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高通量单核苷酸多态性基因分型在高度杂合基因组的桉树:分析成功率、多态性和跨物种的可转移性。

High-throughput SNP genotyping in the highly heterozygous genome of Eucalyptus: assay success, polymorphism and transferability across species.

机构信息

EMBRAPA Genetic Resources and Biotechnology-Estação Parque Biológico, final W5 norte, Brasilia, Brazil.

出版信息

BMC Plant Biol. 2011 Apr 14;11:65. doi: 10.1186/1471-2229-11-65.

Abstract

BACKGROUND

High-throughput SNP genotyping has become an essential requirement for molecular breeding and population genomics studies in plant species. Large scale SNP developments have been reported for several mainstream crops. A growing interest now exists to expand the speed and resolution of genetic analysis to outbred species with highly heterozygous genomes. When nucleotide diversity is high, a refined diagnosis of the target SNP sequence context is needed to convert queried SNPs into high-quality genotypes using the Golden Gate Genotyping Technology (GGGT). This issue becomes exacerbated when attempting to transfer SNPs across species, a scarcely explored topic in plants, and likely to become significant for population genomics and inter specific breeding applications in less domesticated and less funded plant genera.

RESULTS

We have successfully developed the first set of 768 SNPs assayed by the GGGT for the highly heterozygous genome of Eucalyptus from a mixed Sanger/454 database with 1,164,695 ESTs and the preliminary 4.5X draft genome sequence for E. grandis. A systematic assessment of in silico SNP filtering requirements showed that stringent constraints on the SNP surrounding sequences have a significant impact on SNP genotyping performance and polymorphism. SNP assay success was high for the 288 SNPs selected with more rigorous in silico constraints; 93% of them provided high quality genotype calls and 71% of them were polymorphic in a diverse panel of 96 individuals of five different species.SNP reliability was high across nine Eucalyptus species belonging to three sections within subgenus Symphomyrtus and still satisfactory across species of two additional subgenera, although polymorphism declined as phylogenetic distance increased.

CONCLUSIONS

This study indicates that the GGGT performs well both within and across species of Eucalyptus notwithstanding its nucleotide diversity ≥ 2%. The development of a much larger array of informative SNPs across multiple Eucalyptus species is feasible, although strongly dependent on having a representative and sufficiently deep collection of sequences from many individuals of each target species. A higher density SNP platform will be instrumental to undertake genome-wide phylogenetic and population genomics studies and to implement molecular breeding by Genomic Selection in Eucalyptus.

摘要

背景

高通量 SNP 基因分型已成为植物物种分子育种和群体基因组学研究的基本要求。已报道了几种主要作物的大规模 SNP 开发。现在人们越来越感兴趣的是将遗传分析的速度和分辨率扩展到具有高度杂合基因组的异交物种。当核苷酸多样性较高时,需要对目标 SNP 序列上下文进行精细诊断,以便使用 Golden Gate 基因分型技术 (GGGT) 将查询的 SNP 转换为高质量的基因型。当试图在植物中几乎没有探索过的物种之间转移 SNP 时,这个问题会变得更加严重,并且对于群体基因组学和较少驯化和资金较少的植物属的种间育种应用可能变得非常重要。

结果

我们已成功地从包含 1,164,695 个 EST 的混合 Sanger/454 数据库和初步的 4.5X 大桉草案基因组序列中,为高度杂合的桉基因组开发了第一套 768 个经 GGGT 检测的 SNP。对 SNP 过滤要求的系统评估表明,对 SNP 周围序列的严格限制会对 SNP 基因分型性能和多态性产生重大影响。通过更严格的计算机筛选约束选择的 288 个 SNP 的 SNP 检测成功率很高;其中 93%提供了高质量的基因型调用,并且在来自五个不同物种的 96 个个体的多样化面板中,71%的 SNP 是多态的。尽管随着系统发育距离的增加,多态性下降,但 SNP 的可靠性在属于 Symphomyrtus 亚属三个部分的 9 种桉树中仍然很高,并且在另外两个亚属的两个物种中仍然令人满意。

结论

尽管桉核苷酸多样性≥2%,但 GGGT 在桉树内和跨物种的表现都很好。在多个桉树物种中开发更多信息丰富的 SNP 是可行的,尽管强烈依赖于对每个目标物种的许多个体进行代表和足够深的序列收集。更密集的 SNP 平台将有助于开展全基因组系统发育和群体基因组学研究,并在桉树中实施基于基因组选择的分子育种。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e636/3090336/cb804df2b0ed/1471-2229-11-65-1.jpg

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