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基于生化特性的位置矩阵:一种新的基因组序列比较方法。

Biochemical Property Based Positional Matrix: A New Approach Towards Genome Sequence Comparison.

机构信息

Computer Science and Engineering, Narula Institute of Technology, Kolkata, 700109, India.

Pure Mathematics, Calcutta University, Kolkata, 700019, India.

出版信息

J Mol Evol. 2023 Feb;91(1):93-131. doi: 10.1007/s00239-022-10082-0. Epub 2022 Dec 31.

Abstract

The growth of the genome sequence has become one of the emerging areas in the study of bioinformatics. It has led to an excessive demand for researchers to develop advanced methodologies for evolutionary relationships among species. The alignment-free methods have been proved to be more efficient and appropriate related to time and space than existing alignment-based methods for sequence analysis. In this study, a new alignment-free genome sequence comparison technique is proposed based on the biochemical properties of nucleotides. Each genome sequence can be distributed in four parameters to represent a 21-dimensional numerical descriptor using the Positional Matrix. To substantiate the proposed method, phylogenetic trees are constructed on the viral and mammalian datasets by applying the UPGMA/NJ clustering method. Further, the results of this method are compared with the results of the Feature Frequency Profiles method, the Positional Correlation Natural Vector method, the Graph-theoretic method, the Multiple Encoding Vector method, and the Fuzzy Integral Similarity method. In most cases, it is found that the present method produces more accurate results than the prior methods. Also, in the present method, the execution time for computation is comparatively small.

摘要

基因组序列的增长已成为生物信息学研究中新兴的领域之一。这导致研究人员需要开发先进的方法来研究物种之间的进化关系。与现有的基于比对的序列分析方法相比,无比对方法在时间和空间上更有效和合适。在这项研究中,提出了一种基于核苷酸生化特性的新的无比对基因组序列比较技术。每个基因组序列都可以使用位置矩阵分配到四个参数中,以表示一个 21 维数值描述符。为了验证所提出的方法,通过应用 UPGMA/NJ 聚类方法,在病毒和哺乳动物数据集上构建了系统发育树。此外,将该方法的结果与特征频率分布方法、位置相关自然向量方法、图论方法、多重编码向量方法和模糊积分相似性方法的结果进行了比较。在大多数情况下,发现该方法比以前的方法产生更准确的结果。此外,在本方法中,计算的执行时间相对较小。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bb8f/9805373/18d6182199f0/239_2022_10082_Fig1_HTML.jpg

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