Schoch G, Goepfert S, Morant M, Hehn A, Meyer D, Ullmann P, Werck-Reichhart D
Department of Plant Stress Response, Institute of Plant Molecular Biology, CNRS UPR 2357, 28 rue Goethe, F-67083 Strasbourg Cedex, France.
J Biol Chem. 2001 Sep 28;276(39):36566-74. doi: 10.1074/jbc.M104047200. Epub 2001 Jun 27.
The 4- and 5-hydroxylations of phenolic compounds in plants are catalyzed by cytochrome P450 enzymes. The 3-hydroxylation step leading to the formation of caffeic acid from p-coumaric acid remained elusive, however, alternatively described as a phenol oxidase, a dioxygenase, or a P450 enzyme, with no decisive evidence for the involvement of any in the reaction in planta. In this study, we show that the gene encoding CYP98A3, which was the best possible P450 candidate for a 3-hydroxylase in the Arabidopsis genome, is highly expressed in inflorescence stems and wounded tissues. Recombinant CYP98A3 expressed in yeast did not metabolize free p-coumaric acid or its glucose or CoA esters, p-coumaraldehyde, or p-coumaryl alcohol, but very actively converted the 5-O-shikimate and 5-O-d-quinate esters of trans-p-coumaric acid into the corresponding caffeic acid conjugates. The shikimate ester was converted four times faster than the quinate derivative. Antibodies directed against recombinant CYP98A3 specifically revealed differentiating vascular tissues in stem and root. Taken together, these data show that CYP98A3 catalyzes the synthesis of chlorogenic acid and very likely also the 3-hydroxylation of lignin monomers. This hydroxylation occurs on depsides, the function of which was so far not understood, revealing an additional and unexpected level of networking in lignin biosynthesis.
植物中酚类化合物的4-羟化和5-羟化反应由细胞色素P450酶催化。然而,对香豆酸形成咖啡酸的3-羟化步骤仍然不清楚,有人将其描述为酚氧化酶、双加氧酶或P450酶,但没有确凿证据表明任何一种酶参与了植物体内的该反应。在本研究中,我们发现,编码CYP98A3的基因在拟南芥基因组中是3-羟化酶最有可能的P450候选基因,该基因在花序茎和受伤组织中高表达。在酵母中表达的重组CYP98A3不能代谢游离的对香豆酸及其葡萄糖或辅酶A酯、对香豆醛或对香豆醇,但能非常活跃地将反式对香豆酸的5-O-莽草酸酯和5-O-D-奎尼酸酯转化为相应的咖啡酸共轭物。莽草酸酯的转化速度比对奎尼酸衍生物快四倍。针对重组CYP98A3的抗体特异性地显示了茎和根中不同的维管组织。综上所述,这些数据表明CYP98A3催化绿原酸的合成,也很可能催化木质素单体的3-羟化。这种羟化发生在缩酚酸上,其功能迄今尚不清楚,这揭示了木质素生物合成中一个额外的、意想不到的网络层面。