University of Goettingen, Albrecht-von-Haller-Institute for Plant Sciences, Department of Plant Biochemistry, D-37077 Goettingen, Germany.
University of British Columbia, Department of Botany, V6T 1Z4 Vancouver (BC), Canada.
J Exp Bot. 2023 Jan 1;74(1):458-471. doi: 10.1093/jxb/erac422.
The biosynthesis of N-hydroxy pipecolic acid (NHP) has been intensively studied, though knowledge on its metabolic turnover is still scarce. To close this gap, we discovered three novel metabolites via metabolite fingerprinting in Arabidopsis thaliana leaves after Pseudomonas infection and UV-C treatment. Exact mass information and fragmentation by tandem mass spectrometry (MS/MS) suggest a methylated derivative of NHP (MeNHP), an NHP-OGlc-hexosyl conjugate (NHP-OGlc-Hex), and an additional NHP-OGlc-derivative. All three compounds were formed in wild-type leaves but were not present in the NHP-deficient mutant fmo1-1. The identification of these novel NHP-based molecules was possible by a dual-infiltration experiment using a mixture of authentic NHP and D9-NHP standards for leaf infiltration followed by UV-C treatment. Interestingly, the signal intensity of MeNHP and other NHP-derived metabolites increased in ugt76b1-1 mutant plants. For MeNHP, we unequivocally determined the site of methylation at the carboxylic acid moiety. MeNHP application by leaf infiltration leads to the detection of a MeNHP-OGlc as well as NHP, suggesting MeNHP hydrolysis to NHP. This is in line with the observation that MeNHP infiltration is able to rescue the fmo1-1 susceptible phenotype against Hyaloperonospora arabidopsidis Noco 2. Together, these data suggest MeNHP as an additional storage or transport form of NHP.
尽管人们对 N-羟基哌啶酸(NHP)的代谢转化知之甚少,但对其生物合成的研究已经很深入。为了弥补这一空白,我们通过拟南芥叶片受到假单胞菌感染和 UV-C 处理后的代谢指纹分析,发现了三种新型代谢物。精确质量信息和串联质谱(MS/MS)的碎裂提示存在 NHP 的甲基化衍生物(MeNHP)、NHP-OGlc-己糖苷(NHP-OGlc-Hex)和另一种 NHP-OGlc 衍生物。这三种化合物在野生型叶片中形成,但在 NHP 缺陷突变体 fmo1-1 中不存在。通过使用真实 NHP 和 D9-NHP 标准混合物进行双重渗透实验,对这些新型 NHP 基分子进行了鉴定,该实验首先将混合物渗透到叶片中,然后进行 UV-C 处理。有趣的是,ugt76b1-1 突变体植物中 MeNHP 和其他 NHP 衍生代谢物的信号强度增加。对于 MeNHP,我们明确确定了羧酸部分的甲基化位点。通过叶片渗透应用 MeNHP 会导致检测到 MeNHP-OGlc 和 NHP,这表明 MeNHP 水解为 NHP。这与观察到 MeNHP 渗透能够挽救 fmo1-1 对 Hyaloperonospora arabidopsidis Noco 2 的敏感性表型一致。总的来说,这些数据表明 MeNHP 是 NHP 的另一种储存或运输形式。