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地中海诺卡氏菌 U32 中的 GlnR 对磷酸特异性运输系统 pstSCAB 的正转录调控。

GlnR positive transcriptional regulation of the phosphate-specific transport system pstSCAB in Amycolatopsis mediterranei U32.

机构信息

School of Life Science and Biopharmaceutics, Shenyang Pharmaceutical University, Shenyang, China.

Department of Life Sciences, Henan Institute of Science and Technology, Xinxiang, China.

出版信息

Acta Biochim Biophys Sin (Shanghai). 2018 Aug 1;50(8):757-765. doi: 10.1093/abbs/gmy073.

Abstract

Amycolatopsis mediterranei U32 is an important industrial strain for the production of rifamycin SV. Rifampicin, a derivative of rifamycin SV, is commonly used to treat mycobacterial infections. Although phosphate has long been known to affect rifamycin biosynthesis, phosphate transport, metabolism, and regulation are poorly understood in A. mediterranei. In this study, the functional phosphate transport system pstSCAB was isolated by RNA sequencing and inactivated by insertion mutation in A. mediterranei U32. The mycelium morphology changed from a filamentous shape in the wild-type and pstS1+ strains to irregular swollen shape at the end of filamentous in the ΔpstS1 strain. RT-PCR assay revealed that pstSCAB genes are co-transcribed as a polycistronic messenger. The pstSCAB transcription was significantly activated by nitrate supplementation and positively regulated by GlnR which is a global regulator of nitrogen metabolism in actinomycetes. At the same time, the yield of rifamycin SV decreased after mutation (ΔpstS1) compared with wild-type U32, which indicated a strong connection among phosphate metabolism, nitrogen metabolism, and rifamycin production in actinomycetes.

摘要

地中海拟无枝酸菌 U32 是生产利福霉素 SV 的重要工业菌株。利福平是利福霉素 SV 的衍生物,常用于治疗分枝杆菌感染。尽管磷酸盐早已被证实会影响利福霉素的生物合成,但在地中海拟无枝酸菌中,磷酸盐的运输、代谢和调节机制仍知之甚少。在本研究中,通过 RNA 测序分离出了功能磷酸转运系统 pstSCAB,并通过插入突变在 A. mediterranei U32 中失活。菌丝体形态从野生型和 pstS1+菌株的丝状变为末端丝状的不规则肿胀形状。RT-PCR 检测表明 pstSCAB 基因作为多顺反子转录。硝酸盐的补充显著激活了 pstSCAB 的转录,并且 GlnR 正向调控 pstSCAB 的转录,GlnR 是放线菌氮代谢全局调控因子。同时,与野生型 U32 相比,突变(ΔpstS1)后利福霉素 SV 的产量降低,这表明在放线菌中,磷酸盐代谢、氮代谢和利福霉素的产生之间存在着紧密的联系。

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