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Structural variation underlies functional diversity at methyl salicylate loci in tomato

Methyl salicylate is an important inter- and intra-plant signaling molecule, but is deemed undesirable by humans when it accumulates to high levels in ripe fruits. Balancing the tradeoff between consumer satisfaction and overall plant health is challenging as the mechanisms regulating volatile level...

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Autores principales: Sapkota, Manoj, Pereira, Lara, Wang, Yanbing, Zhang, Lei, Topcu, Yasin, Tieman, Denise, van der Knaap, Esther
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10187894/
https://www.ncbi.nlm.nih.gov/pubmed/37141297
http://dx.doi.org/10.1371/journal.pgen.1010751
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author Sapkota, Manoj
Pereira, Lara
Wang, Yanbing
Zhang, Lei
Topcu, Yasin
Tieman, Denise
van der Knaap, Esther
author_facet Sapkota, Manoj
Pereira, Lara
Wang, Yanbing
Zhang, Lei
Topcu, Yasin
Tieman, Denise
van der Knaap, Esther
author_sort Sapkota, Manoj
collection PubMed
description Methyl salicylate is an important inter- and intra-plant signaling molecule, but is deemed undesirable by humans when it accumulates to high levels in ripe fruits. Balancing the tradeoff between consumer satisfaction and overall plant health is challenging as the mechanisms regulating volatile levels have not yet been fully elucidated. In this study, we investigated the accumulation of methyl salicylate in ripe fruits of tomatoes that belong to the red-fruited clade. We determine the genetic diversity and the interaction of four known loci controlling methyl salicylate levels in ripe fruits. In addition to Non-Smoky Glucosyl Transferase 1 (NSGT1), we uncovered extensive genome structural variation (SV) at the Methylesterase (MES) locus. This locus contains four tandemly duplicated Methylesterase genes and genome sequence investigations at the locus identified nine distinct haplotypes. Based on gene expression and results from biparental crosses, functional and non-functional haplotypes for MES were identified. The combination of the non-functional MES haplotype 2 and the non-functional NSGT1 haplotype IV or V in a GWAS panel showed high methyl salicylate levels in ripe fruits, particularly in accessions from Ecuador, demonstrating a strong interaction between these two loci and suggesting an ecological advantage. The genetic variation at the other two known loci, Salicylic Acid Methyl Transferase 1 (SAMT1) and tomato UDP Glycosyl Transferase 5 (SlUGT5), did not explain volatile variation in the red-fruited tomato germplasm, suggesting a minor role in methyl salicylate production in red-fruited tomato. Lastly, we found that most heirloom and modern tomato accessions carried a functional MES and a non-functional NSGT1 haplotype, ensuring acceptable levels of methyl salicylate in fruits. Yet, future selection of the functional NSGT1 allele could potentially improve flavor in the modern germplasm.
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spelling pubmed-101878942023-05-17 Structural variation underlies functional diversity at methyl salicylate loci in tomato Sapkota, Manoj Pereira, Lara Wang, Yanbing Zhang, Lei Topcu, Yasin Tieman, Denise van der Knaap, Esther PLoS Genet Research Article Methyl salicylate is an important inter- and intra-plant signaling molecule, but is deemed undesirable by humans when it accumulates to high levels in ripe fruits. Balancing the tradeoff between consumer satisfaction and overall plant health is challenging as the mechanisms regulating volatile levels have not yet been fully elucidated. In this study, we investigated the accumulation of methyl salicylate in ripe fruits of tomatoes that belong to the red-fruited clade. We determine the genetic diversity and the interaction of four known loci controlling methyl salicylate levels in ripe fruits. In addition to Non-Smoky Glucosyl Transferase 1 (NSGT1), we uncovered extensive genome structural variation (SV) at the Methylesterase (MES) locus. This locus contains four tandemly duplicated Methylesterase genes and genome sequence investigations at the locus identified nine distinct haplotypes. Based on gene expression and results from biparental crosses, functional and non-functional haplotypes for MES were identified. The combination of the non-functional MES haplotype 2 and the non-functional NSGT1 haplotype IV or V in a GWAS panel showed high methyl salicylate levels in ripe fruits, particularly in accessions from Ecuador, demonstrating a strong interaction between these two loci and suggesting an ecological advantage. The genetic variation at the other two known loci, Salicylic Acid Methyl Transferase 1 (SAMT1) and tomato UDP Glycosyl Transferase 5 (SlUGT5), did not explain volatile variation in the red-fruited tomato germplasm, suggesting a minor role in methyl salicylate production in red-fruited tomato. Lastly, we found that most heirloom and modern tomato accessions carried a functional MES and a non-functional NSGT1 haplotype, ensuring acceptable levels of methyl salicylate in fruits. Yet, future selection of the functional NSGT1 allele could potentially improve flavor in the modern germplasm. Public Library of Science 2023-05-04 /pmc/articles/PMC10187894/ /pubmed/37141297 http://dx.doi.org/10.1371/journal.pgen.1010751 Text en © 2023 Sapkota et al 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 use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Sapkota, Manoj
Pereira, Lara
Wang, Yanbing
Zhang, Lei
Topcu, Yasin
Tieman, Denise
van der Knaap, Esther
Structural variation underlies functional diversity at methyl salicylate loci in tomato
title Structural variation underlies functional diversity at methyl salicylate loci in tomato
title_full Structural variation underlies functional diversity at methyl salicylate loci in tomato
title_fullStr Structural variation underlies functional diversity at methyl salicylate loci in tomato
title_full_unstemmed Structural variation underlies functional diversity at methyl salicylate loci in tomato
title_short Structural variation underlies functional diversity at methyl salicylate loci in tomato
title_sort structural variation underlies functional diversity at methyl salicylate loci in tomato
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10187894/
https://www.ncbi.nlm.nih.gov/pubmed/37141297
http://dx.doi.org/10.1371/journal.pgen.1010751
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