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Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis

Photorespiration is indispensable for oxygenic photosynthesis since it detoxifies and recycles 2-phosphoglycolate (2PG), which is the primary oxygenation product of Rubisco. However, C(4) plant species typically display very low rates of photorespiration due to their efficient biochemical carbon-con...

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Autores principales: Levey, Myles, Timm, Stefan, Mettler-Altmann, Tabea, Luca Borghi, Gian, Koczor, Maria, Arrivault, Stéphanie, PM Weber, Andreas, Bauwe, Hermann, Gowik, Udo, Westhoff, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6322630/
https://www.ncbi.nlm.nih.gov/pubmed/30357386
http://dx.doi.org/10.1093/jxb/ery370
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author Levey, Myles
Timm, Stefan
Mettler-Altmann, Tabea
Luca Borghi, Gian
Koczor, Maria
Arrivault, Stéphanie
PM Weber, Andreas
Bauwe, Hermann
Gowik, Udo
Westhoff, Peter
author_facet Levey, Myles
Timm, Stefan
Mettler-Altmann, Tabea
Luca Borghi, Gian
Koczor, Maria
Arrivault, Stéphanie
PM Weber, Andreas
Bauwe, Hermann
Gowik, Udo
Westhoff, Peter
author_sort Levey, Myles
collection PubMed
description Photorespiration is indispensable for oxygenic photosynthesis since it detoxifies and recycles 2-phosphoglycolate (2PG), which is the primary oxygenation product of Rubisco. However, C(4) plant species typically display very low rates of photorespiration due to their efficient biochemical carbon-concentrating mechanism. Thus, the broader relevance of photorespiration in these organisms remains unclear. In this study, we assessed the importance of a functional photorespiratory pathway in the C(4) plant Flaveria bidentis using knockdown of the first enzymatic step, namely 2PG phosphatase (PGLP). The isolated RNAi lines showed strongly reduced amounts of PGLP protein, but distinct signs of the photorespiratory phenotype only emerged below 5% residual PGLP protein. Lines with this characteristic were stunted in growth, had strongly increased 2PG content, exhibited accelerated leaf senescence, and accumulated high amounts of branched-chain and aromatic amino acids, which are both characteristics of incipient carbon starvation. Oxygen-dependent gas-exchange measurements consistently suggested the cumulative impairment of ribulose-1,5-bisphosphate regeneration with increased photorespiratory pressure. Our results indicate that photorespiration is essential for maintaining high rates of C(4) photosynthesis by preventing the 2PG-mediated inhibition of carbon utilization efficiency. However, considerably higher 2PG accumulation can be tolerated compared to equivalent lines of C(3) plants due to the differential distribution of specific enzymatic steps between the mesophyll and bundle sheath cells.
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spelling pubmed-63226302019-01-10 Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis Levey, Myles Timm, Stefan Mettler-Altmann, Tabea Luca Borghi, Gian Koczor, Maria Arrivault, Stéphanie PM Weber, Andreas Bauwe, Hermann Gowik, Udo Westhoff, Peter J Exp Bot Research Papers Photorespiration is indispensable for oxygenic photosynthesis since it detoxifies and recycles 2-phosphoglycolate (2PG), which is the primary oxygenation product of Rubisco. However, C(4) plant species typically display very low rates of photorespiration due to their efficient biochemical carbon-concentrating mechanism. Thus, the broader relevance of photorespiration in these organisms remains unclear. In this study, we assessed the importance of a functional photorespiratory pathway in the C(4) plant Flaveria bidentis using knockdown of the first enzymatic step, namely 2PG phosphatase (PGLP). The isolated RNAi lines showed strongly reduced amounts of PGLP protein, but distinct signs of the photorespiratory phenotype only emerged below 5% residual PGLP protein. Lines with this characteristic were stunted in growth, had strongly increased 2PG content, exhibited accelerated leaf senescence, and accumulated high amounts of branched-chain and aromatic amino acids, which are both characteristics of incipient carbon starvation. Oxygen-dependent gas-exchange measurements consistently suggested the cumulative impairment of ribulose-1,5-bisphosphate regeneration with increased photorespiratory pressure. Our results indicate that photorespiration is essential for maintaining high rates of C(4) photosynthesis by preventing the 2PG-mediated inhibition of carbon utilization efficiency. However, considerably higher 2PG accumulation can be tolerated compared to equivalent lines of C(3) plants due to the differential distribution of specific enzymatic steps between the mesophyll and bundle sheath cells. Oxford University Press 2019-01-15 2018-10-23 /pmc/articles/PMC6322630/ /pubmed/30357386 http://dx.doi.org/10.1093/jxb/ery370 Text en © The Author(s) 2018. Published by Oxford University Press on behalf of the Society for Experimental Biology. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Papers
Levey, Myles
Timm, Stefan
Mettler-Altmann, Tabea
Luca Borghi, Gian
Koczor, Maria
Arrivault, Stéphanie
PM Weber, Andreas
Bauwe, Hermann
Gowik, Udo
Westhoff, Peter
Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis
title Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis
title_full Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis
title_fullStr Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis
title_full_unstemmed Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis
title_short Efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the C(4) plant Flaveria bidentis
title_sort efficient 2-phosphoglycolate degradation is required to maintain carbon assimilation and allocation in the c(4) plant flaveria bidentis
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6322630/
https://www.ncbi.nlm.nih.gov/pubmed/30357386
http://dx.doi.org/10.1093/jxb/ery370
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