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A Robust Method for Finding the Automated Best Matched Genes Based on Grouping Similar Fragments of Large-Scale References for Genome Assembly

机译:基于大型参考基因组装配相似片段分组的自动最佳匹配基因的稳健方法

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Big data research on genomic sequence analysis has accelerated considerably with the development of next-generation sequencing. Currently, research on genomic sequencing has been conducted using various methods, ranging from the assembly of reads consisting of fragments to the annotation of genetic information using a database that contains known genome information. According to the development, most tools to analyze the new organelles’ genetic information requires different input formats such as FASTA, GeneBank (GB) and tab separated files. The various data formats should be modified to satisfy the requirements of the gene annotation system after genome assembly. In addition, the currently available tools for the analysis of organelles are usually developed only for specific organisms, thus the need for gene prediction tools, which are useful for any organism, has been increased. The proposed method—termed the genome_search_plotter—is designed for the easy analysis of genome information from the related references without any file format modification. Anyone who is interested in intracellular organelles such as the nucleus, chloroplast, and mitochondria can analyze the genetic information using the assembled contig of an unknown genome and a reference model without any modification of the data from the assembled contig.
机译:随着下一代测序的发展,有关基因组序列分析的大数据研究已大大加速。当前,已经使用各种方法进行了基因组测序的研究,从组装由片段组成的阅读片段到使用包含已知基因组信息的数据库对遗传信息进行注释。根据发展,大多数分析新细胞器遗传信息的工具都需要不同的输入格式,例如FASTA,GeneBank(GB)和制表符分隔的文件。基因组组装后,应修改各种数据格式以满足基因注释系统的要求。另外,通常仅针对特定生物开发用于细胞器分析的当前可用工具,因此增加了对可用于任何生物的基因预测工具的需求。所提出的方法-称为基因组搜索-绘图仪-旨在轻松分析相关参考文献中的基因组信息,而无需进行任何文件格式修改。任何对细胞内细胞器(如细胞核,叶绿体和线粒体)感兴趣的人都可以使用未知基因组的组装重叠群和参考模型来分析遗传信息,而无需修改组装重叠群的数据。

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