Institute of Basic Biological Problems, RAS, Pushchino, Russia.
Leibniz Institute of Plant Genetics and Crop Plant Research (IPK), Gatersleben, Germany.
J Exp Bot. 2019 May 9;70(10):2919-2932. doi: 10.1093/jxb/erz110.
Environmental stresses induce production of oxylipins synthesized by the two main biosynthetic branches, allene oxide synthase (AOS) and hydroperoxide lyase (HPL). Here, we investigate how waterlogging-mediated alteration of AOS- and HPL-derived metabolic profile results in modulation of central metabolism and ultimately enhanced tolerance to this environmental stress in Arabidopsis thaliana. Waterlogging leads to increased levels of AOS- and HPL-derived metabolites, and studies of genotypes lacking either one or both branches further support the key function of these oxylipins in waterlogging tolerance. Targeted quantitative metabolic profiling revealed oxylipin-dependent alterations in selected primary metabolites, and glycolytic and citric acid cycle intermediates, as well as a prominent shift in sucrose cleavage, hexose activation, the methionine salvage pathway, shikimate pathway, antioxidant system, and energy metabolism in genotypes differing in the presence of one or both functional branches of the oxylipin biosynthesis pathway. Interestingly, despite some distinct metabolic alterations caused specifically by individual branches, overexpression of HPL partially or fully alleviates the majority of altered metabolic profiles observed in AOS-depleted lines. Collectively, these data identify the key role of AOS- and HPL-derived oxylipins in altering central metabolism, and further provide a metabolic platform targeted at identification of gene candidates for enhancing plant tolerance to waterlogging.
环境胁迫诱导通过两条主要生物合成途径——丙烯氧化物合酶 (AOS) 和过氧化物裂解酶 (HPL) 合成的氧化脂类的产生。在这里,我们研究了水淹介导的 AOS 和 HPL 衍生代谢谱的改变如何导致中心代谢的调节,最终增强拟南芥对这种环境胁迫的耐受性。水淹导致 AOS 和 HPL 衍生代谢物水平升高,研究缺乏一条或两条途径的基因型进一步支持这些氧化脂类在耐水淹中的关键功能。靶向定量代谢谱分析显示,氧化脂类依赖性改变了选定的初级代谢物和糖酵解和柠檬酸循环中间产物,以及蔗糖分解、己糖激活、甲硫氨酸补救途径、莽草酸途径、抗氧化系统和能量代谢在氧化脂生物合成途径的一条或两条功能途径存在差异的基因型中发生明显转变。有趣的是,尽管个别分支会导致一些独特的代谢改变,但 HPL 的过表达部分或完全缓解了在 AOS 耗尽系中观察到的大多数改变的代谢谱。总的来说,这些数据确定了 AOS 和 HPL 衍生的氧化脂类在改变中心代谢中的关键作用,并进一步提供了一个代谢平台,旨在鉴定增强植物耐水淹能力的候选基因。