Molecular Plant Nutrition, Department of Physiology and Cell Biology, Leibniz Institute of Plant Genetics and Crop Plant Research, Corrensstraße 3, 06466, Gatersleben, Germany.
New Phytol. 2017 Nov;216(3):868-881. doi: 10.1111/nph.14731. Epub 2017 Aug 21.
Plant hormones (PH) adjust plant growth to environmental conditions such as nutrient availability. Although responses of individual PHs to growth-determining nutrient supplies have been reported, little is known about simultaneous dynamics in the metabolism of different PH species. Brassica napus seedlings were grown under increasing supply of B, and LC-MS/MS was used to characterize bioactive forms of different PH species together with several of their precursors, storage and inactivated forms. Increasing shoot B concentrations in response to B supply were accompanied by decreasing concentrations of abscisic acid (ABA) and indole-3-acetic acid (IAA), which appeared to be synthesized under B deficiency mainly via indole-3-acetonitrile (IAN). By contrast, shoot B concentrations correlated closely with cytokinins, and the B-dependent growth response appeared to be triggered primarily by de-novo synthesis of cytokinins and by re-routing less active towards highly active forms of cytokinin. Also gibberellin biosynthesis strongly increased with B supply, in particular gibberellin species from the non-13-hydroxylation pathway. The brassinosteroid castasterone appeared to support shoot growth primarily at suboptimal B nutrition. These results indicate that a variable B nutritional status causes coordinated changes in PH metabolism as prerequisite for an adjusted growth response.
植物激素 (PH) 调节植物生长以适应环境条件,如养分供应。虽然已经报道了个别 PH 对决定生长的养分供应的反应,但对于不同 PH 物种代谢的同时动态知之甚少。油菜幼苗在 B 供应增加的情况下生长,并用 LC-MS/MS 来描述不同 PH 物种的生物活性形式及其几种前体、储存和失活形式。B 供应导致的地上部 B 浓度增加伴随着脱落酸 (ABA) 和吲哚-3-乙酸 (IAA) 浓度的降低,这些物质似乎主要通过吲哚-3-乙腈 (IAN) 在 B 缺乏下合成。相比之下,地上部 B 浓度与细胞分裂素密切相关,B 依赖性生长反应似乎主要是由细胞分裂素的从头合成和由不活跃向高度活跃的细胞分裂素形式的重新分配触发的。赤霉素生物合成也随着 B 供应的增加而强烈增加,特别是来自非 13-羟化途径的赤霉素。油菜素内酯 castasterone 似乎主要在亚最佳 B 营养条件下支持地上部生长。这些结果表明,可变的 B 营养状况会导致 PH 代谢的协调变化,作为适应生长反应的前提。