Xu Maojun, Dong Jufang, Wang Huizhong, Huang Luqi
College of Life and Environmental Sciences, Hangzhou Normal University, Hangzhou 310036, China.
Plant Cell Environ. 2009 Aug;32(8):960-7. doi: 10.1111/j.1365-3040.2009.01976.x. Epub 2009 Mar 24.
The antagonistic action between jasmonic acid (JA) and salicylic acid (SA) in plant defence responses has been well documented. However, their relationship in secondary metabolite production is largely unknown. Here, we report that PB90, a protein elicitor from Phytophthora boehmeriae, triggers JA generation, SA accumulation and flavonol glycoside production of Ginkgo biloba cells. JA inhibitors suppress not only PB90-triggered JA generation, but also the elicitor-induced flavonol glycoside production. However, the elicitor can still enhance flavonol glycoside production even though the JA generation is totally inhibited. Over-expression of SA hydrolase gene NahG not only abolishes SA accumulation, but also suppresses the elicitor-induced flavonol glycoside production when JA signalling is inhibited. Interestingly, expression of NahG does not inhibit the elicitor-induced flavonol glycoside accumulation in the absence of JA inhibitors. Moreover, JA levels are significantly enhanced when SA accumulation is impaired in the transgenic cells. Together, the data suggest that both JA and SA are involved in PB90-induced flavonol glycoside production. Furthermore, we demonstrate that JA signalling might be enhanced to substitute for SA to mediate the elicitor-induced flavonol glycoside accumulation when SA signalling is impaired, which reveals an unusual complementary relationship between JA and SA in mediating plant secondary metabolite production.
茉莉酸(JA)和水杨酸(SA)在植物防御反应中的拮抗作用已有充分记载。然而,它们在次生代谢产物合成中的关系却 largely未知。在此,我们报道来自棉疫病菌的一种蛋白激发子PB90能触发银杏细胞的JA生成、SA积累和黄酮醇糖苷合成。JA抑制剂不仅抑制PB90触发的JA生成,还抑制激发子诱导的黄酮醇糖苷合成。然而,即便JA生成被完全抑制,激发子仍能增强黄酮醇糖苷合成。SA水解酶基因NahG的过表达不仅消除了SA积累,而且在JA信号被抑制时,也抑制激发子诱导的黄酮醇糖苷合成。有趣的是,在没有JA抑制剂的情况下,NahG的表达并不抑制激发子诱导的黄酮醇糖苷积累。此外,当转基因细胞中SA积累受损时,JA水平会显著提高。总之,数据表明JA和SA都参与了PB90诱导的黄酮醇糖苷合成。此外,我们证明当SA信号受损时,JA信号可能会增强以替代SA来介导激发子诱导的黄酮醇糖苷积累,这揭示了JA和SA在介导植物次生代谢产物合成中存在一种不同寻常的互补关系。