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Plant functional genomics

机译:植物功能基因组学

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Functional genome analysis of plants has entered the high-throughput stage. The complete genome information from key species such as Arabidopsis thaliana and rice is now available and will further boost the application of a range of new technologies to functional plant gene analysis. To broadly assign functions to unknown genes, different fast and multiparallel approaches are currently used and developed. These new technologies are based on known methods but are adapted and improved to accommodate for comprehensive, large-scale gene analysis, i.e. such techniques are novel in the sense that their design allows researchers to analyse many genes at the same time and at an unprecedented pace. Such methods allow analysis of the different constituents of the cell that help to deduce gene function, namely the transcripts, proteins and metabolites. Similarly the phenotypic variations of entire mutant collections can now be analysed in a much faster and more efficient way than before. The different methodologies have developed to form their own fields within the functional genomics technological platform and are termed transcriptomics, proteomics, metabolomics and phenomics. Gene function, however, cannot solely be inferred by using only one such approach. Rather, it is only by bringing together all the information collected by different functional genomic tools that one will be able to unequivocally assign functions to unknown plant genes. This review focuses on current technical developments and their impact on the field of plant functional genomics. The lower plant Physcomitrella is introduced as a new model system for gene function analysis, owing to its high rate of homologous recombination.
机译:植物的功能基因组分析已进入高通量阶段。现在可以获取拟南芥和水稻等关键物种的完整基因组信息,这将进一步促进一系列新技术在功能性植物基因分析中的应用。为了将功能广泛分配给未知基因,目前正在使用和开发不同的快速和多并行方法。这些新技术基于已知方法,但经过修改和改进以适应全面的大规模基因分析,即,从其设计允许研究人员以前所未有的速度同时分析许多基因的意义上说,这些技术是新颖的。 。这种方法可以分析有助于推断基因功能的细胞不同成分,即转录本,蛋白质和代谢产物。类似地,现在可以以比以前更快,更有效的方式分析整个突变体集合的表型变异。在功能基因组学技术平台内已形成了各自的领域,并被称为转录组学,蛋白质组学,代谢组学和表型学。但是,不能仅通过仅使用一种这样的方法来推断基因功能。相反,只有将不同功能基因组学工具收集的所有信息汇总在一起,人们才能明确地将功能分配给未知的植物基因。这篇综述着重于当前的技术发展及其对植物功能基因组学领域的影响。由于其较高的同源重组率,较低的植物小立碗藓被引入作为基因功能分析的新模型系统。

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  • 来源
    《Naturwissenschaften》 |2002年第6期|235-249|共15页
  • 作者单位

    Plant Biotechnology Albert-Ludwigs-Universität Freiburg Sonnenstrasse 5 79106 Freiburg Germany;

    Plant Biotechnology Albert-Ludwigs-Universität Freiburg Sonnenstrasse 5 79106 Freiburg Germany;

    Plant Biotechnology Albert-Ludwigs-Universität Freiburg Sonnenstrasse 5 79106 Freiburg Germany;

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