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Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners

The members of the genus Picea form a dominant component in many alpine and boreal forests which are the major sink for atmospheric CO(2). However, little is known about the growth response and acclimation of CO(2) exchange characteristics to high temperature stress in Picea taxa from different alti...

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Autores principales: Zhang, Xiao Wei, Wang, Jing Ru, Ji, Ming Fei, Milne, Richard Ian, Wang, Ming Hao, Liu, Jian-Quan, Shi, Sheng, Yang, Shu-Li, Zhao, Chang-Ming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4395334/
https://www.ncbi.nlm.nih.gov/pubmed/25874631
http://dx.doi.org/10.1371/journal.pone.0123248
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author Zhang, Xiao Wei
Wang, Jing Ru
Ji, Ming Fei
Milne, Richard Ian
Wang, Ming Hao
Liu, Jian-Quan
Shi, Sheng
Yang, Shu-Li
Zhao, Chang-Ming
author_facet Zhang, Xiao Wei
Wang, Jing Ru
Ji, Ming Fei
Milne, Richard Ian
Wang, Ming Hao
Liu, Jian-Quan
Shi, Sheng
Yang, Shu-Li
Zhao, Chang-Ming
author_sort Zhang, Xiao Wei
collection PubMed
description The members of the genus Picea form a dominant component in many alpine and boreal forests which are the major sink for atmospheric CO(2). However, little is known about the growth response and acclimation of CO(2) exchange characteristics to high temperature stress in Picea taxa from different altitudes. Gas exchange parameters and growth characteristics were recorded from four year old seedlings of two alpine (Picea likiangensis vars. rubescens and linzhiensis) and two lowland (P. koraiensis and P. meyeri) taxa. Seedlings were grown at moderate (25°C/15°C) and high (35°C/25°C) day/night temperatures, for four months. The approximated biomass increment (ΔD(2)H) for all taxa decreased under high temperature stress, associated with decreased photosynthesis and increased respiration. However, the two alpine taxa exhibited lower photosynthetic acclimation and higher respiratory acclimation than either lowland taxon. Moreover, higher leaf dry mass per unit area (LMA) and leaf nitrogen content per unit area (N(area)), and a smaller change in the nitrogen use efficiency of photosynthesis (PNUE) for lowland taxa indicated that these maintained higher homeostasis of photosynthesis than alpine taxa. The higher respiration rates produced more energy for repair and maintenance biomass, especially for higher photosynthetic activity for lowland taxa, which causes lower respiratory acclimation. Thus, the changes of ΔD(2)H for alpine spruces were larger than that for lowland spruces. These results indicate that long term heat stress negatively impact on the growth of Picea seedlings, and alpine taxa are more affected than low altitude ones by high temperature stress. Hence the altitude ranges of Picea taxa should be taken into account when predicting changes to carbon fluxes in warmer conditions.
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spelling pubmed-43953342015-04-21 Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners Zhang, Xiao Wei Wang, Jing Ru Ji, Ming Fei Milne, Richard Ian Wang, Ming Hao Liu, Jian-Quan Shi, Sheng Yang, Shu-Li Zhao, Chang-Ming PLoS One Research Article The members of the genus Picea form a dominant component in many alpine and boreal forests which are the major sink for atmospheric CO(2). However, little is known about the growth response and acclimation of CO(2) exchange characteristics to high temperature stress in Picea taxa from different altitudes. Gas exchange parameters and growth characteristics were recorded from four year old seedlings of two alpine (Picea likiangensis vars. rubescens and linzhiensis) and two lowland (P. koraiensis and P. meyeri) taxa. Seedlings were grown at moderate (25°C/15°C) and high (35°C/25°C) day/night temperatures, for four months. The approximated biomass increment (ΔD(2)H) for all taxa decreased under high temperature stress, associated with decreased photosynthesis and increased respiration. However, the two alpine taxa exhibited lower photosynthetic acclimation and higher respiratory acclimation than either lowland taxon. Moreover, higher leaf dry mass per unit area (LMA) and leaf nitrogen content per unit area (N(area)), and a smaller change in the nitrogen use efficiency of photosynthesis (PNUE) for lowland taxa indicated that these maintained higher homeostasis of photosynthesis than alpine taxa. The higher respiration rates produced more energy for repair and maintenance biomass, especially for higher photosynthetic activity for lowland taxa, which causes lower respiratory acclimation. Thus, the changes of ΔD(2)H for alpine spruces were larger than that for lowland spruces. These results indicate that long term heat stress negatively impact on the growth of Picea seedlings, and alpine taxa are more affected than low altitude ones by high temperature stress. Hence the altitude ranges of Picea taxa should be taken into account when predicting changes to carbon fluxes in warmer conditions. Public Library of Science 2015-04-13 /pmc/articles/PMC4395334/ /pubmed/25874631 http://dx.doi.org/10.1371/journal.pone.0123248 Text en © 2015 Zhang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Zhang, Xiao Wei
Wang, Jing Ru
Ji, Ming Fei
Milne, Richard Ian
Wang, Ming Hao
Liu, Jian-Quan
Shi, Sheng
Yang, Shu-Li
Zhao, Chang-Ming
Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners
title Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners
title_full Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners
title_fullStr Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners
title_full_unstemmed Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners
title_short Higher Thermal Acclimation Potential of Respiration but Not Photosynthesis in Two Alpine Picea Taxa in Contrast to Two Lowland Congeners
title_sort higher thermal acclimation potential of respiration but not photosynthesis in two alpine picea taxa in contrast to two lowland congeners
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4395334/
https://www.ncbi.nlm.nih.gov/pubmed/25874631
http://dx.doi.org/10.1371/journal.pone.0123248
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