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Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae

Wood decay resistance (WDR) is marking the value of wood utilization. Many trees of the Lauraceae have exceptional WDR, as evidenced by their use in ancient royal palace buildings in China. However, the genetics of WDR remain elusive. Here, through comparative genomics, we revealed the unique charac...

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Autores principales: Tian, Xue-Chan, Guo, Jing-Fang, Yan, Xue-Mei, Shi, Tian-Le, Nie, Shuai, Zhao, Shi-Wei, Bao, Yu-Tao, Li, Zhi-Chao, Kong, Lei, Su, Guang-Ju, Mao, Jian-Feng, Lin, Jinxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10030967/
https://www.ncbi.nlm.nih.gov/pubmed/36968354
http://dx.doi.org/10.3389/fpls.2023.1122549
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author Tian, Xue-Chan
Guo, Jing-Fang
Yan, Xue-Mei
Shi, Tian-Le
Nie, Shuai
Zhao, Shi-Wei
Bao, Yu-Tao
Li, Zhi-Chao
Kong, Lei
Su, Guang-Ju
Mao, Jian-Feng
Lin, Jinxing
author_facet Tian, Xue-Chan
Guo, Jing-Fang
Yan, Xue-Mei
Shi, Tian-Le
Nie, Shuai
Zhao, Shi-Wei
Bao, Yu-Tao
Li, Zhi-Chao
Kong, Lei
Su, Guang-Ju
Mao, Jian-Feng
Lin, Jinxing
author_sort Tian, Xue-Chan
collection PubMed
description Wood decay resistance (WDR) is marking the value of wood utilization. Many trees of the Lauraceae have exceptional WDR, as evidenced by their use in ancient royal palace buildings in China. However, the genetics of WDR remain elusive. Here, through comparative genomics, we revealed the unique characteristics related to the high WDR in Lauraceae trees. We present a 1.27-Gb chromosome-level assembly for Lindera megaphylla (Lauraceae). Comparative genomics integrating major groups of angiosperm revealed Lauraceae species have extensively shared gene microsynteny associated with the biosynthesis of specialized metabolites such as isoquinoline alkaloids, flavonoid, lignins and terpenoid, which play significant roles in WDR. In Lauraceae genomes, tandem and proximal duplications (TD/PD) significantly expanded the coding space of key enzymes of biosynthesis pathways related to WDR, which may enhance the decay resistance of wood by increasing the accumulation of these compounds. Among Lauraceae species, genes of WDR-related biosynthesis pathways showed remarkable expansion by TD/PD and conveyed unique and conserved motifs in their promoter and protein sequences, suggesting conserved gene collinearity, gene expansion and gene regulation supporting the high WDR. Our study thus reveals genomic profiles related to biochemical transitions among major plant groups and the genomic basis of WDR in the Lauraceae.
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spelling pubmed-100309672023-03-23 Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae Tian, Xue-Chan Guo, Jing-Fang Yan, Xue-Mei Shi, Tian-Le Nie, Shuai Zhao, Shi-Wei Bao, Yu-Tao Li, Zhi-Chao Kong, Lei Su, Guang-Ju Mao, Jian-Feng Lin, Jinxing Front Plant Sci Plant Science Wood decay resistance (WDR) is marking the value of wood utilization. Many trees of the Lauraceae have exceptional WDR, as evidenced by their use in ancient royal palace buildings in China. However, the genetics of WDR remain elusive. Here, through comparative genomics, we revealed the unique characteristics related to the high WDR in Lauraceae trees. We present a 1.27-Gb chromosome-level assembly for Lindera megaphylla (Lauraceae). Comparative genomics integrating major groups of angiosperm revealed Lauraceae species have extensively shared gene microsynteny associated with the biosynthesis of specialized metabolites such as isoquinoline alkaloids, flavonoid, lignins and terpenoid, which play significant roles in WDR. In Lauraceae genomes, tandem and proximal duplications (TD/PD) significantly expanded the coding space of key enzymes of biosynthesis pathways related to WDR, which may enhance the decay resistance of wood by increasing the accumulation of these compounds. Among Lauraceae species, genes of WDR-related biosynthesis pathways showed remarkable expansion by TD/PD and conveyed unique and conserved motifs in their promoter and protein sequences, suggesting conserved gene collinearity, gene expansion and gene regulation supporting the high WDR. Our study thus reveals genomic profiles related to biochemical transitions among major plant groups and the genomic basis of WDR in the Lauraceae. Frontiers Media S.A. 2023-03-08 /pmc/articles/PMC10030967/ /pubmed/36968354 http://dx.doi.org/10.3389/fpls.2023.1122549 Text en Copyright © 2023 Tian, Guo, Yan, Shi, Nie, Zhao, Bao, Li, Kong, Su, Mao and Lin https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Tian, Xue-Chan
Guo, Jing-Fang
Yan, Xue-Mei
Shi, Tian-Le
Nie, Shuai
Zhao, Shi-Wei
Bao, Yu-Tao
Li, Zhi-Chao
Kong, Lei
Su, Guang-Ju
Mao, Jian-Feng
Lin, Jinxing
Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae
title Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae
title_full Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae
title_fullStr Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae
title_full_unstemmed Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae
title_short Unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the Lauraceae
title_sort unique gene duplications and conserved microsynteny potentially associated with resistance to wood decay in the lauraceae
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10030967/
https://www.ncbi.nlm.nih.gov/pubmed/36968354
http://dx.doi.org/10.3389/fpls.2023.1122549
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