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Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan

Pecan (Carya illinoinensis) is a tree nut crop of worldwide economic importance that is rich in health-promoting factors. However, pecan production and nut quality are greatly challenged by environmental stresses such as the outbreak of severe fungal diseases. Here, we report a high-quality, chromos...

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Autores principales: Xiao, Lihong, Yu, Mengjun, Zhang, Ying, Hu, Jie, Zhang, Rui, Wang, Jianhua, Guo, Haobing, Zhang, He, Guo, Xinyu, Deng, Tianquan, Lv, Saibin, Li, Xuan, Huang, Jianqin, Fan, Guangyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8577110/
https://www.ncbi.nlm.nih.gov/pubmed/34778752
http://dx.doi.org/10.1016/j.xplc.2021.100247
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author Xiao, Lihong
Yu, Mengjun
Zhang, Ying
Hu, Jie
Zhang, Rui
Wang, Jianhua
Guo, Haobing
Zhang, He
Guo, Xinyu
Deng, Tianquan
Lv, Saibin
Li, Xuan
Huang, Jianqin
Fan, Guangyi
author_facet Xiao, Lihong
Yu, Mengjun
Zhang, Ying
Hu, Jie
Zhang, Rui
Wang, Jianhua
Guo, Haobing
Zhang, He
Guo, Xinyu
Deng, Tianquan
Lv, Saibin
Li, Xuan
Huang, Jianqin
Fan, Guangyi
author_sort Xiao, Lihong
collection PubMed
description Pecan (Carya illinoinensis) is a tree nut crop of worldwide economic importance that is rich in health-promoting factors. However, pecan production and nut quality are greatly challenged by environmental stresses such as the outbreak of severe fungal diseases. Here, we report a high-quality, chromosome-scale genome assembly of the controlled-cross pecan cultivar ‘Pawnee’ constructed by integrating Nanopore sequencing and Hi-C technologies. Phylogenetic and evolutionary analyses reveal two whole-genome duplication (WGD) events and two paleo-subgenomes in pecan and walnut. Time estimates suggest that the recent WGD event and considerable genome rearrangements in pecan and walnut account for expansions in genome size and chromosome number after the divergence from bayberry. The two paleo-subgenomes differ in size and protein-coding gene sets. They exhibit uneven ancient gene loss, asymmetrical distribution of transposable elements (especially LTR/Copia and LTR/Gypsy), and expansions in transcription factor families (such as the extreme pecan-specific expansion in the far-red impaired response 1 family), which are likely to reflect the long evolutionary history of species in the Juglandaceae. A whole-genome scan of resequencing data from 86 pecan scab-associated core accessions identified 47 chromosome regions containing 185 putative candidate genes. Significant changes were detected in the expression of candidate genes associated with the chitin response pathway under chitin treatment in the scab-resistant and scab-susceptible cultivars ‘Excell’ and ‘Pawnee’. These findings enable us to identify key genes that may be important susceptibility factors for fungal diseases in pecan. The high-quality sequences are valuable resources for pecan breeders and will provide a foundation for the production and quality improvement of tree nut crops.
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spelling pubmed-85771102021-11-12 Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan Xiao, Lihong Yu, Mengjun Zhang, Ying Hu, Jie Zhang, Rui Wang, Jianhua Guo, Haobing Zhang, He Guo, Xinyu Deng, Tianquan Lv, Saibin Li, Xuan Huang, Jianqin Fan, Guangyi Plant Commun Research Article Pecan (Carya illinoinensis) is a tree nut crop of worldwide economic importance that is rich in health-promoting factors. However, pecan production and nut quality are greatly challenged by environmental stresses such as the outbreak of severe fungal diseases. Here, we report a high-quality, chromosome-scale genome assembly of the controlled-cross pecan cultivar ‘Pawnee’ constructed by integrating Nanopore sequencing and Hi-C technologies. Phylogenetic and evolutionary analyses reveal two whole-genome duplication (WGD) events and two paleo-subgenomes in pecan and walnut. Time estimates suggest that the recent WGD event and considerable genome rearrangements in pecan and walnut account for expansions in genome size and chromosome number after the divergence from bayberry. The two paleo-subgenomes differ in size and protein-coding gene sets. They exhibit uneven ancient gene loss, asymmetrical distribution of transposable elements (especially LTR/Copia and LTR/Gypsy), and expansions in transcription factor families (such as the extreme pecan-specific expansion in the far-red impaired response 1 family), which are likely to reflect the long evolutionary history of species in the Juglandaceae. A whole-genome scan of resequencing data from 86 pecan scab-associated core accessions identified 47 chromosome regions containing 185 putative candidate genes. Significant changes were detected in the expression of candidate genes associated with the chitin response pathway under chitin treatment in the scab-resistant and scab-susceptible cultivars ‘Excell’ and ‘Pawnee’. These findings enable us to identify key genes that may be important susceptibility factors for fungal diseases in pecan. The high-quality sequences are valuable resources for pecan breeders and will provide a foundation for the production and quality improvement of tree nut crops. Elsevier 2021-09-24 /pmc/articles/PMC8577110/ /pubmed/34778752 http://dx.doi.org/10.1016/j.xplc.2021.100247 Text en © 2021 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Xiao, Lihong
Yu, Mengjun
Zhang, Ying
Hu, Jie
Zhang, Rui
Wang, Jianhua
Guo, Haobing
Zhang, He
Guo, Xinyu
Deng, Tianquan
Lv, Saibin
Li, Xuan
Huang, Jianqin
Fan, Guangyi
Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan
title Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan
title_full Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan
title_fullStr Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan
title_full_unstemmed Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan
title_short Chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan
title_sort chromosome-scale assembly reveals asymmetric paleo-subgenome evolution and targets for the acceleration of fungal resistance breeding in the nut crop, pecan
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8577110/
https://www.ncbi.nlm.nih.gov/pubmed/34778752
http://dx.doi.org/10.1016/j.xplc.2021.100247
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