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AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis?

Fumarylacetoacetate hydrolase (FAH) proteins form a superfamily found in Archaea, Bacteria, and Eukaryota. However, few fumarylacetoacetate hydrolase domain (FAHD)-containing proteins have been studied in Metazoa and their role in plants remains elusive. Sequence alignments revealed high homology be...

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Autores principales: Gerna, Davide, Arc, Erwann, Holzknecht, Max, Roach, Thomas, Jansen-Dürr, Pidder, Weiss, Alexander K.H., Kranner, Ilse
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8001395/
https://www.ncbi.nlm.nih.gov/pubmed/33804275
http://dx.doi.org/10.3390/ijms22062997
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author Gerna, Davide
Arc, Erwann
Holzknecht, Max
Roach, Thomas
Jansen-Dürr, Pidder
Weiss, Alexander K.H.
Kranner, Ilse
author_facet Gerna, Davide
Arc, Erwann
Holzknecht, Max
Roach, Thomas
Jansen-Dürr, Pidder
Weiss, Alexander K.H.
Kranner, Ilse
author_sort Gerna, Davide
collection PubMed
description Fumarylacetoacetate hydrolase (FAH) proteins form a superfamily found in Archaea, Bacteria, and Eukaryota. However, few fumarylacetoacetate hydrolase domain (FAHD)-containing proteins have been studied in Metazoa and their role in plants remains elusive. Sequence alignments revealed high homology between two Arabidopsis thaliana FAHD-containing proteins and human FAHD1 (hFAHD1) implicated in mitochondrial dysfunction-associated senescence. Transcripts of the closest hFAHD1 orthologue in Arabidopsis (AtFAHD1a) peak during seed maturation drying, which influences seed longevity and dormancy. Here, a homology study was conducted to assess if AtFAHD1a contributes to seed longevity and vigour. We found that an A. thaliana T-DNA insertional line (Atfahd1a-1) had extended seed longevity and shallower thermo-dormancy. Compared to the wild type, metabolite profiling of dry Atfahd1a-1 seeds showed that the concentrations of several amino acids, some reducing monosaccharides, and δ-tocopherol dropped, whereas the concentrations of dehydroascorbate, its catabolic intermediate threonic acid, and ascorbate accumulated. Furthermore, the redox state of the glutathione disulphide/glutathione couple shifted towards a more reducing state in dry mature Atfahd1a-1 seeds, suggesting that AtFAHD1a affects antioxidant redox poise during seed development. In summary, AtFAHD1a appears to be involved in seed redox regulation and to affect seed quality traits such as seed thermo-dormancy and longevity.
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spelling pubmed-80013952021-03-28 AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis? Gerna, Davide Arc, Erwann Holzknecht, Max Roach, Thomas Jansen-Dürr, Pidder Weiss, Alexander K.H. Kranner, Ilse Int J Mol Sci Article Fumarylacetoacetate hydrolase (FAH) proteins form a superfamily found in Archaea, Bacteria, and Eukaryota. However, few fumarylacetoacetate hydrolase domain (FAHD)-containing proteins have been studied in Metazoa and their role in plants remains elusive. Sequence alignments revealed high homology between two Arabidopsis thaliana FAHD-containing proteins and human FAHD1 (hFAHD1) implicated in mitochondrial dysfunction-associated senescence. Transcripts of the closest hFAHD1 orthologue in Arabidopsis (AtFAHD1a) peak during seed maturation drying, which influences seed longevity and dormancy. Here, a homology study was conducted to assess if AtFAHD1a contributes to seed longevity and vigour. We found that an A. thaliana T-DNA insertional line (Atfahd1a-1) had extended seed longevity and shallower thermo-dormancy. Compared to the wild type, metabolite profiling of dry Atfahd1a-1 seeds showed that the concentrations of several amino acids, some reducing monosaccharides, and δ-tocopherol dropped, whereas the concentrations of dehydroascorbate, its catabolic intermediate threonic acid, and ascorbate accumulated. Furthermore, the redox state of the glutathione disulphide/glutathione couple shifted towards a more reducing state in dry mature Atfahd1a-1 seeds, suggesting that AtFAHD1a affects antioxidant redox poise during seed development. In summary, AtFAHD1a appears to be involved in seed redox regulation and to affect seed quality traits such as seed thermo-dormancy and longevity. MDPI 2021-03-15 /pmc/articles/PMC8001395/ /pubmed/33804275 http://dx.doi.org/10.3390/ijms22062997 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gerna, Davide
Arc, Erwann
Holzknecht, Max
Roach, Thomas
Jansen-Dürr, Pidder
Weiss, Alexander K.H.
Kranner, Ilse
AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis?
title AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis?
title_full AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis?
title_fullStr AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis?
title_full_unstemmed AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis?
title_short AtFAHD1a: A New Player Influencing Seed Longevity and Dormancy in Arabidopsis?
title_sort atfahd1a: a new player influencing seed longevity and dormancy in arabidopsis?
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8001395/
https://www.ncbi.nlm.nih.gov/pubmed/33804275
http://dx.doi.org/10.3390/ijms22062997
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