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Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis

Dark-induced senescence provokes profound metabolic shifts to recycle nutrients and to guarantee plant survival. To date, research on these processes has largely focused on characterizing mutants deficient in individual pathways. Here, we adopted a time-resolved genome-wide association-based approac...

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Autores principales: Zhu, Feng, Alseekh, Saleh, Koper, Kaan, Tong, Hao, Nikoloski, Zoran, Naake, Thomas, Liu, Haijun, Yan, Jianbing, Brotman, Yariv, Wen, Weiwei, Maeda, Hiroshi, Cheng, Yunjiang, Fernie, Alisdair R
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774053/
https://www.ncbi.nlm.nih.gov/pubmed/34623442
http://dx.doi.org/10.1093/plcell/koab251
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author Zhu, Feng
Alseekh, Saleh
Koper, Kaan
Tong, Hao
Nikoloski, Zoran
Naake, Thomas
Liu, Haijun
Yan, Jianbing
Brotman, Yariv
Wen, Weiwei
Maeda, Hiroshi
Cheng, Yunjiang
Fernie, Alisdair R
author_facet Zhu, Feng
Alseekh, Saleh
Koper, Kaan
Tong, Hao
Nikoloski, Zoran
Naake, Thomas
Liu, Haijun
Yan, Jianbing
Brotman, Yariv
Wen, Weiwei
Maeda, Hiroshi
Cheng, Yunjiang
Fernie, Alisdair R
author_sort Zhu, Feng
collection PubMed
description Dark-induced senescence provokes profound metabolic shifts to recycle nutrients and to guarantee plant survival. To date, research on these processes has largely focused on characterizing mutants deficient in individual pathways. Here, we adopted a time-resolved genome-wide association-based approach to characterize dark-induced senescence by evaluating the photochemical efficiency and content of primary and lipid metabolites at the beginning, or after 3 or 6 days in darkness. We discovered six patterns of metabolic shifts and identified 215 associations with 81 candidate genes being involved in this process. Among these associations, we validated the roles of four genes associated with glycine, galactinol, threonine, and ornithine levels. We also demonstrated the function of threonine and galactinol catabolism during dark-induced senescence. Intriguingly, we determined that the association between tyrosine contents and TYROSINE AMINOTRANSFERASE 1 influences enzyme activity of the encoded protein and transcriptional activity of the gene under normal and dark conditions, respectively. Moreover, the single-nucleotide polymorphisms affecting the expression of THREONINE ALDOLASE 1 and the amino acid transporter gene AVT1B, respectively, only underlie the variation in threonine and glycine levels in the dark. Taken together, these results allow us to present a very detailed model of the metabolic aspects of dark-induced senescence, as well as the process itself.
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spelling pubmed-87740532022-02-02 Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis Zhu, Feng Alseekh, Saleh Koper, Kaan Tong, Hao Nikoloski, Zoran Naake, Thomas Liu, Haijun Yan, Jianbing Brotman, Yariv Wen, Weiwei Maeda, Hiroshi Cheng, Yunjiang Fernie, Alisdair R Plant Cell Regular Issue Dark-induced senescence provokes profound metabolic shifts to recycle nutrients and to guarantee plant survival. To date, research on these processes has largely focused on characterizing mutants deficient in individual pathways. Here, we adopted a time-resolved genome-wide association-based approach to characterize dark-induced senescence by evaluating the photochemical efficiency and content of primary and lipid metabolites at the beginning, or after 3 or 6 days in darkness. We discovered six patterns of metabolic shifts and identified 215 associations with 81 candidate genes being involved in this process. Among these associations, we validated the roles of four genes associated with glycine, galactinol, threonine, and ornithine levels. We also demonstrated the function of threonine and galactinol catabolism during dark-induced senescence. Intriguingly, we determined that the association between tyrosine contents and TYROSINE AMINOTRANSFERASE 1 influences enzyme activity of the encoded protein and transcriptional activity of the gene under normal and dark conditions, respectively. Moreover, the single-nucleotide polymorphisms affecting the expression of THREONINE ALDOLASE 1 and the amino acid transporter gene AVT1B, respectively, only underlie the variation in threonine and glycine levels in the dark. Taken together, these results allow us to present a very detailed model of the metabolic aspects of dark-induced senescence, as well as the process itself. Oxford University Press 2021-10-08 /pmc/articles/PMC8774053/ /pubmed/34623442 http://dx.doi.org/10.1093/plcell/koab251 Text en © The Author(s) 2021. Published by Oxford University Press on behalf of American Society of Plant Biologists. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (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 Regular Issue
Zhu, Feng
Alseekh, Saleh
Koper, Kaan
Tong, Hao
Nikoloski, Zoran
Naake, Thomas
Liu, Haijun
Yan, Jianbing
Brotman, Yariv
Wen, Weiwei
Maeda, Hiroshi
Cheng, Yunjiang
Fernie, Alisdair R
Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis
title Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis
title_full Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis
title_fullStr Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis
title_full_unstemmed Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis
title_short Genome-wide association of the metabolic shifts underpinning dark-induced senescence in Arabidopsis
title_sort genome-wide association of the metabolic shifts underpinning dark-induced senescence in arabidopsis
topic Regular Issue
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774053/
https://www.ncbi.nlm.nih.gov/pubmed/34623442
http://dx.doi.org/10.1093/plcell/koab251
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