State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing 100193, PR China.
State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing 100193, PR China.
J Adv Res. 2023 May;47:27-40. doi: 10.1016/j.jare.2022.07.004. Epub 2022 Jul 22.
Plant parasitic cyst nematodes secrete a number of effectors into hosts to initiate formation of syncytia and infection causing huge yield losses.
The identified cyst nematode effectors are still limited, and the cyst nematode effectors-involved interaction mechanisms between cyst nematodes and plants remain largely unknown.
The t-SNARE domain-containing effector in beet cyst nematode (BCN) was identified by In situ hybridization and immunohistochemistry analyses. The mutant of effector gene was designed by protein structure modeling analysis. The functions of effector gene and its mutant were analyzed by genetic transformation in Arabidopsis and infection by BCN. The protein-protein interaction was analyzed by yeast two hybrid, BiFC and pulldown assays. Gene expression was assayed by quantitative real-time PCR.
A t-SNARE domain-containing BCN HsSNARE1 was identified as an effector, and its mutant HsSNARE1-M1 carrying three mutations (E141D, A143T and -148S) that altered regional structure from random coils to α-helixes was designed and constructed. Transgenic analyses indicated that expression of HsSNARE1 significantly enhanced while expression of HsSNARE1-M1 and highly homologous HgSNARE1 remarkably suppressed BCN susceptibility of Arabidopsis. HsSNARE1 interacted with AtSNAP2 and AtPR1 via its t-SNARE domain and N-terminal, respectively, while HsSNARE1-M1/HgSNARE1 could not interact with AtPR1 but bound AtSNAP2. AtSNAP2, AtSHMT4 and AtPR1 interacted pairwise, but neither HsSNARE1 nor HsSNARE1-M1/HgSNARE1 could interact with AtSHMT4. Expression of HsSNARE1 significantly suppressed while expression of HsSNARE1-M1/HgSNARE1 considerably induced both AtSHMT4 and AtPR1 in transgenic Arabidopsis infected with BCN. Overexpression of AtPR1 significantly suppressed BCN susceptibility of Arabidopsis.
This work identified a t-SNARE-domain containing cyst nematode effector HsSNARE1 and deciphered a molecular mode of action of the t-SNARE-domain containing cyst nematode effectors that HsSNARE1 promotes cyst nematode disease by interaction with both AtSNAP2 and AtPR1 and significant suppression of both AtSHMT4 and AtPR1, which is mediated by three structure change-causing amino acid residues.
植物寄生性囊线虫将大量效应蛋白分泌到宿主中,启动合胞体的形成和侵染,导致巨大的产量损失。
已鉴定的囊线虫效应蛋白仍然有限,囊线虫与植物之间的囊线虫效应蛋白参与的互作机制在很大程度上仍然未知。
通过原位杂交和免疫组织化学分析鉴定了甜菜胞囊线虫(BCN)中的 t-SNARE 结构域效应子。通过蛋白质结构建模分析设计了效应子基因的突变体。通过遗传转化拟南芥和 BCN 侵染分析效应子基因及其突变体的功能。通过酵母双杂交、BiFC 和 pull-down 分析分析蛋白质-蛋白质相互作用。通过定量实时 PCR 检测基因表达。
鉴定到一个含有 t-SNARE 结构域的 BCN HsSNARE1 作为效应子,设计并构建了携带三个突变(E141D、A143T 和 -148S)的突变体 HsSNARE1-M1,这些突变改变了局部结构,从无规卷曲变为α-螺旋。转基因分析表明,HsSNARE1 的表达显著增强,而 HsSNARE1-M1 和高度同源的 HgSNARE1 的表达显著抑制了拟南芥对 BCN 的敏感性。HsSNARE1 通过其 t-SNARE 结构域和 N 端分别与 AtSNAP2 和 AtPR1 相互作用,而 HsSNARE1-M1/HgSNARE1 不能与 AtPR1 相互作用,但与 AtSNAP2 结合。AtSNAP2、AtSHMT4 和 AtPR1 相互作用,但 HsSNARE1 或 HsSNARE1-M1/HgSNARE1 均不能与 AtSHMT4 相互作用。BCN 感染的转基因拟南芥中,HsSNARE1 的表达显著抑制,而 HsSNARE1-M1/HgSNARE1 的表达显著诱导 AtSHMT4 和 AtPR1。过表达 AtPR1 显著抑制了拟南芥对 BCN 的敏感性。
本研究鉴定了一个含有 t-SNARE 结构域的囊线虫效应子 HsSNARE1,并阐明了含有 t-SNARE 结构域的囊线虫效应子的作用模式,即 HsSNARE1 通过与 AtSNAP2 和 AtPR1 相互作用促进囊线虫病害,同时通过三个引起结构变化的氨基酸残基显著抑制 AtSHMT4 和 AtPR1。