大绣球基因组序列及其在重瓣花表型分析中的应用。

IF 3.9 2区 生物学 Q1 GENETICS & HEREDITY DNA Research Pub Date : 2021-01-19 DOI:10.1093/dnares/dsaa026
Kenji Nashima, Kenta Shirasawa, Andrea Ghelfi, Hideki Hirakawa, Sachiko Isobe, Takuro Suyama, Takuya Wada, Takeshi Kurokura, Tatuya Uemachi, Mirai Azuma, Midori Akutsu, Masaharu Kodama, Yoshiko Nakazawa, Kiyoshi Namai
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引用次数: 8

摘要

大叶绣球(hydrangea macrophylla)重瓣花表型是其最重要的性状之一,具有很高的观赏价值。本研究获取了绣球花的基因组序列信息,以探索绣球花重瓣花产生的有效DNA标记和致病基因。采用单分子实时测序数据,然后进行Hi-C分析。从绣球花杂合基因组中获得了两个单倍型相序列。其中一个组件包含3779个支架(长度2.256 Gb, N50为1.5 Mb),另一个组件也包含3779个支架(长度2.227 Gb, N50为1.4 Mb)。该序列共预测了36930个基因,其中每个单倍型分别发现32205个和32222个。构建了一对18个伪分子,并构建了高密度单核苷酸多态性(SNP)遗传连锁图谱。利用基因组序列数据和两个F2群体,发现了与双花位点(djo和dsu)相关的单核苷酸多态性。建立了djo和dsu的DNA标记,可以分别区分每个位点的隐性重花等位基因。绿叶基因很可能是dsu的致病基因,因为在dsu的重瓣花继承中特别观察到移码。
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Genome sequence of Hydrangea macrophylla and its application in analysis of the double flower phenotype.

Owing to its high ornamental value, the double flower phenotype of hydrangea (Hydrangea macrophylla) is one of its most important traits. In this study, genome sequence information was obtained to explore effective DNA markers and the causative genes for double flower production in hydrangea. Single-molecule real-time sequencing data followed by a Hi-C analysis were employed. Two haplotype-phased sequences were obtained from the heterozygous genome of hydrangea. One assembly consisted of 3,779 scaffolds (2.256 Gb in length and N50 of 1.5 Mb), the other also contained 3,779 scaffolds (2.227 Gb in length, and N50 of 1.4 Mb). A total of 36,930 genes were predicted in the sequences, of which 32,205 and 32,222 were found in each haplotype. A pair of 18 pseudomolecules was constructed along with a high-density single-nucleotide polymorphism (SNP) genetic linkage map. Using the genome sequence data, and two F2 populations, the SNPs linked to double flower loci (djo and dsu) were discovered. DNA markers linked to djo and dsu were developed, and these could distinguish the recessive double flower allele for each locus, respectively. The LEAFY gene is a very likely candidate as the causative gene for dsu, since frameshift was specifically observed in the double flower accession with dsu.

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来源期刊
DNA Research
DNA Research 生物-遗传学
CiteScore
6.00
自引率
4.90%
发文量
39
审稿时长
4.5 months
期刊介绍: DNA Research is an internationally peer-reviewed journal which aims at publishing papers of highest quality in broad aspects of DNA and genome-related research. Emphasis will be made on the following subjects: 1) Sequencing and characterization of genomes/important genomic regions, 2) Comprehensive analysis of the functions of genes, gene families and genomes, 3) Techniques and equipments useful for structural and functional analysis of genes, gene families and genomes, 4) Computer algorithms and/or their applications relevant to structural and functional analysis of genes and genomes. The journal also welcomes novel findings in other scientific disciplines related to genomes.
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