warming in greenhouses under ambient and elevated CO (2) concentrations for 5 months to explore boreal tree species’ potential capacity to acclimate to global climate warming and CO (2) elevation. In situ foliar gas exchange, in vivo carboxylation characteristics and chlorophyll fluorescence were measured at temperatures of 26 (o)C and 37 (o)C. Elevated CO (2) significantly increased net photosynthetic rate (Pn) at both measurement temperatures, and Pn at 37 (o)C was higher than that at 26 (o)C under elevated CO (2). Stomatal conductance (gs) was lower at 37 (o)C than at 26 (o)C, while transpiration rate (E) was higher at 37 (o)C than that at 26 (o)C. Elevated CO (2) significantly increased instantaneous water-use efficiency (WUE) at both 26 (o)C and 37 (o)C, but WUE was markedly enhanced at 37 (o)C under elevated CO (2). The effect of temperature on maximal carboxylation rate (Vcmax), PAR-saturated electron transport rate (Jmax) and triose phosphate utilization (TPU) varied with CO (2,) and the Vcmax and Jmax were significantly higher at 37 (o)C than at 26 (o)C under elevated CO (2). However, there were no significant interactive effects of CO (2) and temperature on TPU. The actual photochemical efficiency of PSII (DF/ Fm’), total photosynthetic linear electron transport rate through PSII (JT) and the partitioning of JT to carboxylation (Jc) were higher at 37 (o)C than at 26 (o)C under elevated CO (2). Elevated CO (2) significantly suppressed the partitioning of JT to oxygenation (Jo/JT). The data suggest that the CO (2) elevation and progressive warming greatly enhanced photosynthesis in white birch seedlings in an interactive fashion. F1000Research 2013-01-15 /pmc/articles/PMC3869490/ /pubmed/24555025 http://dx.doi.org/10.12688/f1000research.2-13.v1 Text en Copyright: © 2013 Zhang S et al. http://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. http://creativecommons.org/publicdomain/zero/1.0/ Data associated with the article are available under the terms of the Creative Commons Zero "No rights reserved" data waiver (CC0 1.0 Public domain dedication).
spellingShingle Research Article
Zhang, Shouren
Dang, Qing-Lai
CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings
title CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings
title_full CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings
title_fullStr CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings
title_full_unstemmed CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings
title_short CO (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings
title_sort co (2) elevation improves photosynthetic performance in progressive warming environment in white birch seedlings
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3869490/
https://www.ncbi.nlm.nih.gov/pubmed/24555025
http://dx.doi.org/10.12688/f1000research.2-13.v1
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