Deavours Bettina E, Liu Chang-Jun, Naoumkina Marina A, Tang Yuhong, Farag Mohamed A, Sumner Lloyd W, Noel Joseph P, Dixon Richard A
Plant Biology Division, Samuel Roberts Noble Foundation, 2510 Sam Noble Parkway, Ardmore, OK 73401, USA.
Plant Mol Biol. 2006 Nov;62(4-5):715-33. doi: 10.1007/s11103-006-9050-x. Epub 2006 Sep 26.
Previous studies have identified two distinct O-methyltransferases (OMTs) implicated in isoflavonoid biosynthesis in Medicago species, a 7-OMT methylating the A-ring 7-hydroxyl of the isoflavone daidzein and a 4'-OMT methylating the B-ring 4'-hydroxyl of 2,7,4'-trihydroxyisoflavanone. Genes related to these OMTs from the model legume Medicago truncatula cluster as separate branches of the type I plant small molecule OMT family. To better understand the possible functions of these related OMTs in secondary metabolism in M. truncatula, seven of the OMTs were expressed in E. coli, purified, and their in vitro substrate preferences determined. Many of the enzymes display promiscuous activities, and some exhibit dual regio-specificity for the 4' and 7-hydroxyl moieties of the isoflavonoid nucleus. Protein structure homology modeling was used to help rationalize these catalytic activities. Transcripts encoding the different OMT genes exhibited differential tissue-specific and infection- or elicitor-induced expression, but not always in parallel with changes in expression of confirmed genes of the isoflavonoid pathway. The results are discussed in relation to the potential in vivo functions of these OMTs based on our current understanding of the phytochemistry of M. truncatula, and the difficulties associated with gene annotation in plant secondary metabolism.
先前的研究已鉴定出两种不同的参与苜蓿属植物异黄酮生物合成的O-甲基转移酶(OMT),一种是7-OMT,可使异黄酮大豆苷元的A环7-羟基甲基化;另一种是4'-OMT,可使2,7,4'-三羟基异黄烷酮的B环4'-羟基甲基化。来自模式豆科植物蒺藜苜蓿的与这些OMT相关的基因聚集成I型植物小分子OMT家族的不同分支。为了更好地了解这些相关OMT在蒺藜苜蓿次生代谢中的可能功能,将其中7种OMT在大肠杆菌中表达、纯化,并确定它们的体外底物偏好。许多酶表现出混杂活性,一些对异黄酮核的4'和7-羟基部分表现出双重区域特异性。利用蛋白质结构同源性建模来帮助解释这些催化活性。编码不同OMT基因的转录本表现出不同的组织特异性以及感染或诱导子诱导的表达,但并不总是与异黄酮途径中已确认基因的表达变化平行。基于我们目前对蒺藜苜蓿植物化学的理解以及植物次生代谢中基因注释相关的困难,对这些结果与这些OMT的潜在体内功能进行了讨论。