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In-silico identification of phenotype-biased functional modules

机译:表型偏向功能模块的计算机内识别

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Background Phenotypes exhibited by microorganisms can be useful for several purposes, e.g., ethanol as an alternate fuel. Sometimes, the target phenotype maybe required in combination with other phenotypes, in order to be useful, for e.g., an industrial process may require that the organism survive in an anaerobic, alcohol rich environment and be able to feed on both hexose and pentose sugars to produce ethanol. This combination of traits may not be available in any existing organism or if they do exist, the mechanisms involved in the phenotype-expression may not be efficient enough to be useful. Thus, it may be required to genetically modify microorganisms. However, before any genetic modification can take place, it is important to identify the underlying cellular subsystems responsible for the expression of the target phenotype. Results In this paper, we develop a method to identify statistically significant and phenotypically-biased functional modules. The method can compare the organismal network information from hundreds of phenotype expressing and phenotype non-expressing organisms to identify cellular subsystems that are more prone to occur in phenotype-expressing organisms than in phenotype non-expressing organisms. We have provided literature evidence that the phenotype-biased modules identified for phenotypes such as hydrogen production (dark and light fermentation), respiration, gram-positive, gram-negative and motility, are indeed phenotype-related. Conclusion Thus we have proposed a methodology to identify phenotype-biased cellular subsystems. We have shown the effectiveness of our methodology by applying it to several target phenotypes. The code and all supplemental files can be downloaded from ( http://freescience.org/cs/phenotype-biased-biclusters/ ).
机译:微生物表现出的背景表型可用于多种目的,例如乙醇作为替代燃料。有时,可能需要将目标表型与其他表型结合使用,以使其有用,例如,工业过程可能要求有机体在厌氧,富含酒精的环境中生存,并且必须以己糖和戊糖为食生产乙醇。这些特性组合可能无法在任何现有生物中获得,或者如果确实存在,则表型表达所涉及的机制可能不够有效。因此,可能需要遗传修饰微生物。但是,在进行任何基因修饰之前,重要的是要确定引起目标表型表达的基础细胞子系统。结果在本文中,我们开发了一种方法来识别具有统计学意义和表型偏向的功能模块。该方法可以比较来自数百种表型表达和表型非表达生物的有机网络信息,以识别在表型表达生物中比在表型非表达生物中更容易发生的细胞子系统。我们提供的文献证据表明,针对表型(如产氢(暗发酵和轻发酵),呼吸作用,革兰氏阳性,革兰氏阴性和运动性)识别的表型偏向模块确实与表型有关。结论因此,我们提出了一种识别表型偏向的细胞子系统的方法。通过将其应用于几种目标表型,我们已经证明了该方法的有效性。可以从(http://freescience.org/cs/phenotype-biased-biclusters/)下载代码和所有补充文件。

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