College of Plant Protection, Shanxi Agricultural University, Taigu, 030801, Shanxi, People's Republic of China.
College of Life Sciences, Shanxi Agricultural University, Taigu, 030801, Shanxi, People's Republic of China.
Sci Rep. 2020 Oct 12;10(1):16994. doi: 10.1038/s41598-020-73130-z.
Herbivorous insects use plant volatile compounds to find their host plants for feeding and egg deposition. The monophagous beetle Agasicles hygrophila uses a volatile (E)-4,8-dimethyl-1,3,7-nonanetriene (DMNT) to recognize its host plant Alternanthera philoxeroides. Alternanthera philoxeroides releases DMNT in response to A. hygrophila attack and nerolidol synthase (NES) is a key enzyme in DMNT biosynthesis; however, the effect of A. hygrophila on NES expression remains unclear. In this study, the A. philoxeroides transcriptome was sequenced and six putative NES genes belonging to the terpene synthase-g family were characterized. The expression of these NES genes was assayed at different times following A. hygrophila contact, feeding or mechanical wounding. Results showed that A. hygrophila contact and feeding induced NES expression more rapidly and more intensely than mechanical wounding alone. This may account for a large release of DMNT following A. hygrophila feeding in a previous study and subsequently facilitate A. hygrophila to find host plants. Our research provides a powerful genetic platform for studying invasive plants and lays the foundation for further elucidating the molecular mechanisms of the interaction between A. philoxeroides and its specialist A. hygrophila.
食草昆虫利用植物挥发物化合物来寻找其寄主植物进行取食和产卵。单食性甲虫 Agasicles hygrophila 使用一种挥发性物质 (E)-4,8-二甲基-1,3,7-壬三烯 (DMNT) 来识别其寄主植物空心莲子草。空心莲子草在受到 A. hygrophila 攻击时会释放 DMNT,而 nerolidol 合酶 (NES) 是 DMNT 生物合成的关键酶;然而,A. hygrophila 对 NES 表达的影响尚不清楚。在本研究中,对空心莲子草转录组进行了测序,并对属于萜烯合酶-G 家族的六个推定的 NES 基因进行了表征。在 A. hygrophila 接触、取食或机械损伤后不同时间测定这些 NES 基因的表达。结果表明,与单独的机械损伤相比,A. hygrophila 的接触和取食更迅速和强烈地诱导了 NES 的表达。这可能解释了在之前的研究中,空心莲子草在 A. hygrophila 取食后会大量释放 DMNT,从而促进 A. hygrophila 寻找寄主植物。我们的研究为研究入侵植物提供了一个强大的遗传平台,并为进一步阐明空心莲子草与其专食性 A. hygrophila 之间的相互作用的分子机制奠定了基础。