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琥珀酰化章鱼胺阿魏酰衍生物与秀丽隐杆线虫生物胺代谢的新途径。

Succinylated octopamine ascarosides and a new pathway of biogenic amine metabolism in Caenorhabditis elegans.

机构信息

Boyce Thompson Institute and Department of Chemistry and Chemical Biology, Cornell University, Ithaca, New York 14853, USA.

出版信息

J Biol Chem. 2013 Jun 28;288(26):18778-83. doi: 10.1074/jbc.C113.477000. Epub 2013 May 20.

Abstract

The ascarosides, small-molecule signals derived from combinatorial assembly of primary metabolism-derived building blocks, play a central role in Caenorhabditis elegans biology and regulate many aspects of development and behavior in this model organism as well as in other nematodes. Using HPLC-MS/MS-based targeted metabolomics, we identified novel ascarosides incorporating a side chain derived from succinylation of the neurotransmitter octopamine. These compounds, named osas#2, osas#9, and osas#10, are produced predominantly by L1 larvae, where they serve as part of a dispersal signal, whereas these ascarosides are largely absent from the metabolomes of other life stages. Investigating the biogenesis of these octopamine-derived ascarosides, we found that succinylation represents a previously unrecognized pathway of biogenic amine metabolism. At physiological concentrations, the neurotransmitters serotonin, dopamine, and octopamine are converted to a large extent into the corresponding succinates, in addition to the previously described acetates. Chemically, bimodal deactivation of biogenic amines via acetylation and succinylation parallels posttranslational modification of proteins via acetylation and succinylation of L-lysine. Our results reveal a small-molecule connection between neurotransmitter signaling and interorganismal regulation of behavior and suggest that ascaroside biosynthesis is based in part on co-option of degradative biochemical pathways.

摘要

阿莎糖脂是由初级代谢衍生的构建块组合而成的小分子信号,在秀丽隐杆线虫生物学中起着核心作用,调节该模型生物以及其他线虫发育和行为的许多方面。我们使用基于 HPLC-MS/MS 的靶向代谢组学方法,鉴定了新的阿莎糖脂,其包含来自神经递质章鱼胺琥珀酰化的侧链。这些化合物名为osas#2、osas#9 和 osas#10,主要由 L1 幼虫产生,它们作为分散信号的一部分,而这些阿莎糖脂在其他生命阶段的代谢组中基本上不存在。研究这些章鱼胺衍生的阿莎糖脂的生物发生,我们发现琥珀酰化是生物胺代谢的一个以前未被识别的途径。在生理浓度下,除了先前描述的醋酸盐外,神经递质血清素、多巴胺和章鱼胺在很大程度上转化为相应的琥珀酸盐。从化学上讲,生物胺通过乙酰化和琥珀酰化的双模态失活与通过 L-赖氨酸的乙酰化和琥珀酰化的蛋白质的翻译后修饰平行。我们的结果揭示了神经递质信号和行为的种间调节之间的小分子联系,并表明阿莎糖脂生物合成部分基于降解生化途径的共选择。

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