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eSkip-Finder: a machine learning-based web application and database to identify the optimal sequences of antisense oligonucleotides for exon skipping

机译:Eskip-Finder:基于机器的基于机器的Web应用程序和数据库用于识别外显子跳跃的反义寡核苷酸的最佳序列

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摘要

Exon skipping using antisense oligonucleotides (ASOs) has recently proven to be a powerful tool for mRNA splicing modulation. Several exon-skipping ASOs have been approved to treat genetic diseases worldwide. However, a significant challenge is the difficulty in selecting an optimal sequence for exon skipping. The efficacy of ASOs is often unpredictable, because of the numerous factors involved in exon skipping. To address this gap, we have developed a computational method using machine-learning algorithms that factors in many parameters as well as experimental data to design highly effective ASOs for exon skipping. eSkip-Finder (https://eskip-finder.org) is the first web-based resource for helping researchers identify effective exon skipping ASOs. eSkip-Finder features two sections: (i) a predictor of the exon skipping efficacy of novel ASOs and (ii) a database of exon skipping ASOs. The predictor facilitates rapid analysis of a given set of exon/intron sequences and ASO lengths to identify effective ASOs for exon skipping based on a machine learning model trained by experimental data. We confirmed that predictions correlated well with in vitro skipping efficacy of sequences that were not included in the training data. The database enables users to search for ASOs using queries such as gene name, species, and exon number.
机译:使用反义寡核苷酸(ASOS)的外显子跳跃最近被证明是mRNA剪接调节的强大工具。已经批准了几种外显子跳过ASOS治疗全世界的遗传疾病。然而,重大挑战是选择外显子跳跃的最佳序列的难度。由于外显子跳跃的众多因素,ASOS的功效通常是不可预测的。为了解决这一差距,我们开发了一种使用机器学习算法的计算方法,这些方法在许多参数中的因素以及设计高效的Auts Exon跳跃的实验数据。 Eskip-Finder(https://eskip-finder.org)是第一个基于网络的帮助,用于帮助研究人员识别有效的外显子跳过asos。 Eskip-Finder具有两个部分:(i)新颖的ASOS的外显子跳过功效的预测因子和(ii)外显子跳过asos的数据库。预测器促进了对给定的外显子/内含子序列和ASO长度的快速分析,以确定基于由实验数据训练的机器学习模型的外显子跳跃的有效ASO。我们确认预测良好地与不包括在训练数据中的序列的体外跳跃功效相关。数据库使用户能够使用诸如基因名称,种类和外显子编号的查询来搜索ASO。

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