MOE Key Laboratory of Bioinformatics, Center for Plant Biology, School of Life Sciences, Tsinghua University, Beijing 100084, China.
Tsinghua-Peking Center for Life Sciences, Beijing 100084, China.
Plant Physiol. 2021 Dec 4;187(4):2865-2876. doi: 10.1093/plphys/kiab443.
Virus-induced gene silencing (VIGS) is a versatile and attractive approach for functional gene characterization in plants. Although several VIGS vectors for maize (Zea mays) have been previously developed, their utilities are limited due to low viral infection efficiency, insert instability, short maintenance of silencing, inadequate inoculation method, or abnormal requirement of growth temperature. Here, we established a Cucumber mosaic virus (CMV)-based VIGS system for efficient maize gene silencing that overcomes many limitations of VIGS currently available for maize. Using two distinct strains, CMV-ZMBJ and CMV-Fny, we generated a pseudorecombinant-chimeric (Pr) CMV. Pr CMV showed high infection efficacy but mild viral symptoms in maize. We then constructed Pr CMV-based vectors for VIGS, dubbed Pr CMV VIGS. Pr CMV VIGS is simply performed by mechanical inoculation of young maize leaves with saps of Pr CMV-infected Nicotiana benthamiana under normal growth conditions. Indeed, suppression of isopentenyl/dimethylallyl diphosphate synthase (ZmIspH) expression by Pr CMV VIGS resulted in non-inoculated leaf bleaching as early as 5 d post-inoculation (dpi) and exhibited constant and efficient systemic silencing over the whole maize growth period up to 105 dpi. Furthermore, utilizing a ligation-independent cloning (LIC) strategy, we developed a modified Pr CMV-LIC VIGS vector, allowing easy gene cloning for high-throughput silencing in maize. Thus, our Pr CMV VIGS system provides a much-improved toolbox to facilitate efficient and long-duration gene silencing for large-scale functional genomics in maize, and our pseudorecombination-chimera combination strategy provides an approach to construct efficient VIGS systems in plants.
病毒诱导的基因沉默(VIGS)是一种用于植物功能基因特征分析的多功能且有吸引力的方法。尽管已经开发了几种用于玉米(Zea mays)的 VIGS 载体,但由于病毒感染效率低、插入不稳定、沉默持续时间短、接种方法不当或生长温度要求异常,它们的用途有限。在这里,我们建立了一个基于黄瓜花叶病毒(CMV)的 VIGS 系统,用于玉米基因的高效沉默,该系统克服了目前玉米可用的 VIGS 方法的许多局限性。我们使用两个不同的株系,CMV-ZMBJ 和 CMV-Fny,生成了一种假重组嵌合(Pr)CMV。Pr CMV 在玉米中表现出高感染效率但症状轻微。然后,我们构建了基于 Pr CMV 的 VIGS 载体,称为 Pr CMV VIGS。Pr CMV VIGS 通过在正常生长条件下用 Pr CMV 感染的烟草的汁液机械接种幼嫩的玉米叶片来简单地进行。事实上,通过 Pr CMV VIGS 抑制异戊烯基/二甲基烯丙基二磷酸合酶(ZmIspH)的表达,导致非接种叶片在接种后 5 天(dpi)就出现白化,并在整个玉米生长期间持续且高效地进行系统沉默,直至 105 dpi。此外,我们利用连接酶独立克隆(LIC)策略,开发了一种改良的 Pr CMV-LIC VIGS 载体,允许进行高通量基因克隆,以在玉米中进行高效沉默。因此,我们的 Pr CMV VIGS 系统为玉米中进行大规模功能基因组学提供了一个改进的工具包,用于高效和长持续时间的基因沉默,我们的假重组嵌合组合策略为在植物中构建高效 VIGS 系统提供了一种方法。