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温度通过次级小 RNA 调节病毒诱导的转录基因沉默。

Temperature modulates virus-induced transcriptional gene silencing via secondary small RNAs.

机构信息

Institute of Molecular Plant Sciences, University of Edinburgh, Max Born Crescent, Edinburgh, EH9 3BF, UK.

出版信息

New Phytol. 2021 Oct;232(1):356-371. doi: 10.1111/nph.17586. Epub 2021 Jul 27.

Abstract

Virus-induced gene silencing (VIGS) can be harnessed to sequence-specifically degrade host transcripts and induce heritable epigenetic modifications referred to as virus-induced post-transcriptional gene silencing (ViPTGS) and virus-induced transcriptional gene silencing (ViTGS), respectively. Both ViPTGS and ViTGS enable manipulation of endogenous gene expression without the need for transgenesis. Although VIGS has been widely used in many plant species, it is not always uniform or highly efficient. The efficiency of VIGS is affected by developmental, physiological and environmental factors. Here, we use recombinant Tobacco rattle viruses (TRV) to study the effect of temperature on ViPTGS and ViTGS using GFP as a reporter gene of silencing in N. benthamiana 16c plants. We found that unlike ViPTGS, ViTGS was impaired at high temperature. Using a novel mismatch-small interfering RNA (siRNA) tool, which precisely distinguishes virus-derived (primary) from target-generated (secondary) siRNAs, we demonstrated that the lack of secondary siRNA production/amplification was responsible for inefficient ViTGS at 29°C. Moreover, inefficient ViTGS at 29°C inhibited the transmission of epigenetic gene silencing to the subsequent generations. Our finding contributes to understanding the impact of environmental conditions on primary and secondary siRNA production and may pave the way to design/optimize ViTGS for transgene-free crop improvement.

摘要

病毒诱导的基因沉默 (VIGS) 可用于特异性降解宿主转录本,并诱导可遗传的表观遗传修饰,分别称为病毒诱导的转录后基因沉默 (ViPTGS) 和病毒诱导的转录基因沉默 (ViTGS)。ViPTGS 和 ViTGS 均可在无需转基因的情况下操纵内源性基因表达。尽管 VIGS 已在许多植物物种中广泛应用,但它并不总是均匀或高效的。VIGS 的效率受到发育、生理和环境因素的影响。在这里,我们使用重组烟草脆裂病毒 (TRV) 研究温度对 GFP 作为沉默报告基因的 N. benthamiana 16c 植物中的 ViPTGS 和 ViTGS 的影响。我们发现,与 ViPTGS 不同,ViTGS 在高温下受损。使用一种新型错配小干扰 RNA (siRNA) 工具,该工具可精确区分病毒衍生的 (初级) 和靶基因生成的 (次级) siRNA,我们证明缺乏次级 siRNA 的产生/扩增是 29°C 时低效 ViTGS 的原因。此外,29°C 时低效的 ViTGS 抑制了表观遗传基因沉默向后续世代的传递。我们的发现有助于理解环境条件对初级和次级 siRNA 产生的影响,并可能为设计/优化用于无转基因作物改良的 ViTGS 铺平道路。

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