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Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism

In plants with Crassulacean acid metabolism (CAM), it has been proposed that the requirement for nocturnal provision of phosphoenolpyruvate as a substrate for CO(2) uptake has resulted in a re-routing of chloroplastic starch degradation from the amylolytic route to the phosphorolytic route. To test...

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Autores principales: Ceusters, Nathalie, Ceusters, Johan, Hurtado-Castano, Natalia, Dever, Louisa V, Boxall, Susanna F, Kneřová, Jana, Waller, Jade L, Rodick, Rebecca, Van den Ende, Wim, Hartwell, James, Borland, Anne M
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8266541/
https://www.ncbi.nlm.nih.gov/pubmed/33754643
http://dx.doi.org/10.1093/jxb/erab132
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author Ceusters, Nathalie
Ceusters, Johan
Hurtado-Castano, Natalia
Dever, Louisa V
Boxall, Susanna F
Kneřová, Jana
Waller, Jade L
Rodick, Rebecca
Van den Ende, Wim
Hartwell, James
Borland, Anne M
author_facet Ceusters, Nathalie
Ceusters, Johan
Hurtado-Castano, Natalia
Dever, Louisa V
Boxall, Susanna F
Kneřová, Jana
Waller, Jade L
Rodick, Rebecca
Van den Ende, Wim
Hartwell, James
Borland, Anne M
author_sort Ceusters, Nathalie
collection PubMed
description In plants with Crassulacean acid metabolism (CAM), it has been proposed that the requirement for nocturnal provision of phosphoenolpyruvate as a substrate for CO(2) uptake has resulted in a re-routing of chloroplastic starch degradation from the amylolytic route to the phosphorolytic route. To test this hypothesis, we generated and characterized four independent RNAi lines of the obligate CAM species Kalanchoë fedtschenkoi with a >10-fold reduction in transcript abundance of plastidic α-glucan phosphorylase (PHS1). The rPHS1 lines showed diminished nocturnal starch degradation, reduced dark CO(2) uptake, a reduction in diel water use efficiency (WUE), and an overall reduction in growth. A re-routing of starch degradation via the hydrolytic/amylolytic pathway was indicated by hyperaccumulation of maltose in all rPHS1 lines. Further examination indicated that whilst operation of the core circadian clock was not compromised, plasticity in modulating net dark CO(2) uptake in response to changing photoperiods was curtailed. The data show that phosphorolytic starch degradation is critical for efficient operation of the CAM cycle and for optimizing WUE. This finding has clear relevance for ongoing efforts to engineer CAM into non-CAM species as a means of boosting crop WUE for a warmer, drier future.
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spelling pubmed-82665412021-07-09 Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism Ceusters, Nathalie Ceusters, Johan Hurtado-Castano, Natalia Dever, Louisa V Boxall, Susanna F Kneřová, Jana Waller, Jade L Rodick, Rebecca Van den Ende, Wim Hartwell, James Borland, Anne M J Exp Bot Research Papers In plants with Crassulacean acid metabolism (CAM), it has been proposed that the requirement for nocturnal provision of phosphoenolpyruvate as a substrate for CO(2) uptake has resulted in a re-routing of chloroplastic starch degradation from the amylolytic route to the phosphorolytic route. To test this hypothesis, we generated and characterized four independent RNAi lines of the obligate CAM species Kalanchoë fedtschenkoi with a >10-fold reduction in transcript abundance of plastidic α-glucan phosphorylase (PHS1). The rPHS1 lines showed diminished nocturnal starch degradation, reduced dark CO(2) uptake, a reduction in diel water use efficiency (WUE), and an overall reduction in growth. A re-routing of starch degradation via the hydrolytic/amylolytic pathway was indicated by hyperaccumulation of maltose in all rPHS1 lines. Further examination indicated that whilst operation of the core circadian clock was not compromised, plasticity in modulating net dark CO(2) uptake in response to changing photoperiods was curtailed. The data show that phosphorolytic starch degradation is critical for efficient operation of the CAM cycle and for optimizing WUE. This finding has clear relevance for ongoing efforts to engineer CAM into non-CAM species as a means of boosting crop WUE for a warmer, drier future. Oxford University Press 2021-03-22 /pmc/articles/PMC8266541/ /pubmed/33754643 http://dx.doi.org/10.1093/jxb/erab132 Text en © The Author(s) 2021. Published by Oxford University Press on behalf of the Society for Experimental Biology. All rights reserved. For permissions, please email: journals.permissions@oup.com https://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/ (https://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
Ceusters, Nathalie
Ceusters, Johan
Hurtado-Castano, Natalia
Dever, Louisa V
Boxall, Susanna F
Kneřová, Jana
Waller, Jade L
Rodick, Rebecca
Van den Ende, Wim
Hartwell, James
Borland, Anne M
Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism
title Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism
title_full Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism
title_fullStr Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism
title_full_unstemmed Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism
title_short Phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of Crassulacean acid metabolism
title_sort phosphorolytic degradation of leaf starch via plastidic α-glucan phosphorylase leads to optimized plant growth and water use efficiency over the diel phases of crassulacean acid metabolism
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8266541/
https://www.ncbi.nlm.nih.gov/pubmed/33754643
http://dx.doi.org/10.1093/jxb/erab132
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