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Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species

Aridity shapes species distributions and plant growth and function worldwide. Yet, plant traits often show complex relationships with aridity, challenging our understanding of aridity as a driver of evolutionary adaptation. We grew nine genotypes of Eucalyptus camaldulensis subsp. camaldulensis sour...

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Autores principales: Aspinwall, Michael J., Blackman, Chris J., Maier, Chelsea, Tjoelker, Mark G., Rymer, Paul D., Creek, Danielle, Chieppa, Jeff, Griffin‐Nolan, Robert J., Tissue, David T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10243541/
https://www.ncbi.nlm.nih.gov/pubmed/37288162
http://dx.doi.org/10.1002/pei3.10102
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author Aspinwall, Michael J.
Blackman, Chris J.
Maier, Chelsea
Tjoelker, Mark G.
Rymer, Paul D.
Creek, Danielle
Chieppa, Jeff
Griffin‐Nolan, Robert J.
Tissue, David T.
author_facet Aspinwall, Michael J.
Blackman, Chris J.
Maier, Chelsea
Tjoelker, Mark G.
Rymer, Paul D.
Creek, Danielle
Chieppa, Jeff
Griffin‐Nolan, Robert J.
Tissue, David T.
author_sort Aspinwall, Michael J.
collection PubMed
description Aridity shapes species distributions and plant growth and function worldwide. Yet, plant traits often show complex relationships with aridity, challenging our understanding of aridity as a driver of evolutionary adaptation. We grew nine genotypes of Eucalyptus camaldulensis subsp. camaldulensis sourced from an aridity gradient together in the field for ~650 days under low and high precipitation treatments. Eucalyptus camaldulesis is considered a phreatophyte (deep‐rooted species that utilizes groundwater), so we hypothesized that genotypes from more arid environments would show lower aboveground productivity, higher leaf gas‐exchange rates, and greater tolerance/avoidance of dry surface soils (indicated by lower responsiveness) than genotypes from less arid environments. Aridity predicted genotype responses to precipitation, with more arid genotypes showing lower responsiveness to reduced precipitation and dry surface conditions than less arid genotypes. Under low precipitation, genotype net photosynthesis and stomatal conductance increased with home‐climate aridity. Across treatments, genotype intrinsic water‐use efficiency and osmotic potential declined with increasing aridity while photosynthetic capacity (Rubisco carboxylation and RuBP regeneration) increased with aridity. The observed clinal patterns indicate that E. camaldulensis genotypes from extremely arid environments possess a unique strategy defined by lower responsiveness to dry surface soils, low water‐use efficiency, and high photosynthetic capacity. This strategy could be underpinned by deep rooting and could be adaptive under arid conditions where heat avoidance is critical and water demand is high.
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spelling pubmed-102435412023-06-07 Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species Aspinwall, Michael J. Blackman, Chris J. Maier, Chelsea Tjoelker, Mark G. Rymer, Paul D. Creek, Danielle Chieppa, Jeff Griffin‐Nolan, Robert J. Tissue, David T. Plant Environ Interact Research Articles Aridity shapes species distributions and plant growth and function worldwide. Yet, plant traits often show complex relationships with aridity, challenging our understanding of aridity as a driver of evolutionary adaptation. We grew nine genotypes of Eucalyptus camaldulensis subsp. camaldulensis sourced from an aridity gradient together in the field for ~650 days under low and high precipitation treatments. Eucalyptus camaldulesis is considered a phreatophyte (deep‐rooted species that utilizes groundwater), so we hypothesized that genotypes from more arid environments would show lower aboveground productivity, higher leaf gas‐exchange rates, and greater tolerance/avoidance of dry surface soils (indicated by lower responsiveness) than genotypes from less arid environments. Aridity predicted genotype responses to precipitation, with more arid genotypes showing lower responsiveness to reduced precipitation and dry surface conditions than less arid genotypes. Under low precipitation, genotype net photosynthesis and stomatal conductance increased with home‐climate aridity. Across treatments, genotype intrinsic water‐use efficiency and osmotic potential declined with increasing aridity while photosynthetic capacity (Rubisco carboxylation and RuBP regeneration) increased with aridity. The observed clinal patterns indicate that E. camaldulensis genotypes from extremely arid environments possess a unique strategy defined by lower responsiveness to dry surface soils, low water‐use efficiency, and high photosynthetic capacity. This strategy could be underpinned by deep rooting and could be adaptive under arid conditions where heat avoidance is critical and water demand is high. John Wiley and Sons Inc. 2023-03-17 /pmc/articles/PMC10243541/ /pubmed/37288162 http://dx.doi.org/10.1002/pei3.10102 Text en © 2023 The Authors. Plant‐Environment Interactions published by New Phytologist Foundation and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://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 Articles
Aspinwall, Michael J.
Blackman, Chris J.
Maier, Chelsea
Tjoelker, Mark G.
Rymer, Paul D.
Creek, Danielle
Chieppa, Jeff
Griffin‐Nolan, Robert J.
Tissue, David T.
Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species
title Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species
title_full Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species
title_fullStr Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species
title_full_unstemmed Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species
title_short Aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed Australian tree species
title_sort aridity drives clinal patterns in leaf traits and responsiveness to precipitation in a broadly distributed australian tree species
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10243541/
https://www.ncbi.nlm.nih.gov/pubmed/37288162
http://dx.doi.org/10.1002/pei3.10102
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