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EGENES: Transcriptome-based plant database of genes with metabolic pathway information and expressed sequence tag indices in KEGG

机译:EGENES:基于转录组的植物数据库,其基因具有代谢途径信息和KEGG中表达的序列标签指数

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摘要

EGENES is a knowledge- based database for efficient analysis of plant expressed sequence tags (ESTs) that was recently added to the KEGG suite of databases. It links plant genomic information with higher order functional information in a single database. It also provides gene indices for each genome. The genomic information in EGENES is a collection of EST contigs constructed from assembly of ESTs. Due to the extremely large genomes of plant species, the bulk collection of data such as ESTs is a quick way to capture a complete repertoire of genes expressed in an organism. Using ESTs for reconstructing metabolic pathways is a new expansion in KEGG and provides researchers with a new resource for species in which only EST sequences are available. Functional annotation in EGENES is a process of linking a set of genes/transcripts in each genome with a network of interacting molecules in the cell. EGENES is a multispecies, integrated resource consisting of genomic, chemical, and network information containing a complete set of building blocks (genes and molecules) and wiring diagrams (biological pathways) to represent cellular functions. Using EGENES, genome- based pathway annotation and EST- based annotation can now be compared and mutually validated. The ultimate goals of EGENES will be to: bring new plant species into KEGG by clustering and annotating ESTs; abstract knowledge and principles from large- scale plant EST data; and improve computational prediction of systems of higher complexity. EGENES will be updated at least once a year. EGENES is publicly available and is accessible by the following link or by KEGG's navigation system (http://www.genome.jp/kegg-bin/create_kegg_ menu? category=plants_ egenes).
机译:EGENES是一个基于知识的数据库,用于有效分析植物表达的序列标签(EST),最近已添加到KEGG数据库套件中。它在单个数据库中将植物基因组信息与高阶功能信息链接在一起。它还提供每个基因组的基因索引。 EGENES中的基因组信息是由EST组装而成的EST重叠群的集合。由于植物物种的基因组非常庞大,因此诸如EST等数据的大量收集是捕获生物体中表达的基因完整库的快速方法。使用EST重建代谢途径是KEGG的一项新扩展,它为研究人员提供了仅EST序列可用的物种的新资源。 EGENES中的功能注释是将每个基因组中的一组基因/转录物与细胞中相互作用分子网络连接起来的过程。 EGENES是一种多物种的综合资源,由基因组,化学和网络信息组成,包含一整套表示细胞功能的构件(基因和分子)和接线图(生物途径)。使用EGENES,现在可以比较和相互验证基于基因组的途径注释和基于EST的注释。 EGENES的最终目标将是:通过对EST进行聚类和注释将新植物种引入KEGG;大规模植物EST数据的抽象知识和原理;并改善复杂度更高的系统的计算预测。 EGENES至少每年更新一次。 EGENES是公开可用的,可以通过以下链接或KEGG的导航系统进行访问(http://www.genome.jp/kegg-bin/create_kegg_菜单?category = plants_ egenes)。

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