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Evaluation of genome similarities using a wavelet-domain approach

机译:使用小波域法评估基因组相似性

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INTRODUCTION: Tuberculosis is listed among the top 10 causes of deaths worldwide. The resistant strains causing this disease have been considered to be responsible for public health emergencies and health security threats. As stated by the World Health Organization (WHO), around 558,000 different cases coupled with resistance to rifampicin (the most operative first-line drug) have been estimated to date. Therefore, in order to detect the resistant strains using the genomes of Mycobacterium tuberculosis (MTB), we propose a new methodology for the analysis of genomic similarities that associate the different levels of decomposition of the genome (discrete non-decimated wavelet transform) and the Hurst exponent. METHODS: The signals corresponding to the ten analyzed sequences were obtained by assessing GC content, and then these signals were decomposed using the discrete non-decimated wavelet transform along with the Daubechies wavelet with four null moments at five levels of decomposition. The Hurst exponent was calculated at each decomposition level using five different methods. The cluster analysis was performed using the results obtained for the Hurst exponent. RESULTS: The aggregated variance, differenced aggregated variance, and aggregated absolute value methods presented the formation of three groups, whereas the Peng and R/S methods presented the formation of two groups. The aggregated variance method exhibited the best results with respect to the group formation between similar strains.CONCLUSION: The evaluation of Hurst exponent associated with discrete non-decimated wavelet transform can be used as a measure of similarity between genome sequences, thus leading to a refinement in the analysis.
机译:介绍:结核病列出了全球死亡前十大原因。导致这种疾病的抗性菌株被认为是公共卫生紧急情况和健康安全威胁的原因。如世界卫生组织(世卫组织)所述,迄今为止估计约为558,000例与利福平抗利福平(最具手术的一线药物)的不同病例。因此,为了使用结核分枝杆菌(MTB)的基因组来检测抗性菌株,我们提出了一种新的方法,用于分析与基因组(离散非抽取小波变换)和的不同水平分解的基因组相似性分析赫斯特指数。方法:通过评估GC含量获得对应于十个分析的序列的信号,然后使用离散的非抽取小波变换与Daubechies小波分解,并且在五个分解的矩阵中分解这些信号。使用五种不同的方法在每个分解级别计算肿瘤指数。使用为赫斯特指数获得的结果进行集群分析。结果:聚集的方差,差异的聚集方差,聚合的绝对值方法呈现了三组的形成,而彭和R / S方法呈现了两组的形成。聚集的方差方法对相似菌株之间的组形成表现出最佳结果。结论:与离散的非抽取小波变换相关的肿瘤指数的评估可以用作基因组序列之间的相似性的量度,从而导致改进在分析中。

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