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与蛋氨酸循环相关的植物铁载体(麦根酸)的生物合成。

Biosynthesis of phytosiderophores, mugineic acids, associated with methionine cycling.

作者信息

Ma J F, Shinada T, Matsuda C, Nomoto K

机构信息

Suntory Institute for Bioorganic Research, Osaka, Japan.

出版信息

J Biol Chem. 1995 Jul 14;270(28):16549-54. doi: 10.1074/jbc.270.28.16549.

Abstract

The biosynthesis of 2'-deoxymugineic acid, a key phytosiderophore, was examined in association with the putative methionine recycling pathway in the roots of wheat using labeling experiments and structural analysis. Feeding with D-[1-13C]ribose did not result in 13C enrichment of 2'-deoxymugineic acid, while D-[2-13C]ribose resulted in 13C enrichment at the C-4", -1, -4' positions, and D-[5-13C]ribose did in C-1', -4, and -1" positions of 2'-deoxymugineic acid, respectively. Furthermore, two isotope-labeled intermediates of the methionine recycling pathway, 5-[5-2H2]methylthioribose and 2-[1-13C]keto-4-methylthiobutyric acid, were synthesized, and their incorporation into 2'-deoxymugineic acids was investigated. Six deuterium atoms at the C-4, -1', and -1" positions of 2'-deoxymugineic acid were observed after feeding with 5-[5-2H2]methylthioribose. Feeding with 2-[1-13C]keto-4-methylthiobutyric acid yielded 2'-deoxymugineic acid enriched with 13C at the C-4', -1, and -4" positions. These results demonstrated for the first time that the biosynthesis of 2'-deoxymugineic acid is associated with the methionine recycling pathway. This association system functions to recycle methionine required for continued synthesis of mugineic acids in the roots of gramineous plants.

摘要

利用标记实验和结构分析,结合小麦根系中假定的蛋氨酸循环途径,对关键植物铁载体2'-脱氧 mugineic 酸的生物合成进行了研究。用 D-[1-13C]核糖喂养并未导致 2'-脱氧 mugineic 酸的 13C 富集,而 D-[2-13C]核糖导致 2'-脱氧 mugineic 酸的 C-4"、-1、-4' 位置出现 13C 富集,D-[5-13C]核糖分别导致 2'-脱氧 mugineic 酸的 C-1'、-4 和 -1" 位置出现 13C 富集。此外,合成了蛋氨酸循环途径的两种同位素标记中间体 5-[5-2H2]甲基硫代核糖和 2-[1-13C]酮-4-甲基硫代丁酸,并研究了它们掺入 2'-脱氧 mugineic 酸的情况。用 5-[5-2H2]甲基硫代核糖喂养后,在 2'-脱氧 mugineic 酸的 C-4、-1' 和 -1" 位置观察到六个氘原子。用 2-[1-13C]酮-4-甲基硫代丁酸喂养产生了在 C-4'、-1 和 -4" 位置富集 13C 的 2'-脱氧 mugineic 酸。这些结果首次证明 2'-脱氧 mugineic 酸的生物合成与蛋氨酸循环途径有关。这种关联系统的作用是循环禾本科植物根系中持续合成 mugineic 酸所需的蛋氨酸。

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