Reeves Christopher D, Hu Zhihao, Reid Ralph, Kealey James T
Kosan Biosciences, Inc., 3832 Bay Center Place, Hayward, California 94545, USA.
Appl Environ Microbiol. 2008 Aug;74(16):5121-9. doi: 10.1128/AEM.00478-08. Epub 2008 Jun 20.
Gene clusters for biosynthesis of the fungal polyketides hypothemycin and radicicol from Hypomyces subiculosus and Pochonia chlamydosporia, respectively, were sequenced. Both clusters encode a reducing polyketide synthase (PKS) and a nonreducing PKS like those in the zearalenone cluster of Gibberella zeae, plus enzymes with putative post-PKS functions. Introduction of an O-methyltransferase (OMT) knockout construct into H. subiculosus resulted in a strain with increased production of 4-O-desmethylhypothemycin, but because transformation of H. subiculosus was very difficult, we opted to characterize hypothemycin biosynthesis using heterologous gene expression. In vitro, the OMT could methylate various substrates lacking a 4-O-methyl group, and the flavin-dependent monooxygenase (FMO) could epoxidate substrates with a 1',2' double bond. The glutathione S-transferase catalyzed cis-trans isomerization of the 7',8' double bond of hypothemycin. Expression of both hypothemycin PKS genes (but neither gene alone) in yeast resulted in production of trans-7',8'-dehydrozearalenol (DHZ). Adding expression of OMT, expression of FMO, and expression of cytochrome P450 to the strain resulted in methylation, 1',2'-epoxidation, and hydroxylation of DHZ, respectively. The radicicol gene cluster encodes halogenase and cytochrome P450 homologues that are presumed to catalyze chlorination and epoxidation, respectively. Schemes for biosynthesis of hypothemycin and radicicol are proposed. The PKSs encoded by the two clusters described above and those encoded by the zearalenone cluster all synthesize different products, yet they have significant sequence identity. These PKSs may provide a useful system for probing the mechanisms of fungal PKS programming.
分别对来自亚肉座菌(Hypomyces subiculosus)和厚垣孢普可尼亚菌(Pochonia chlamydosporia)的真菌聚酮化合物腐霉素(hypothemycin)和鬼笔环肽(radicicol)生物合成的基因簇进行了测序。这两个基因簇都编码一种还原型聚酮合酶(PKS)和一种非还原型PKS,类似于玉米赤霉(Gibberella zeae)的玉米赤霉烯酮基因簇中的那些,另外还编码具有假定的聚酮合酶后功能的酶。将一个O - 甲基转移酶(OMT)敲除构建体导入亚肉座菌中,得到了一个4 - O - 去甲基腐霉素产量增加的菌株,但由于亚肉座菌的转化非常困难,我们选择使用异源基因表达来表征腐霉素的生物合成。在体外,OMT可以甲基化各种缺乏4 - O - 甲基的底物,而黄素依赖性单加氧酶(FMO)可以使具有1',2'双键的底物环氧化。谷胱甘肽S - 转移酶催化腐霉素7',8'双键的顺反异构化。在酵母中表达腐霉素的两个PKS基因(但不是单独表达一个基因)会产生反式 - 7',8' - 脱氢玉米赤霉烯醇(DHZ)。向该菌株中添加OMT、FMO和细胞色素P450的表达,分别导致DHZ的甲基化、1',2' - 环氧化和羟基化。鬼笔环肽基因簇编码卤化酶和细胞色素P450同源物,推测分别催化氯化和环氧化。提出了腐霉素和鬼笔环肽的生物合成方案。上述两个基因簇编码的PKS以及玉米赤霉烯酮基因簇编码的PKS都合成不同的产物,但它们具有显著的序列同一性。这些PKS可能为探究真菌PKS编程机制提供一个有用的系统。