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Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light

Key aspects of leaf mitochondrial metabolism in the light remain unresolved. For example, there is debate about the relative importance of exporting reducing equivalents from mitochondria for the peroxisomal steps of photorespiration versus oxidation of NADH to generate ATP by oxidative phosphorylat...

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Autores principales: Shameer, Sanu, Ratcliffe, R. George, Sweetlove, Lee J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Plant Biologists 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6670072/
https://www.ncbi.nlm.nih.gov/pubmed/31213510
http://dx.doi.org/10.1104/pp.19.00624
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author Shameer, Sanu
Ratcliffe, R. George
Sweetlove, Lee J.
author_facet Shameer, Sanu
Ratcliffe, R. George
Sweetlove, Lee J.
author_sort Shameer, Sanu
collection PubMed
description Key aspects of leaf mitochondrial metabolism in the light remain unresolved. For example, there is debate about the relative importance of exporting reducing equivalents from mitochondria for the peroxisomal steps of photorespiration versus oxidation of NADH to generate ATP by oxidative phosphorylation. Here, we address this and explore energetic coupling between organelles in the light using a diel flux balance analysis model. The model included more than 600 reactions of central metabolism with full stoichiometric accounting of energy production and consumption. Different scenarios of energy availability (light intensity) and demand (source leaf versus a growing leaf) were considered, and the model was constrained by the nonlinear relationship between light and CO(2) assimilation rate. The analysis demonstrated that the chloroplast can theoretically generate sufficient ATP to satisfy the energy requirements of the rest of the cell in addition to its own. However, this requires unrealistic high light use efficiency and, in practice, the availability of chloroplast-derived ATP is limited by chloroplast energy dissipation systems, such as nonphotochemical quenching, and the capacity of the chloroplast ATP export shuttles. Given these limitations, substantial mitochondrial ATP synthesis is required to fulfill cytosolic ATP requirements, with only minimal, or zero, export of mitochondrial reducing equivalents. The analysis also revealed the importance of exporting reducing equivalents from chloroplasts to sustain photorespiration. Hence, the chloroplast malate valve and triose phosphate-3-phosphoglycerate shuttle are predicted to have important metabolic roles, in addition to their more commonly discussed contribution to the avoidance of photooxidative stress.
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spelling pubmed-66700722019-10-11 Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light Shameer, Sanu Ratcliffe, R. George Sweetlove, Lee J. Plant Physiol Research Article Key aspects of leaf mitochondrial metabolism in the light remain unresolved. For example, there is debate about the relative importance of exporting reducing equivalents from mitochondria for the peroxisomal steps of photorespiration versus oxidation of NADH to generate ATP by oxidative phosphorylation. Here, we address this and explore energetic coupling between organelles in the light using a diel flux balance analysis model. The model included more than 600 reactions of central metabolism with full stoichiometric accounting of energy production and consumption. Different scenarios of energy availability (light intensity) and demand (source leaf versus a growing leaf) were considered, and the model was constrained by the nonlinear relationship between light and CO(2) assimilation rate. The analysis demonstrated that the chloroplast can theoretically generate sufficient ATP to satisfy the energy requirements of the rest of the cell in addition to its own. However, this requires unrealistic high light use efficiency and, in practice, the availability of chloroplast-derived ATP is limited by chloroplast energy dissipation systems, such as nonphotochemical quenching, and the capacity of the chloroplast ATP export shuttles. Given these limitations, substantial mitochondrial ATP synthesis is required to fulfill cytosolic ATP requirements, with only minimal, or zero, export of mitochondrial reducing equivalents. The analysis also revealed the importance of exporting reducing equivalents from chloroplasts to sustain photorespiration. Hence, the chloroplast malate valve and triose phosphate-3-phosphoglycerate shuttle are predicted to have important metabolic roles, in addition to their more commonly discussed contribution to the avoidance of photooxidative stress. American Society of Plant Biologists 2019-08 2019-06-18 /pmc/articles/PMC6670072/ /pubmed/31213510 http://dx.doi.org/10.1104/pp.19.00624 Text en © 2019 The author(s). All Rights Reserved. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution 4.0 License (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Shameer, Sanu
Ratcliffe, R. George
Sweetlove, Lee J.
Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light
title Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light
title_full Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light
title_fullStr Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light
title_full_unstemmed Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light
title_short Leaf Energy Balance Requires Mitochondrial Respiration and Export of Chloroplast NADPH in the Light
title_sort leaf energy balance requires mitochondrial respiration and export of chloroplast nadph in the light
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6670072/
https://www.ncbi.nlm.nih.gov/pubmed/31213510
http://dx.doi.org/10.1104/pp.19.00624
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