Department of Plant Molecular Genetics, Centro Nacional de Biotecnología (CNB-CSIC), Campus Universidad Autónoma de Madrid, Madrid, Spain.
College of Horticulture and Plant Protection, Inner Mongolia Agricultural University, Hohhot, China.
Mol Plant Pathol. 2022 Nov;23(11):1640-1657. doi: 10.1111/mpp.13258. Epub 2022 Aug 21.
Technology based on artificial small RNAs, including artificial microRNAs (amiRNAs), exploits natural RNA silencing mechanisms to achieve silencing of endogenous genes or pathogens. This technology has been successfully employed to generate resistance against different eukaryotic viruses. However, information about viral RNA molecules effectively targeted by these small RNAs is rather conflicting, and factors contributing to the selection of virus mutants escaping the antiviral activity of virus-specific small RNAs have not been studied in detail. In this work, we transformed Nicotiana benthamiana plants with amiRNA constructs designed against the potyvirus plum pox virus (PPV), a positive-sense RNA virus, and obtained lines highly resistant to PPV infection and others showing partial resistance. These lines have allowed us to verify that amiRNA directed against genomic RNA is more efficient than amiRNA targeting its complementary strand. However, we also provide evidence that the negative-sense RNA strand is cleaved by the amiRNA-guided RNA silencing machinery. Our results show that the selection pressure posed by the amiRNA action on both viral RNA strands causes an evolutionary explosion that results in the emergence of a broad range of virus variants, which can further expand in the presence, and even in the absence, of antiviral challenges.
基于人工小 RNA 的技术,包括人工 microRNAs(amiRNAs),利用天然的 RNA 沉默机制实现内源性基因或病原体的沉默。该技术已成功用于产生对不同真核病毒的抗性。然而,关于这些小 RNA 有效靶向的病毒 RNA 分子的信息存在很大的争议,并且对于导致逃避病毒特异性小 RNA 抗病毒活性的病毒突变体选择的因素尚未进行详细研究。在这项工作中,我们用针对正链 RNA 病毒李痘病毒(PPV)的 amiRNA 构建体转化了拟南芥植物,并获得了对 PPV 感染高度抗性的系和其他表现出部分抗性的系。这些系使我们能够验证针对基因组 RNA 的 amiRNA 比靶向其互补链的 amiRNA 更有效。然而,我们也提供了证据表明,amiRNA 指导的 RNA 沉默机制切割负链 RNA。我们的结果表明,amiRNA 对两条病毒 RNA 链的作用所施加的选择压力导致了广泛的病毒变异的出现,这些变异可以在存在甚至不存在抗病毒挑战的情况下进一步扩大。