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Multi-task learning for cross-platform siRNA efficacy prediction: an in-silico study

机译:跨平台siRNA功效预测的多任务学习:计算机模拟研究

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摘要

BackgroundGene silencing using exogenous small interfering RNAs (siRNAs) is now a widespread molecular tool for gene functional study and new-drug target identification. The key mechanism in this technique is to design efficient siRNAs that incorporated into the RNA-induced silencing complexes (RISC) to bind and interact with the mRNA targets to repress their translations to proteins. Although considerable progress has been made in the computational analysis of siRNA binding efficacy, few joint analysis of different RNAi experiments conducted under different experimental scenarios has been done in research so far, while the joint analysis is an important issue in cross-platform siRNA efficacy prediction. A collective analysis of RNAi mechanisms for different datasets and experimental conditions can often provide new clues on the design of potent siRNAs.
机译:背景技术使用外源性小干扰RNA(siRNA)沉默基因现在是用于基因功能研究和新药靶标鉴定的广泛分子工具。该技术的关键机制是设计有效的siRNA,将其掺入RNA诱导的沉默复合物(RISC)中以与mRNA目标结合并相互作用,从而抑制其翻译成蛋白质。尽管在siRNA结合功效的计算分析方面已经取得了长足的进展,但到目前为止,在不同实验场景下对不同RNAi实验进行的联合分析很少进行,而联合分析是跨平台siRNA功效预测中的重要问题。 。对不同数据集和实验条件的RNAi机制的集体分析通常可以为有效siRNA的设计提供新的线索。

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