首页> 外文会议>Pacific symposium on biocomputing >PREDICTING THE OPERON STRUCTURE OP BACILLUS SUBTILIS USING OPERON LENGTH, INTERGENE DISTANCE, AND GENE EXPRESSION INFORMATION
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PREDICTING THE OPERON STRUCTURE OP BACILLUS SUBTILIS USING OPERON LENGTH, INTERGENE DISTANCE, AND GENE EXPRESSION INFORMATION

机译:使用操纵子长度,互际距离和基因表达信息预测操纵子结构OP枯草芽孢杆菌

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We predict the operon structure of the Bacillus subtilis genome using the average operon length, the distance between genes in base pairs, and the similarity in gene expression measured in time course and gene disruptant experiments. By expressing the operon prediction for each method as a Bayesian probability, we are able to combine the four prediction methods into a Bayesian classifier in a statistically rigorous manner. The discriminant value for the Bayesian classifier can be chosen by considering the associated cost of misclassifying an operon or a non-operon gene pair. For equal costs, an overall accuracy of 88.7% was found in a leave-one-out analysis for the joint Bayesian classifier, whereas the individual information sources yielded accuracies of 58.1%, 83.1%, 77.3%, and 71.8% respectively.
机译:我们使用平均操纵子长度预测芽孢杆菌基因组的操纵子结构,基对基因之间的距离,以及在时间过程中测量的基因表达的相似性和基因破坏剂实验。通过表达每个方法的操纵子预测作为贝叶斯概率,我们能够以统计上严谨的方式将四种预测方法与贝叶斯分类器组合到贝叶斯分类器中。可以通过考虑错误分类操纵子或非操纵子基因对的相关成本来选择贝叶斯分类器的判别价值。对于平等的成本,在关节贝叶斯分类器的休假分析中发现了88.7%的整体准确性,而个别信息来源分别产生58.1%,83.1%,77.3%和71.8%的精度。

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