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梨高密度箱式图谱的构建及果实品质相关数量性状基因座和功能基因的鉴定

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

作者信息

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

机构信息

College of Horticulture, State Key Laboratory of Crop Genetics and Germplasm Enhancement, Nanjing Agricultural University, Nanjing 210095, China.

Plant Pathology and Plant-Microbe Section, Cornell University, Geneva, NY 14456, USA.

出版信息

Hortic Res. 2022 Jun 23;9:uhac141. doi: 10.1093/hr/uhac141. eCollection 2022.

Abstract

Pear ( 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 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 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.

摘要

梨(蔷薇科梨属)是全球温带地区种植最普遍的水果作物之一。果实品质的遗传改良是梨育种计划的基本目标。梨果实品质性状的遗传控制具有高度的数量性状特征,而高密度遗传图谱的构建有助于数量性状基因座(QTL)的精细定位和基因鉴定。区间作图是一种从大规模基因分型数据集中构建高分辨率遗传图谱的有效方法。我们对梨品种‘新高’和‘红香酥’及其176个后代进行了全基因组测序,以鉴定全基因组单核苷酸多态性(SNP)标记,用于构建梨的高密度区间图谱。该分析共产生了193万个SNP和一个由3190个标记组成的遗传区间图谱,覆盖1358.5厘摩,平均相邻间隔为0.43厘摩。通过重新锚定支架,该区间图谱以及梨中的其他高密度遗传图谱将参考基因组组装率从75.5%提高到了83.7%。定量遗传分析鉴定出了18个果实相关性状的148个QTL;其中,首次在梨中鉴定出了石细胞含量、几种关键单糖和果肉酸的QTL。对六个梨品种的基因表达分析在鉴定出的QTL区域中确定了399个候选基因,这些基因在梨果实发育阶段表现出特异性表达。最后,我们在瞬时转化实验中证实了位于第16连锁群上的一个液泡膜单糖转运蛋白相关基因在增强梨果实果糖积累方面的功能。本研究为梨果实品质改良提供了基因组和遗传资源以及潜在的候选基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69a7/9437719/2999ba8bb3f6/uhac141f1.jpg

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