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将基因组学整合到桉树育种中。

Integrating genomics into Eucalyptus breeding.

作者信息

Grattapaglia Dario

机构信息

Plant Genetics Laboratory, Embrapa Recursos Genéticos e Biotecnologia, Caixa Postal 02372, 70770-900 Brasília, DF, Brasil.

出版信息

Genet Mol Res. 2004 Sep 30;3(3):369-79.

PMID:15614728
Abstract

The advent of high throughput genomic technologies has opened new perspectives in the speed, scale and detail with which one can investigate genes, genomes and complex traits in Eucalyptus species. A genomic approach to a more detailed understanding of important metabolic and physiological processes, which affect tree growth and stress resistance, and the identification of genes and their allelic variants, which determine the major chemical and physical features of wood properties, should eventually lead to new opportunities for directed genetic modifications of far-reaching economic impact in forest industry. It should be kept in mind, however, that basic breeding strategies, coupled with sophisticated quantitative methods, breeder's experience and breeder's intuition, will continue to generate significant genetic gains and have a clear measurable impact on production forestry. Even with a much more global view of genetic processes, genomics will only succeed in contributing to the development of improved industrial forests if it is strongly interconnected with intensive fieldwork and creative breeding. Integrated genomic projects involving multi-species expressed sequence tag sequencing and quantitative trait locus detection, single nucleotide polymorphism discovery for association mapping, and the development of a gene-rich physical map for the Eucalyptus genome will quickly move toward linking phenotypes to genes that control the wood formation processes that define industrial-level traits. Exploiting the full power of the superior natural phenotypic variation in wood properties found in Eucalyptus genetic resources will undoubtedly be a key factor to reach this goal.

摘要

高通量基因组技术的出现,为人们研究桉属树种的基因、基因组和复杂性状的速度、规模及细节开辟了新的视角。采用基因组学方法,能更深入地了解影响树木生长和抗逆性的重要代谢与生理过程,还能鉴定决定木材性质主要化学和物理特征的基因及其等位变异,这最终应为林业带来具有深远经济影响的定向基因改造新机遇。然而,应牢记基本的育种策略,结合精密的定量方法、育种者的经验和直觉,仍将持续带来显著的遗传增益,并对商品林生产产生明显可测的影响。即便从更宏观的视角看待遗传过程,基因组学唯有与深入的田间工作及创新育种紧密相连,才能成功助力改良工业用材林的发展。涉及多物种表达序列标签测序和数量性状位点检测、用于关联图谱分析的单核苷酸多态性发现,以及构建富含基因的桉属基因组物理图谱的综合基因组计划,将迅速朝着把表型与控制界定工业级性状的木材形成过程的基因相联系的方向迈进。充分利用桉属遗传资源中木材性质优越的自然表型变异的全部潜力,无疑是实现这一目标的关键因素。

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BMC Genomics. 2018 Jul 3;19(1):516. doi: 10.1186/s12864-018-4888-2.
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EUCANEXT: an integrated database for the exploration of genomic and transcriptomic data from Eucalyptus species.EUCANEXT:一个整合数据库,用于探索桉树物种的基因组和转录组数据。
Database (Oxford). 2017 Jan 1;2017. doi: 10.1093/database/bax079.
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Xylem transcription profiles indicate potential metabolic responses for economically relevant characteristics of Eucalyptus species.木质部转录谱表明桉树物种具有经济相关特征的潜在代谢反应。
BMC Genomics. 2013 Mar 22;14:201. doi: 10.1186/1471-2164-14-201.
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Genomic characterization of DArT markers based on high-density linkage analysis and physical mapping to the Eucalyptus genome.基于高密度连锁分析和物理图谱定位到桉树基因组的 DArT 标记的基因组特征分析。
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BMC Genomics. 2011 Apr 14;12:189. doi: 10.1186/1471-2164-12-189.