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冠状病毒中的重组模式。

Recombination patterns in coronaviruses.

作者信息

Müller Nicola F, Kistler Kathryn E, Bedford Trevor

机构信息

Vaccine and Infectious Disease Division, Fred Hutchinson Cancer Research Center, Seattle, WA, USA.

Molecular and Cellular Biology Program, University of Washington, Seattle, WA, USA.

出版信息

bioRxiv. 2022 Feb 8:2021.04.28.441806. doi: 10.1101/2021.04.28.441806.

Abstract

As shown during the SARS-CoV-2 pandemic, phylogenetic and phylodynamic methods are essential tools to study the spread and evolution of pathogens. One of the central assumptions of these methods is that the shared history of pathogens isolated from different hosts can be described by a branching phylogenetic tree. Recombination breaks this assumption. This makes it problematic to apply phylogenetic methods to study recombining pathogens, including, for example, coronaviruses. Here, we introduce a Markov chain Monte Carlo approach that allows inference of recombination networks from genetic sequence data under a template switching model of recombination. Using this method, we first show that recombination is extremely common in the evolutionary history of SARS-like coronaviruses. We then show how recombination rates across the genome of the human seasonal coronaviruses 229E, OC43 and NL63 vary with rates of adaptation. This suggests that recombination could be beneficial to fitness of human seasonal coronaviruses. Additionally, this work sets the stage for Bayesian phylogenetic tracking of the spread and evolution of SARS-CoV-2 in the future, even as recombinant viruses become prevalent.

摘要

正如在新冠疫情期间所显示的那样,系统发育和系统动力学方法是研究病原体传播和进化的重要工具。这些方法的一个核心假设是,从不同宿主分离出的病原体的共同历史可以用分支系统发育树来描述。重组打破了这一假设。这使得应用系统发育方法来研究重组病原体(包括例如冠状病毒)变得有问题。在这里,我们介绍一种马尔可夫链蒙特卡罗方法,该方法允许在重组模板切换模型下从基因序列数据推断重组网络。使用这种方法,我们首先表明重组在类严重急性呼吸综合征冠状病毒的进化历史中极为常见。然后我们展示了人类季节性冠状病毒229E、OC43和NL63全基因组的重组率如何随适应率而变化。这表明重组可能对人类季节性冠状病毒的适应性有益。此外,这项工作为未来对新冠病毒传播和进化的贝叶斯系统发育追踪奠定了基础,即使重组病毒变得普遍。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6340/8842585/440bfc0d09b5/nihpp-2021.04.28.441806v2-f0001.jpg

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