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A Pattern Recognition Method to Detect Vulnerable Spots in an RNA Sequence for Bacterial Resistance to the Antibiotic Spectinomycin

机译:一种图案识别方法,用于检测RNA序列中的脆弱斑点,用于对抗生素抗性的细菌性抗性

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This paper describes an efficient pattern recognition method for detecting vulnerable spots within an RNA sequence. Mutations in these spots may lead to a structural change that directly relates to a change in functionality. Previously, the concept was tried on RNA genetic control elements called 'riboswitches' and other known RNA switches. Here, the concept is extended to assist in planning in-vivo experiments in general, using a new tool that we have developed called RNAMute. We apply the package RNAMute on an RNA transcript that was shown experimentally to inactivate spectinomycin resistance in Escherichia coli by creating a library of point mutations using PCR and screening to locate those mutations. Our prediction, conducted independently of the known experimental results, succeeds in matching the inactivating point mutations that were obtained by the selection experiment. Validation of the method with data available from laboratory experiment supports its use as a general predictive tool.
机译:本文描述了一种有效的模式识别方法,用于检测RNA序列内的易受攻击斑点。这些斑点中的突变可能导致结构变化,其直接涉及功能的变化。以前,在RNA遗传控制元件上尝试了称为“Riboswitch”和其他已知RNA开关的概念。在这里,该概念扩展以帮助规划体内实验,一般来说,使用我们开发的新工具称为Rnamute。我们在通过使用PCR和筛选的点突变进行实验显示的RNA转录物在RNA转录物上在实验上显示的Rnamute,以使PCR和筛选来定位那些突变的点突变。我们独立于已知的实验结果进行的预测成功地匹配通过选择实验获得的灭活点突变。使用实验室实验可获得的数据的方法验证其用作普遍预测工具的用途。

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