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Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants

The tocopherol biosynthetic pathway, encoded by VTE genes 1 through 6, is highly conserved in plants but most large effect quantitative trait loci for seed total tocopherols (totalT) lack VTE genes, indicating other activities are involved. A genome-wide association study of Arabidopsis seed tocophe...

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Autores principales: Albert, Elise, Kim, Sungsoo, Magallanes-Lundback, Maria, Bao, Yan, Deason, Nicholas, Danilo, Benoit, Wu, Di, Li, Xiaowei, Wood, Joshua C., Bornowski, Nolan, Gore, Michael A., Buell, C. Robin, DellaPenna, Dean
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9191347/
https://www.ncbi.nlm.nih.gov/pubmed/35639691
http://dx.doi.org/10.1073/pnas.2113488119
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author Albert, Elise
Kim, Sungsoo
Magallanes-Lundback, Maria
Bao, Yan
Deason, Nicholas
Danilo, Benoit
Wu, Di
Li, Xiaowei
Wood, Joshua C.
Bornowski, Nolan
Gore, Michael A.
Buell, C. Robin
DellaPenna, Dean
author_facet Albert, Elise
Kim, Sungsoo
Magallanes-Lundback, Maria
Bao, Yan
Deason, Nicholas
Danilo, Benoit
Wu, Di
Li, Xiaowei
Wood, Joshua C.
Bornowski, Nolan
Gore, Michael A.
Buell, C. Robin
DellaPenna, Dean
author_sort Albert, Elise
collection PubMed
description The tocopherol biosynthetic pathway, encoded by VTE genes 1 through 6, is highly conserved in plants but most large effect quantitative trait loci for seed total tocopherols (totalT) lack VTE genes, indicating other activities are involved. A genome-wide association study of Arabidopsis seed tocopherols showed five of seven significant intervals lacked VTE genes, including the most significant, which mapped to an uncharacterized, seed-specific, envelope-localized, alpha/beta hydrolase with esterase activity, designated AtVTE7. Atvte7 null mutants decreased seed totalT 55% while a leaky allele of the maize ortholog, ZmVTE7, decreased kernel and leaf totalT 38% and 49%, respectively. Overexpressing AtVTE7 or ZmVTE7 partially or fully complemented the Atvte7 seed phenotype and increased leaf totalT by 3.6- and 6.9-fold, respectively. VTE7 has the characteristics of an esterase postulated to provide phytol from chlorophyll degradation for tocopherol synthesis, but bulk chlorophyll levels were unaffected in vte7 mutants and overexpressing lines. Instead, levels of specific chlorophyll biosynthetic intermediates containing partially reduced side chains were impacted and strongly correlated with totalT. These intermediates are generated by a membrane-associated biosynthetic complex containing protochlorophyllide reductase, chlorophyll synthase, geranylgeranyl reductase (GGR) and light harvesting-like 3 protein, all of which are required for both chlorophyll and tocopherol biosynthesis. We propose a model where VTE7 releases prenyl alcohols from chlorophyll biosynthetic intermediates, which are then converted to the corresponding diphosphates for tocopherol biosynthesis.
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spelling pubmed-91913472022-12-01 Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants Albert, Elise Kim, Sungsoo Magallanes-Lundback, Maria Bao, Yan Deason, Nicholas Danilo, Benoit Wu, Di Li, Xiaowei Wood, Joshua C. Bornowski, Nolan Gore, Michael A. Buell, C. Robin DellaPenna, Dean Proc Natl Acad Sci U S A Biological Sciences The tocopherol biosynthetic pathway, encoded by VTE genes 1 through 6, is highly conserved in plants but most large effect quantitative trait loci for seed total tocopherols (totalT) lack VTE genes, indicating other activities are involved. A genome-wide association study of Arabidopsis seed tocopherols showed five of seven significant intervals lacked VTE genes, including the most significant, which mapped to an uncharacterized, seed-specific, envelope-localized, alpha/beta hydrolase with esterase activity, designated AtVTE7. Atvte7 null mutants decreased seed totalT 55% while a leaky allele of the maize ortholog, ZmVTE7, decreased kernel and leaf totalT 38% and 49%, respectively. Overexpressing AtVTE7 or ZmVTE7 partially or fully complemented the Atvte7 seed phenotype and increased leaf totalT by 3.6- and 6.9-fold, respectively. VTE7 has the characteristics of an esterase postulated to provide phytol from chlorophyll degradation for tocopherol synthesis, but bulk chlorophyll levels were unaffected in vte7 mutants and overexpressing lines. Instead, levels of specific chlorophyll biosynthetic intermediates containing partially reduced side chains were impacted and strongly correlated with totalT. These intermediates are generated by a membrane-associated biosynthetic complex containing protochlorophyllide reductase, chlorophyll synthase, geranylgeranyl reductase (GGR) and light harvesting-like 3 protein, all of which are required for both chlorophyll and tocopherol biosynthesis. We propose a model where VTE7 releases prenyl alcohols from chlorophyll biosynthetic intermediates, which are then converted to the corresponding diphosphates for tocopherol biosynthesis. National Academy of Sciences 2022-05-31 2022-06-07 /pmc/articles/PMC9191347/ /pubmed/35639691 http://dx.doi.org/10.1073/pnas.2113488119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Albert, Elise
Kim, Sungsoo
Magallanes-Lundback, Maria
Bao, Yan
Deason, Nicholas
Danilo, Benoit
Wu, Di
Li, Xiaowei
Wood, Joshua C.
Bornowski, Nolan
Gore, Michael A.
Buell, C. Robin
DellaPenna, Dean
Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants
title Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants
title_full Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants
title_fullStr Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants
title_full_unstemmed Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants
title_short Genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants
title_sort genome-wide association identifies a missing hydrolase for tocopherol synthesis in plants
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9191347/
https://www.ncbi.nlm.nih.gov/pubmed/35639691
http://dx.doi.org/10.1073/pnas.2113488119
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