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通过NbDCL3和NbDCL4加工的小干扰RNA,对本氏烟草中PcCesA3和PcOSBP1进行宿主诱导的基因沉默可赋予对辣椒疫霉的抗性。

Host-induced gene silencing of PcCesA3 and PcOSBP1 confers resistance to Phytophthora capsici in Nicotiana benthamiana through NbDCL3 and NbDCL4 processed small interfering RNAs.

作者信息

Wang Zhiwen, Gao Xiang, Zhong Shan, Li Yu, Shi Mengru, Zhang Borui, Zhang Sicong, Shen Huolin, Liu Xili

机构信息

China Agricultural University, Beijing 100193, China.

China Agricultural University, Beijing 100193, China; State Key Laboratory of Crop Stress Biology for Arid Areas, Northwest A&F University, Yangling 712110, China.

出版信息

Int J Biol Macromol. 2022 Dec 1;222(Pt B):1665-1675. doi: 10.1016/j.ijbiomac.2022.09.178. Epub 2022 Sep 24.

Abstract

Host-induced gene silencing (HIGS) is a RNA-based system depend on the biological macromolecules generated in plants to control diseases. However, the effector proteins active in the HIGS are uncertain, which impedes its further application, especially for oomycete that lack efficient HIGS targets. Phytophthora capsici is an important oomycete causes blight in over 70 crops. Here, we comprehensively screened efficient HIGS vectors targeting PcCesA3 or PcOSBP1 in P. capsici to better control it and explore the characteristics of efficient HIGS vectors. Among the 26 vectors with different lengths and structures, we found that hairpin vectors with a 70 nt loop and ~ 500 bp stem showed the highest control efficacy, with the expressing of the screened vectors, the infection and fertility of P. capsici were greatly inhibited in transgenic Nicotiana benthamiana. Based on these efficient vectors, we demonstrated that the amount of HIGS vector generated small interfering RNAs (siRNAs) was positively related to gene silencing efficiency and resistance, and that NbDCL3 and NbDCL4 were the key effectors producing siRNAs. This work discovers the principles for efficient HIGS vectors design, and elucidates the molecular mechanism of HIGS, which could benefit the control of many other plant diseases based on HIGS.

摘要

寄主诱导的基因沉默(HIGS)是一种基于RNA的系统,它依赖植物中产生的生物大分子来控制病害。然而,在HIGS中起作用的效应蛋白尚不确定,这阻碍了其进一步应用,尤其是对于缺乏有效HIGS靶点的卵菌。辣椒疫霉是一种重要的卵菌,可导致70多种作物发生疫病。在此,我们全面筛选了针对辣椒疫霉中PcCesA3或PcOSBP1的高效HIGS载体,以更好地控制该病害,并探索高效HIGS载体的特性。在26种具有不同长度和结构的载体中,我们发现具有70 nt环和~500 bp茎的发夹载体显示出最高的防治效果,随着筛选出的载体的表达,辣椒疫霉在转基因本氏烟草中的侵染和繁殖能力受到极大抑制。基于这些高效载体,我们证明了HIGS载体产生的小干扰RNA(siRNA)的量与基因沉默效率和抗性呈正相关,并且NbDCL3和NbDCL4是产生siRNA的关键效应蛋白。这项工作发现了高效HIGS载体设计的原则,并阐明了HIGS的分子机制,这可能有助于基于HIGS控制许多其他植物病害。

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