Weber J M, Leung J O, Maine G T, Potenz R H, Paulus T J, DeWitt J P
BioProcess Development, Abbott Laboratories, North Chicago, Illinois 60064.
J Bacteriol. 1990 May;172(5):2372-83. doi: 10.1128/jb.172.5.2372-2383.1990.
We used a series of gene disruptions and gene replacements to mutagenically characterize 30 kilobases of DNA in the erythromycin resistance gene (ermE) region of the Saccharopolyspora erythraea chromosome. Five previously undiscovered loci involved in the biosynthesis of erythromycin were found, eryBI, eryBII, eryCI, eryCII, and eryH; and three known loci, eryAI, eryG, and ermE, were further characterized. The new Ery phenotype, EryH, was marked by (i) the accumulation of the intermediate 6-deoxyerythronolide B (DEB), suggesting a defect in the operation of the C-6 hydroxylase system, and (ii) a block in the synthesis or addition reactions for the first sugar group. Analyses of ermE mutants indicated that ermE is the only gene required for resistance to erythromycin, and that it is not required for production of the intermediate erythronolide B (EB) or for conversion of the intermediate 3-alpha-mycarosyl erythronolide B (MEB) to erythromycin. Mutations in the eryB and eryC loci were similar to previously reported chemically induced eryB and eryC mutations blocking synthesis or attachment of the two erythromycin sugar groups. Insertion mutations in eryAI, the macrolactone synthetase, defined the largest (at least 9-kilobase) transcription unit of the cluster. These mutants help to define the physical organization of the erythromycin gene cluster, and the eryH mutants provide a source for the production of the intermediate DEB.
我们利用一系列基因破坏和基因替换方法,对糖多孢红霉菌染色体红霉素抗性基因(ermE)区域的30千碱基DNA进行诱变特征分析。发现了5个先前未被发现的参与红霉素生物合成的基因座,即eryBI、eryBII、eryCI、eryCII和eryH;并对3个已知基因座eryAI、eryG和ermE进行了进一步表征。新的Ery表型EryH的特征为:(i)中间体6-脱氧红霉内酯B(DEB)积累,表明C-6羟化酶系统运作存在缺陷;(ii)第一个糖基的合成或加成反应受阻。对ermE突变体的分析表明,ermE是对红霉素产生抗性所需的唯一基因,且它对于中间体红霉内酯B(EB)的产生或中间体3-α- mycarosyl红霉内酯B(MEB)转化为红霉素不是必需的。eryB和eryC基因座中的突变与先前报道的化学诱导的eryB和eryC突变相似,这些突变阻断了两种红霉素糖基的合成或连接。eryAI(大环内酯合成酶)中的插入突变确定了该基因簇中最大的(至少9千碱基)转录单元。这些突变体有助于确定红霉素基因簇的物理组织,而eryH突变体为中间体DEB的生产提供了来源。