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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >SEARCHING AND MINING VISUALLY OBSERVED PHENOTYPES OF MAIZE MUTANTS
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SEARCHING AND MINING VISUALLY OBSERVED PHENOTYPES OF MAIZE MUTANTS

机译:搜索和挖掘肉眼观察到的玉米突变体表型

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There are thousands of maize mutants, which are invaluable resources for plant research. Geneticists use them to study underlying mechanisms of biochemistry, cell biology, cell development, and cell physiology. To streamline the understanding of such complex processes, researchers need the most current versions of genetic and physical maps, tools with the ability to recognize novel phenotypes or classify known phenotypes, and an intimate knowledge of the biochemical processes generating physiological and phenotypic effects. They must also know how all of these factors change and differ among species, diverse alleles, germplasms, and environmental conditions. While there are robust databases, such as MaizeGDB, for some of these types of raw data, other crucial components are missing. Moreover, the management of visually observed mutant phenotypes is still in its infant stage, let alone the complex query methods that can draw upon high-level and aggregated information to answer the questions of geneticists. In this paper, we address the scientific challenge and propose to develop a robust framework for managing the knowledge of visually observed phenotypes, mining the correlation of visual characteristics with genetic maps, and discovering the knowledge relating to cross-species conservation of visual and genetic patterns. The ultimate goal of this research is to allow a geneticist to submit phenotypic and genomic information on a mutant to a knowledge base and ask, "What genes or environmental factors cause this visually observed phenotype?".
机译:玉米突变体有成千上万种,是植物研究的宝贵资源。遗传学家使用它们来研究生物化学,细胞生物学,细胞发育和细胞生理学的潜在机制。为了简化对此类复杂过程的理解,研究人员需要最新版本的遗传图谱和物理图谱,具有识别新表型或对已知表型进行分类的能力的工具,以及对产生生理和表型效应的生化过程的深入了解。他们还必须知道所有这些因素如何在物种,不同等位基因,种质和环境条件之间变化和不同。虽然对于某些类型的原始数据有健壮的数据库(例如MaizeGDB),但其他关键组件却缺失了。而且,目视观察到的突变表型的管理仍处于婴儿期,更不用说可以利用高级和汇总信息来回答遗传学家问题的复杂查询方法了。在本文中,我们解决了科学难题,并提出建立一个强大的框架来管理视觉观察到的表型知识,挖掘视觉特征与遗传图谱的相关性以及发现与跨物种保护视觉和遗传模式有关的知识。这项研究的最终目的是让遗传学家将有关突变体的表型和基因组信息提交给知识库,并询问:“哪些基因或环境因素导致了这种视觉观察的表型?”。

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