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AlexSys: a knowledge-based expert system for multiple sequence alignment construction and analysis

机译:AlexSys:基于知识的多序列比对构建和分析专家系统

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摘要

Multiple sequence alignment (MSA) is a cornerstone of modern molecular biology and represents a unique means of investigating the patterns of conservation and diversity in complex biological systems. Many different algorithms have been developed to construct MSAs, but previous studies have shown that no single aligner consistently outperforms the rest. This has led to the development of a number of ‘meta-methods’ that systematically run several aligners and merge the output into one single solution. Although these methods generally produce more accurate alignments, they are inefficient because all the aligners need to be run first and the choice of the best solution is made a posteriori. Here, we describe the development of a new expert system, AlexSys, for the multiple alignment of protein sequences. AlexSys incorporates an intelligent inference engine to automatically select an appropriate aligner a priori, depending only on the nature of the input sequences. The inference engine was trained on a large set of reference multiple alignments, using a novel machine learning approach. Applying AlexSys to a test set of 178 alignments, we show that the expert system represents a good compromise between alignment quality and running time, making it suitable for high throughput projects. AlexSys is freely available from http://alnitak.u-strasbg.fr/∼aniba/alexsys.
机译:多序列比对(MSA)是现代分子生物学的基石,并且是研究复杂生物系统中保护和多样性模式的独特手段。已经开发出许多不同的算法来构造MSA,但是以前的研究表明,没有任何一个对准器能够始终胜过其他的对准器。这导致了许多“元方法”的开发,这些“方法”系统地运行多个对齐器并将输出合并为一个解决方案。尽管这些方法通常可以产生更精确的比对,但它们效率低下,因为所有比对仪都需要首先运行,并且最佳解决方案的选择是后验的。在这里,我们描述了蛋白质序列多重比对的新专家系统AlexSys的开发。 AlexSys集成了智能推理引擎,可以自动根据先验顺序自动选择合适的比对器。使用一种新颖的机器学习方法,对推理引擎进行了大量参考多重比对的训练。将AlexSys应用于178个路线的测试集,我们证明专家系统代表了路线质量和运行时间之间的良好折衷,使其适用于高通量项目。可从http://alnitak.u-strasbg.fr/~aniba/alexsys免费获得AlexSys。

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