Chng Chinping, Lum Amy M, Vroom Jonathan A, Kao Camilla M
Department of Chemical Engineering, Stanford University, Stanford, CA 94305, USA.
Proc Natl Acad Sci U S A. 2008 Aug 12;105(32):11346-51. doi: 10.1073/pnas.0803622105. Epub 2008 Aug 6.
Saccharopolyspora erythraea makes erythromycin, an antibiotic commonly used in human medicine. Unusually, the erythromycin biosynthetic (ery) cluster lacks a pathway-specific regulatory gene. We isolated a transcriptional regulator of the ery biosynthetic genes from S. erythraea and found that this protein appears to directly link morphological changes caused by impending starvation to the synthesis of a molecule that kills other bacteria, i.e., erythromycin. DNA binding assays, liquid and affinity chromatography, MALDI-MS analysis, and de novo sequencing identified this protein (M(r) = 18 kDa) as the S. erythraea ortholog of BldD, a key regulator of development in Streptomyces coelicolor. Recombinant S. erythraea BldD bound to all five regions containing promoters in the ery cluster as well as to its own promoter, the latter with an order-of-magnitude stronger than to the ery promoters. Deletion of bldD in S. erythraea decreased the erythromycin titer in a liquid culture 7-fold and blocked differentiation on a solid medium. Moreover, an industrial strain of S. erythraea with a higher titer of erythromycin expressed more BldD than a wild-type strain during erythromycin synthesis. Together, these results suggest that BldD concurrently regulates the synthesis of erythromycin and morphological differentiation. The ery genes are the first direct targets of a BldD ortholog to be identified that are positively regulated.
糖多孢红霉菌可产生红霉素,一种在人类医学中常用的抗生素。不同寻常的是,红霉素生物合成(ery)基因簇缺乏一个途径特异性调控基因。我们从糖多孢红霉菌中分离出ery生物合成基因的转录调节因子,发现该蛋白似乎将即将到来的饥饿所引起的形态变化与一种能杀死其他细菌的分子(即红霉素)的合成直接联系起来。DNA结合分析、液相和亲和色谱、基质辅助激光解吸电离质谱分析以及从头测序确定该蛋白(分子量为18 kDa)为天蓝色链霉菌发育关键调节因子BldD在糖多孢红霉菌中的直系同源物。重组糖多孢红霉菌BldD与ery基因簇中包含启动子的所有五个区域以及其自身的启动子结合,与ery启动子相比,与自身启动子的结合力强一个数量级。糖多孢红霉菌中bldD的缺失使液体培养中的红霉素效价降低了7倍,并阻断了固体培养基上的分化。此外,在红霉素合成过程中,红霉素效价较高的糖多孢红霉菌工业菌株比野生型菌株表达更多的BldD。这些结果共同表明,BldD同时调节红霉素的合成和形态分化。ery基因是首个被鉴定出的受BldD直系同源物正向调控的直接靶标。