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真菌中依赖内部核糖体进入位点(IRES)的翻译基因:计算预测、系统发育保守性及功能关联

IRES-dependent translated genes in fungi: computational prediction, phylogenetic conservation and functional association.

作者信息

Peguero-Sanchez Esteban, Pardo-Lopez Liliana, Merino Enrique

机构信息

Departamento de Microbiología Molecular, Instituto de Biotecnología, UNAM, Av. Universidad 2001, Cuernavaca, Morelos, CP 62210, Mexico.

出版信息

BMC Genomics. 2015 Dec 15;16:1059. doi: 10.1186/s12864-015-2266-x.

Abstract

BACKGROUND

The initiation of translation via cellular internal ribosome entry sites plays an important role in the stress response and certain physiological conditions in which canonical cap-dependent translation initiation is compromised. Currently, only a limited number of these regulatory elements have been experimentally identified. Notably, cellular internal ribosome entry sites lack conservation of both the primary sequence and mRNA secondary structure, rendering their identification difficult. Despite their biological importance, the currently available computational strategies to predict them have had limited success. We developed a bioinformatic method based on a support vector machine for the prediction of internal ribosome entry sites in fungi using the 5'-UTR sequences of 20 non-redundant fungal organisms. Additionally, we performed a comparative analysis and characterization of the functional relationships among the gene products predicted to be translated by this cap-independent mechanism.

RESULTS

Using our method, we predicted 6,532 internal ribosome entry sites in 20 non-redundant fungal organisms. Some orthologous groups were enriched with our positive predictions. This is the case of the HSP70 chaperone family, which remarkably has two verified internal ribosome entry sites, one in humans and the other in flies. A second example is the orthologous group of the eIF4G repression protein Sbp1p, which has two homologous genes known to be translated by this cap-independent mechanism, one in mice and the other in yeast. These examples emphasize the wide conservation of these regulatory elements as a result of selective pressure. In addition, we performed a protein-protein interaction network characterization of the gene products of our positive predictions using Saccharomyces cerevisiae as a model, which revealed a highly connected and modular topology, suggesting a functional association. A remarkable example of this functional association is our prediction of internal ribosome entry sites elements in three components of the RNA polymerase II mediator complex.

CONCLUSIONS

We developed a method for the prediction of cellular internal ribosome entry sites that may guide experimental and bioinformatic analyses to increase our understanding of protein translation regulation. Our analysis suggests that fungi show evolutionary conservation and functional association of proteins translated by this cap-independent mechanism.

摘要

背景

通过细胞内部核糖体进入位点起始翻译在应激反应以及某些经典帽依赖性翻译起始受损的生理条件中发挥着重要作用。目前,通过实验鉴定的此类调控元件数量有限。值得注意的是,细胞内部核糖体进入位点在一级序列和mRNA二级结构上均缺乏保守性,这使得它们的鉴定变得困难。尽管其具有生物学重要性,但目前可用的预测它们的计算策略取得的成功有限。我们基于支持向量机开发了一种生物信息学方法,利用20种非冗余真菌生物体的5'-UTR序列预测真菌中的内部核糖体进入位点。此外,我们对预计通过这种非帽依赖性机制翻译的基因产物之间的功能关系进行了比较分析和表征。

结果

使用我们的方法,我们在20种非冗余真菌生物体中预测了6532个内部核糖体进入位点。一些直系同源组在我们的阳性预测中富集。热休克蛋白70伴侣家族就是这种情况,该家族明显有两个已证实的内部核糖体进入位点,一个在人类中,另一个在果蝇中。第二个例子是eIF4G抑制蛋白Sbp1p的直系同源组,其有两个已知通过这种非帽依赖性机制翻译的同源基因,一个在小鼠中,另一个在酵母中。这些例子强调了由于选择压力这些调控元件具有广泛的保守性。此外,我们以酿酒酵母为模型对阳性预测的基因产物进行了蛋白质-蛋白质相互作用网络表征,结果显示出高度连接和模块化的拓扑结构,表明存在功能关联。这种功能关联的一个显著例子是我们对RNA聚合酶II中介复合物三个组分中的内部核糖体进入位点元件的预测。

结论

我们开发了一种预测细胞内部核糖体进入位点的方法,该方法可指导实验和生物信息学分析,以增进我们对蛋白质翻译调控的理解。我们的分析表明,真菌在通过这种非帽依赖性机制翻译的蛋白质方面表现出进化保守性和功能关联。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d823/4678720/84f7994be4fe/12864_2015_2266_Fig1_HTML.jpg

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