Shlomi Tomer, Herrgard Markus, Portnoy Vasiliy, Naim Efrat, Palsson Bernhard Ø, Sharan Roded, Ruppin Eytan
School of Computer Science, Tel-Aviv University, Tel-Aviv 69978, Israel.
Genome Res. 2007 Nov;17(11):1626-33. doi: 10.1101/gr.6678707. Epub 2007 Sep 25.
The task of deriving a functional annotation for genes is complex as their involvement in various processes depends on multiple factors such as environmental conditions and genetic backup mechanisms. This study employs a large-scale model of the metabolism of Saccharomyces cerevisiae to investigate the function of yeast genes and derive a condition-dependent annotation (CDA) for their involvement in major metabolic processes under various genetic and environmental conditions. The resulting CDA is validated on a large scale and is shown to be superior to the corresponding Gene Ontology (GO) annotation, by showing that genes annotated with the same CDA term tend to be more coherently conserved in evolution and display greater expression coherency than those annotated with the same GO term. The CDA gives rise to new kinds of functional condition-dependent metabolic pathways, some of which are described and further examined via substrate auxotrophy measurements of knocked-out strains. The CDA presented is likely to serve as a new reference source for metabolic gene annotation.
为基因推导功能注释的任务很复杂,因为它们在各种过程中的参与取决于多种因素,如环境条件和基因备份机制。本研究采用酿酒酵母代谢的大规模模型来研究酵母基因的功能,并推导其在各种遗传和环境条件下参与主要代谢过程的条件依赖注释(CDA)。所得的CDA经过大规模验证,结果表明,与相应的基因本体论(GO)注释相比,它具有优越性,因为用相同CDA术语注释的基因在进化中往往更一致地保守,并且比用相同GO术语注释的基因表现出更大的表达一致性。CDA产生了新型的依赖条件的功能代谢途径,其中一些通过敲除菌株的底物营养缺陷型测量进行了描述和进一步研究。所呈现的CDA可能会成为代谢基因注释的新参考来源。