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一种新的可转座元件介导的机制通过截断 Veneno 蛋白导致 产生抗病毒抗性。

A novel transposable element-mediated mechanism causes antiviral resistance in through truncating the Veneno protein.

机构信息

Department of Genetics, University of Cambridge, Cambridge, CB2 3EH, United Kingdom.

Department of Ecology, University of São Paulo, 05508-220 São Paulo, Brazil.

出版信息

Proc Natl Acad Sci U S A. 2022 Jul 19;119(29):e2122026119. doi: 10.1073/pnas.2122026119. Epub 2022 Jul 11.

Abstract

Hosts are continually selected to evolve new defenses against an ever-changing array of pathogens. To understand this process, we examined the genetic basis of resistance to the A virus in In a natural population, we identified a polymorphic transposable element (TE) insertion that was associated with an ∼19,000-fold reduction in viral titers, allowing flies to largely escape the harmful effects of infection by this virulent pathogen. The insertion occurs in the protein-coding sequence of the gene which encodes a Tudor domain protein. By mutating with CRISPR-Cas9 in flies and expressing it in cultured cells, we show that the ancestral allele of the gene has no effect on viral replication. Instead, the TE insertion is a gain-of-function mutation that creates a gene encoding a novel resistance factor. Viral titers remained reduced when we deleted the TE sequence from the transcript, indicating that resistance results from the TE truncating the Veneno protein. This is a novel mechanism of virus resistance and a new way by which TEs can contribute to adaptation.

摘要

宿主不断进化出新的防御机制来抵御不断变化的病原体。为了了解这一过程,我们研究了 病毒在自然种群中对抗性的遗传基础。我们发现了一个多态转座元件(TE)的插入,它与病毒滴度降低约 19000 倍有关,使苍蝇能够在很大程度上免受这种毒力病原体的感染。该插入发生在编码 Tudor 结构域蛋白的基因的蛋白质编码序列中。通过在果蝇中使用 CRISPR-Cas9 对 进行突变,并在培养细胞中表达它,我们表明该基因的祖先等位基因对病毒复制没有影响。相反,TE 插入是一种获得功能的突变,它创造了一个编码新型抗性因子的基因。当我们从转录本中删除 TE 序列时,病毒滴度仍然降低,表明抗性是由 TE 截断 Veneno 蛋白引起的。这是一种新的抗病毒机制,也是转座元件有助于适应的一种新方式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d745/9304006/dfbe185a1cdc/pnas.2122026119fig01.jpg

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