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Application of Genomic Technologies to the Breeding of Trees

机译:基因组技术在树木繁殖中的应用

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The recent introduction of next generation sequencing (NGS) technologies represents a major revolution in providing new tools for identifying the genes and/or genomic intervals controlling important traits for selection in breeding programs. In perennial fruit trees with long generation times and large sizes of adult plants, the impact of these techniques is even more important. High-throughput DNA sequencing technologies have provided complete annotated sequences in many important tree species. Most of the high-throughput genotyping platforms described are being used for studies of genetic diversity and population structure. Dissection of complex traits became possible through the availability of genome sequences along with phenotypic variation data, which allow to elucidate the causative genetic differences that give rise to observed phenotypic variation. Association mapping facilitates the association between genetic markers and phenotype in unstructured and complex populations, identifying molecular markers for assisted selection and breeding. Also, genomic data provide in silico identification and characterization of genes and gene families related to important traits, enabling new tools for molecular marker assisted selection in tree breeding. Deep sequencing of transcriptomes is also a powerful tool for the analysis of precise expression levels of each gene in a sample. It consists in quantifying short cDNA reads, obtained by NGS technologies, in order to compare the entire transcriptomes between genotypes and environmental conditions. The miRNAs are non-coding short RNAs involved in the regulation of different physiological processes, which can be identified by high-throughput sequencing of RNA libraries obtained by reverse transcription of purified short RNAs, and by in silico comparison with known miRNAs from other species. All together, NGS techniques and their applications have increased the resources for plant breeding in tree species, closing the former gap of genetic tools between trees and annual species.
机译:最近引入下一代测序(NGS)技术代表了提供新工具的主要革命,用于识别控制在育种计划中选择的重要特性的基因和/或基因组间隔。在多年生果树在长一代时间和大尺寸的成年植物,这些技术的影响更为重要。高通量DNA测序技术在许多重要的树种中提供了完整的注释序列。所描述的大多数高通量基因分型平台用于研究遗传多样性和人口结构。通过基因组序列以及表型变异数据的可用性,复杂性状的解剖变得可能,这允许阐明产生观察到的表型变异的原因遗传差异。关联映射有助于遗传标志物与非结构化和复杂种群中的表型之间的关联,鉴定分子标志物以辅助选择和育种。此外,基因组数据提供了与重要性状相关的基因和基因家族的基因鉴定和表征,使树木繁殖中的分子标记辅助选择的新工具。转录om的深度测序也是分析样品中每个基因的精确表达水平的强大工具。它包括量化由NGS技术获得的短cDNA读数,以便比较基因型和环境条件之间的整个转录om。 MiRNA是非编码的短RNA,参与不同生理过程的调节,可以通过通过逆转纯化的短RNA的RNA文库的高通量测序来鉴定,并通过与来自其他物种的已知miRNA的硅比较。全部,NGS技术及其应用增加了树种中植物育种的资源,依赖于树木和年度种类之间的遗传工具的前差距。

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