Navigating a Fine Balance: Point-Mutant Cheater Viruses Disrupt the Viral Replication Cycle.

IF 11 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Moran Meir, Arielle Kahn, Carmel Farage, Yael Maoz, Noam Harel, Adi Ben Zvi, Shir Segev, Maria Volkov, Ravit Yahud, Uri Gophna, Adi Stern
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Abstract

Cheater viruses cannot replicate on their own yet replicate faster than the wild type (WT) when the 2 viruses coinfect the same cell. Cheaters must possess dual genetic features: a defect, which leads to their inability to infect cells on their own, and a selective advantage over WT during coinfection. Previously, we have discovered 2 point-mutant cheaters of the MS2 bacteriophage. Here, we set out to discover the possible repertoire of cheater MS2 viruses by performing experimental evolution at a very high multiplicity of infection. Our results revealed a third point-mutant cheater that arose in 8 biological replicas. Each of the 3 primary cheaters disrupts the fine balance necessary for phage replication, in different ways that create a defect + advantage. We found that over time, the point-mutant cheaters accumulate additional secondary mutations, which alter other stages of the viral replication cycle, complementing the disruptions created by the original cheater. Intriguingly, cheater and secondary mutations almost always reside in very close proximity on the genome. This region encodes for multiple functions: overlapping reading frames as well as overlapping RNA structures critical for transitioning from one stage to another in the viral replication cycle. This region of overlap explains the dual functions of cheaters, as one mutation can have pleiotropic effects. Overall, these findings underscore how viruses, whose dense genomes often have overlapping functions, can easily evolve point-mutant cheaters, and how cheaters can evolve to alter the intricate balance of the viral replication cycle.

微妙的平衡:点突变作弊病毒扰乱病毒复制周期。
作弊病毒不能自己复制,但当两种病毒同时感染同一个细胞时,它的复制速度比野生型(WT)快。作弊者必须具有双重遗传特征:一个缺陷,这导致他们无法感染自己的细胞,以及在共同感染时对WT的选择优势。之前,我们已经发现了两个点突变的MS2噬菌体骗子。在这里,我们着手通过在非常高的感染多重性(MOI)下进行实验进化来发现可能的作弊MS2病毒库。我们的研究结果揭示了在八个生物复制品中出现的第三个点突变骗子。这三种主要的作弊者都以不同的方式破坏了噬菌体复制所必需的微妙平衡,从而产生了缺陷+优势。我们发现,随着时间的推移,点突变作弊者积累了额外的二次突变,这些突变改变了病毒复制周期的其他阶段,补充了原始作弊者造成的破坏。有趣的是,作弊和二次突变几乎总是存在于非常接近的基因组。该区域编码多种功能:重叠的阅读框以及重叠的RNA结构,这些结构在病毒复制周期中从一个阶段过渡到另一个阶段至关重要。这个重叠区域解释了作弊者的双重功能,因为一个突变可能具有多效性。总的来说,这些发现强调了密集基因组通常具有重叠功能的病毒如何容易进化出点突变的作弊者,以及作弊者如何进化以改变病毒复制周期的复杂平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular biology and evolution
Molecular biology and evolution 生物-进化生物学
CiteScore
19.70
自引率
3.70%
发文量
257
审稿时长
1 months
期刊介绍: Molecular Biology and Evolution Journal Overview: Publishes research at the interface of molecular (including genomics) and evolutionary biology Considers manuscripts containing patterns, processes, and predictions at all levels of organization: population, taxonomic, functional, and phenotypic Interested in fundamental discoveries, new and improved methods, resources, technologies, and theories advancing evolutionary research Publishes balanced reviews of recent developments in genome evolution and forward-looking perspectives suggesting future directions in molecular evolution applications.
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