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基于分型数据的距离系统发育推断:一种统一的观点。

Distance-based phylogenetic inference from typing data: a unifying view.

机构信息

Instituto Superior de Engenharia de Lisboa, Instituto Politécnico de Lisboa, and a researcher at INESC-ID.

Instituto Superior Técnico, Universidade de Lisboa and a researcher at INESC-ID.

出版信息

Brief Bioinform. 2021 May 20;22(3). doi: 10.1093/bib/bbaa147.

Abstract

Typing methods are widely used in the surveillance of infectious diseases, outbreaks investigation and studies of the natural history of an infection. Moreover, their use is becoming standard, in particular with the introduction of high-throughput sequencing. On the other hand, the data being generated are massive and many algorithms have been proposed for a phylogenetic analysis of typing data, addressing both correctness and scalability issues. Most of the distance-based algorithms for inferring phylogenetic trees follow the closest pair joining scheme. This is one of the approaches used in hierarchical clustering. Moreover, although phylogenetic inference algorithms may seem rather different, the main difference among them resides on how one defines cluster proximity and on which optimization criterion is used. Both cluster proximity and optimization criteria rely often on a model of evolution. In this work, we review, and we provide a unified view of these algorithms. This is an important step not only to better understand such algorithms but also to identify possible computational bottlenecks and improvements, important to deal with large data sets.

摘要

分型方法广泛应用于传染病监测、暴发调查和感染自然史研究。此外,随着高通量测序的引入,其使用也变得越来越标准。另一方面,生成的数据非常庞大,已经提出了许多算法来对分型数据进行系统发育分析,以解决正确性和可扩展性问题。大多数基于距离的推断系统发育树的算法都遵循最近对连接方案。这是层次聚类中使用的方法之一。此外,尽管系统发育推断算法可能看起来非常不同,但它们之间的主要区别在于如何定义聚类接近度以及使用哪个优化标准。聚类接近度和优化标准通常都依赖于进化模型。在这项工作中,我们对这些算法进行了回顾,并提供了一个统一的视图。这不仅是更好地理解这些算法的重要步骤,也是确定可能的计算瓶颈和改进的重要步骤,这对于处理大型数据集非常重要。

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