Cargando…

Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear

Pear (Pyrus spp.) is one of the most common fruit crops grown in temperate regions worldwide. Genetic enhancement of fruit quality is a fundamental goal of pear breeding programs. The genetic control of pear fruit quality traits is highly quantitative, and development of high-density genetic maps ca...

Descripción completa

Detalles Bibliográficos
Autores principales: Qin, Meng-Fan, Li, Lei-Ting, Singh, Jugpreet, Sun, Man-Yi, Bai, Bing, Li, Si-Wei, Ni, Jiang-Ping, Zhang, Jia-Ying, Zhang, Xun, Wei, Wei-Lin, Zhang, Ming-Yue, Li, Jia-Ming, Qi, Kai-Jie, Zhang, Shao-Ling, Khan, Awais, Wu, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9437719/
https://www.ncbi.nlm.nih.gov/pubmed/36072841
http://dx.doi.org/10.1093/hr/uhac141
_version_ 1784781680525967360
author Qin, Meng-Fan
Li, Lei-Ting
Singh, Jugpreet
Sun, Man-Yi
Bai, Bing
Li, Si-Wei
Ni, Jiang-Ping
Zhang, Jia-Ying
Zhang, Xun
Wei, Wei-Lin
Zhang, Ming-Yue
Li, Jia-Ming
Qi, Kai-Jie
Zhang, Shao-Ling
Khan, Awais
Wu, Jun
author_facet Qin, Meng-Fan
Li, Lei-Ting
Singh, Jugpreet
Sun, Man-Yi
Bai, Bing
Li, Si-Wei
Ni, Jiang-Ping
Zhang, Jia-Ying
Zhang, Xun
Wei, Wei-Lin
Zhang, Ming-Yue
Li, Jia-Ming
Qi, Kai-Jie
Zhang, Shao-Ling
Khan, Awais
Wu, Jun
author_sort Qin, Meng-Fan
collection PubMed
description Pear (Pyrus spp.) is one of the most common fruit crops grown in temperate regions worldwide. Genetic enhancement of fruit quality is a fundamental goal of pear breeding programs. The genetic control of pear fruit quality traits is highly quantitative, and development of high-density genetic maps can facilitate fine-mapping of quantitative trait loci (QTLs) and gene identification. Bin-mapping is a powerful method of constructing high-resolution genetic maps from large-scale genotyping datasets. We performed whole-genome sequencing of pear cultivars ‘Niitaka’ and ‘Hongxiangsu’ and their 176 F(1) progeny to identify genome-wide single-nucleotide polymorphism (SNP) markers for constructing a high-density bin-map of pear. This analysis yielded a total of 1.93 million SNPs and a genetic bin-map of 3190 markers spanning 1358.5 cM, with an average adjacent interval of 0.43 cM. This bin-map, along with other high-density genetic maps in pear, improved the reference genome assembly from 75.5 to 83.7% by re-anchoring the scaffolds. A quantitative genetic analysis identified 148 QTLs for 18 fruit-related traits; among them, QTLs for stone cell content, several key monosaccharides, and fruit pulp acids were identified for the first time in pear. A gene expression analysis of six pear cultivars identified 399 candidates in the identified QTL regions, which showed expression specific to fruit developmental stages in pear. Finally, we confirmed the function of PbrtMT1, a tonoplast monosaccharide transporter-related gene responsible for the enhancement of fructose accumulation in pear fruit on linkage group 16, in a transient transformation experiment. This study provides genomic and genetic resources as well as potential candidate genes for fruit quality improvement in pear.
format Online
Article
Text
id pubmed-9437719
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-94377192022-09-06 Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear Qin, Meng-Fan Li, Lei-Ting Singh, Jugpreet Sun, Man-Yi Bai, Bing Li, Si-Wei Ni, Jiang-Ping Zhang, Jia-Ying Zhang, Xun Wei, Wei-Lin Zhang, Ming-Yue Li, Jia-Ming Qi, Kai-Jie Zhang, Shao-Ling Khan, Awais Wu, Jun Hortic Res Article Pear (Pyrus spp.) is one of the most common fruit crops grown in temperate regions worldwide. Genetic enhancement of fruit quality is a fundamental goal of pear breeding programs. The genetic control of pear fruit quality traits is highly quantitative, and development of high-density genetic maps can facilitate fine-mapping of quantitative trait loci (QTLs) and gene identification. Bin-mapping is a powerful method of constructing high-resolution genetic maps from large-scale genotyping datasets. We performed whole-genome sequencing of pear cultivars ‘Niitaka’ and ‘Hongxiangsu’ and their 176 F(1) progeny to identify genome-wide single-nucleotide polymorphism (SNP) markers for constructing a high-density bin-map of pear. This analysis yielded a total of 1.93 million SNPs and a genetic bin-map of 3190 markers spanning 1358.5 cM, with an average adjacent interval of 0.43 cM. This bin-map, along with other high-density genetic maps in pear, improved the reference genome assembly from 75.5 to 83.7% by re-anchoring the scaffolds. A quantitative genetic analysis identified 148 QTLs for 18 fruit-related traits; among them, QTLs for stone cell content, several key monosaccharides, and fruit pulp acids were identified for the first time in pear. A gene expression analysis of six pear cultivars identified 399 candidates in the identified QTL regions, which showed expression specific to fruit developmental stages in pear. Finally, we confirmed the function of PbrtMT1, a tonoplast monosaccharide transporter-related gene responsible for the enhancement of fructose accumulation in pear fruit on linkage group 16, in a transient transformation experiment. This study provides genomic and genetic resources as well as potential candidate genes for fruit quality improvement in pear. Oxford University Press 2022-06-23 /pmc/articles/PMC9437719/ /pubmed/36072841 http://dx.doi.org/10.1093/hr/uhac141 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of Nanjing Agricultural University 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 Article
Qin, Meng-Fan
Li, Lei-Ting
Singh, Jugpreet
Sun, Man-Yi
Bai, Bing
Li, Si-Wei
Ni, Jiang-Ping
Zhang, Jia-Ying
Zhang, Xun
Wei, Wei-Lin
Zhang, Ming-Yue
Li, Jia-Ming
Qi, Kai-Jie
Zhang, Shao-Ling
Khan, Awais
Wu, Jun
Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear
title Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear
title_full Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear
title_fullStr Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear
title_full_unstemmed Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear
title_short Construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear
title_sort construction of a high-density bin-map and identification of fruit quality-related quantitative trait loci and functional genes in pear
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9437719/
https://www.ncbi.nlm.nih.gov/pubmed/36072841
http://dx.doi.org/10.1093/hr/uhac141
work_keys_str_mv AT qinmengfan constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT lileiting constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT singhjugpreet constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT sunmanyi constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT baibing constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT lisiwei constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT nijiangping constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT zhangjiaying constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT zhangxun constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT weiweilin constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT zhangmingyue constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT lijiaming constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT qikaijie constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT zhangshaoling constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT khanawais constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear
AT wujun constructionofahighdensitybinmapandidentificationoffruitqualityrelatedquantitativetraitlociandfunctionalgenesinpear