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Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches

Interpreting phloem carbohydrate or xylem tissue carbon isotopic composition as measures of water‐use efficiency or past tree productivity requires in‐depth knowledge of the factors altering the isotopic composition within the pathway from ambient air to phloem contents and tree ring. One of least u...

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Autores principales: Schiestl‐Aalto, Pauliina, Stangl, Zsofia R., Tarvainen, Lasse, Wallin, Göran, Marshall, John, Mäkelä, Annikki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7986199/
https://www.ncbi.nlm.nih.gov/pubmed/33222199
http://dx.doi.org/10.1111/nph.17094
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author Schiestl‐Aalto, Pauliina
Stangl, Zsofia R.
Tarvainen, Lasse
Wallin, Göran
Marshall, John
Mäkelä, Annikki
author_facet Schiestl‐Aalto, Pauliina
Stangl, Zsofia R.
Tarvainen, Lasse
Wallin, Göran
Marshall, John
Mäkelä, Annikki
author_sort Schiestl‐Aalto, Pauliina
collection PubMed
description Interpreting phloem carbohydrate or xylem tissue carbon isotopic composition as measures of water‐use efficiency or past tree productivity requires in‐depth knowledge of the factors altering the isotopic composition within the pathway from ambient air to phloem contents and tree ring. One of least understood of these factors is mesophyll conductance (g (m)). We formulated a dynamic model describing the leaf photosynthetic pathway including seven alternative g (m) descriptions and a simple transport of sugars from foliage down the trunk. We parameterised the model for a boreal Scots pine stand and compared simulated g (m) responses with weather variations. We further compared the simulated δ(13)C of new photosynthates among the different g (m) descriptions and against measured phloem sugar δ(13)C. Simulated g (m) estimates of the seven descriptions varied according to weather conditions, resulting in varying estimates of phloem δ(13)C during cold/moist and warm/dry periods. The model succeeded in predicting a drought response and a postdrought release in phloem sugar δ(13)C indicating suitability of the model for inverse prediction of leaf processes from phloem isotopic composition. We suggest short‐interval phloem sampling during and after extreme weather conditions to distinguish between mesophyll conductance drivers for future model development.
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spelling pubmed-79861992021-03-25 Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches Schiestl‐Aalto, Pauliina Stangl, Zsofia R. Tarvainen, Lasse Wallin, Göran Marshall, John Mäkelä, Annikki New Phytol Research Interpreting phloem carbohydrate or xylem tissue carbon isotopic composition as measures of water‐use efficiency or past tree productivity requires in‐depth knowledge of the factors altering the isotopic composition within the pathway from ambient air to phloem contents and tree ring. One of least understood of these factors is mesophyll conductance (g (m)). We formulated a dynamic model describing the leaf photosynthetic pathway including seven alternative g (m) descriptions and a simple transport of sugars from foliage down the trunk. We parameterised the model for a boreal Scots pine stand and compared simulated g (m) responses with weather variations. We further compared the simulated δ(13)C of new photosynthates among the different g (m) descriptions and against measured phloem sugar δ(13)C. Simulated g (m) estimates of the seven descriptions varied according to weather conditions, resulting in varying estimates of phloem δ(13)C during cold/moist and warm/dry periods. The model succeeded in predicting a drought response and a postdrought release in phloem sugar δ(13)C indicating suitability of the model for inverse prediction of leaf processes from phloem isotopic composition. We suggest short‐interval phloem sampling during and after extreme weather conditions to distinguish between mesophyll conductance drivers for future model development. John Wiley and Sons Inc. 2020-12-19 2021-03 /pmc/articles/PMC7986199/ /pubmed/33222199 http://dx.doi.org/10.1111/nph.17094 Text en © 2020 The Authors. New Phytologist © 2020 New Phytologist Trust This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Schiestl‐Aalto, Pauliina
Stangl, Zsofia R.
Tarvainen, Lasse
Wallin, Göran
Marshall, John
Mäkelä, Annikki
Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches
title Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches
title_full Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches
title_fullStr Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches
title_full_unstemmed Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches
title_short Linking canopy‐scale mesophyll conductance and phloem sugar δ(13)C using empirical and modelling approaches
title_sort linking canopy‐scale mesophyll conductance and phloem sugar δ(13)c using empirical and modelling approaches
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7986199/
https://www.ncbi.nlm.nih.gov/pubmed/33222199
http://dx.doi.org/10.1111/nph.17094
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