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Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities

Plants exhibit higher leaf-to-root ratios (L/R) and lower leaf nitrogen content (N (area)) in low-light than in high-light environments, but an ecological significance of this trait has not been explained from a whole-plant perspective. This study aimed to theoretically and experimentally demonstrat...

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Autores principales: Sugiura, Daisuke, Tateno, Masaki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3134483/
https://www.ncbi.nlm.nih.gov/pubmed/21765957
http://dx.doi.org/10.1371/journal.pone.0022236
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author Sugiura, Daisuke
Tateno, Masaki
author_facet Sugiura, Daisuke
Tateno, Masaki
author_sort Sugiura, Daisuke
collection PubMed
description Plants exhibit higher leaf-to-root ratios (L/R) and lower leaf nitrogen content (N (area)) in low-light than in high-light environments, but an ecological significance of this trait has not been explained from a whole-plant perspective. This study aimed to theoretically and experimentally demonstrate whether these observed L/R and N (area) are explained as optimal biomass allocation that maximize whole-plant relative growth rate (RGR). We developed a model which predicts optimal L/R and N (area) in response to nitrogen and light availability. In the model, net assimilation rate (NAR) was determined by light-photosynthesis curve, light availability measured during experiments, and leaf temperature affecting the photosynthesis and leaf dark respiration rate in high and low-light environments. Two pioneer trees, Morus bombycis and Acer buergerianum, were grown in various light and nitrogen availabilities in an experimental garden and used for parameterizing and testing the model predictions. They were grouped into four treatment groups (relative photosynthetic photon flux density, RPPFD 100% or 10%×nitrogen-rich or nitrogen-poor conditions) and grown in an experimental garden for 60 to 100 days. The model predicted that optimal L/R is higher and N (area) is lower in low-light than high-light environments when compared in the same soil nitrogen availability. Observed L/R and N (area) of the two pioneer trees were close to the predicted optimums. From the model predictions and pot experiments, we conclude that the pioneer trees, M. bombycis and A. buergerianum, regulated L/R and N (area) to maximize RGR in response to nitrogen and light availability.
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spelling pubmed-31344832011-07-15 Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities Sugiura, Daisuke Tateno, Masaki PLoS One Research Article Plants exhibit higher leaf-to-root ratios (L/R) and lower leaf nitrogen content (N (area)) in low-light than in high-light environments, but an ecological significance of this trait has not been explained from a whole-plant perspective. This study aimed to theoretically and experimentally demonstrate whether these observed L/R and N (area) are explained as optimal biomass allocation that maximize whole-plant relative growth rate (RGR). We developed a model which predicts optimal L/R and N (area) in response to nitrogen and light availability. In the model, net assimilation rate (NAR) was determined by light-photosynthesis curve, light availability measured during experiments, and leaf temperature affecting the photosynthesis and leaf dark respiration rate in high and low-light environments. Two pioneer trees, Morus bombycis and Acer buergerianum, were grown in various light and nitrogen availabilities in an experimental garden and used for parameterizing and testing the model predictions. They were grouped into four treatment groups (relative photosynthetic photon flux density, RPPFD 100% or 10%×nitrogen-rich or nitrogen-poor conditions) and grown in an experimental garden for 60 to 100 days. The model predicted that optimal L/R is higher and N (area) is lower in low-light than high-light environments when compared in the same soil nitrogen availability. Observed L/R and N (area) of the two pioneer trees were close to the predicted optimums. From the model predictions and pot experiments, we conclude that the pioneer trees, M. bombycis and A. buergerianum, regulated L/R and N (area) to maximize RGR in response to nitrogen and light availability. Public Library of Science 2011-07-12 /pmc/articles/PMC3134483/ /pubmed/21765957 http://dx.doi.org/10.1371/journal.pone.0022236 Text en Sugiura, Tateno. 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
Sugiura, Daisuke
Tateno, Masaki
Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities
title Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities
title_full Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities
title_fullStr Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities
title_full_unstemmed Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities
title_short Optimal Leaf-to-Root Ratio and Leaf Nitrogen Content Determined by Light and Nitrogen Availabilities
title_sort optimal leaf-to-root ratio and leaf nitrogen content determined by light and nitrogen availabilities
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3134483/
https://www.ncbi.nlm.nih.gov/pubmed/21765957
http://dx.doi.org/10.1371/journal.pone.0022236
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