Institute of Plant Protection and Microbiology, Zhejiang Academy of Agricultural Sciences, Hangzhou, 310021, China.
BMC Plant Biol. 2022 Aug 30;22(1):418. doi: 10.1186/s12870-022-03803-6.
Zizania latifolia is a popular aquatic vegetable in China because of its enlarged edible stems resulting from persistent infection by a fungal endophyte, Ustilago esculenta. Fenaminosulf (FM) is a germicide that can be used to improve agricultural crop yields. In Z. latifolia fields, appropriate spraying of FM not just controls diseases, but also promotes an earlier harvest of Z. latifolia. In this study, we show that the timing of gall formation was advanced and the plant's yield was increased significantly under a high concentration treatment of FM. Yet FM had a strong inhibitory effect on the growth of U. esculenta in vitro, while the transcript levels of mating-type alleles, cell metabolism-related genes and chitin synthase genes were all substantially downregulated. Through a transcriptome analysis, we investigated changes in gene expression of the host Z. latifolia and fungal endophyte U. esculenta in response to FM. FM directly affected the growth of Z. latifolia by altering the expression level of genes involved in plant-pathogen interactions, plant hormone signal transduction and some metabolism pathways. By contrast, FM had little effect on U. esculenta growing inside of Z. latifolia. Collectively, our results provide a more in-depth understanding of the molecular processes that promote gall formation in Z. latifolia, while also identifying potential targets for genetic manipulation to improve the yield and quality of Z. latifolia, in a safer and more effective way.
菰是中国一种受欢迎的水生蔬菜,其可食用的膨大茎是由真菌内生真菌玉蜀黍黑粉菌持续感染引起的。福美双(FM)是一种杀菌剂,可用于提高农作物产量。在菰田中,适当喷洒 FM 不仅可以控制疾病,还可以促进菰更早收获。在这项研究中,我们表明,在 FM 的高浓度处理下,蕈蚊的形成时间提前,植物的产量显著增加。然而,FM 对玉蜀黍黑粉菌在体外的生长有很强的抑制作用,而交配型等位基因、细胞代谢相关基因和几丁质合酶基因的转录水平都显著下调。通过转录组分析,我们研究了 FM 对菰和真菌内生菌玉蜀黍黑粉菌的宿主基因表达的变化。FM 通过改变与植物-病原体相互作用、植物激素信号转导和一些代谢途径相关的基因的表达水平,直接影响菰的生长。相比之下,FM 对生长在菰内的玉蜀黍黑粉菌几乎没有影响。总的来说,我们的结果提供了对促进菰蕈蚊形成的分子过程的更深入了解,同时也确定了潜在的遗传操作目标,以更安全、更有效的方式提高菰的产量和质量。