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SACE_Lrp及其靶标MarR的联合工程改造增强了糖多孢红霉菌中红霉素的生物合成和输出。

Joint engineering of SACE_Lrp and its target MarR enhances the biosynthesis and export of erythromycin in Saccharopolyspora erythraea.

作者信息

Liu Jing, Li Long, Wang Yunxia, Li Bowen, Cai Xinlu, Tang Lijuan, Dong Shengnan, Yang Endong, Wu Hang, Zhang Buchang

机构信息

School of Life Sciences, Anhui Agricultural University, Hefei, 230036, China.

Institute of Physical Science and Information Technology, School of Life Sciences, Anhui University, Hefei, 230601, China.

出版信息

Appl Microbiol Biotechnol. 2021 Apr;105(7):2911-2924. doi: 10.1007/s00253-021-11228-8. Epub 2021 Mar 24.

Abstract

The Lrp and MarR families are two groups of transcriptional regulators widely distributed among prokaryotes. However, the hierarchical-regulatory relationship between the Lrp family and the MarR family remains unknown. Our previous study found that an Lrp (SACE_Lrp) from Saccharopolyspora erythraea indirectly repressed the biosynthesis of erythromycin. In this study, we characterized a novel MarR family protein (SACE_6745) from S. erythraea, which is controlled by SACE_Lrp and plays a direct regulatory role in erythromycin biosynthesis and export. SACE_Lrp directly regulated the expression of marR by specifically binding a precise site OM (5'-CTCCGGGAACCATT-3'). Gene disruption of marR increased the production of erythromycin by 45% in S. erythraea A226. We found that MarR has direct DNA-binding activity for the promoter regions of the erythromycin biosynthetic genes, as well as an ABC exporter SACE_2701-2702 which was genetically proved to be responsible for erythromycin efflux. Disruption of SACE_Lrp in industrial S. erythraea WB was an efficient strategy to enhance erythromycin production. Herein, we jointly engineered SACE_Lrp and its target MarR by deleting marR in WBΔSACE_Lrp, resulting in 20% increase in erythromycin yield in mutant WBΔLrpΔmarR compared to WBΔSACE_Lrp, and 39% to WB. Overall, our findings provide new insights into the hierarchical-regulatory relationship of Lrp and MarR proteins and new avenues for coordinating antibiotic biosynthesis and export by joint engineering regulators in actinomycetes. KEY POINTS: • The hierarchical-regulatory relationship between SACE_Lrp and MarR was identified. • MarR directly controlled the expression of erythromycin biosynthesis and export genes. • Joint engineering of SACE_Lrp-MarR regulatory element enhanced erythromycin production.

摘要

Lrp和MarR家族是两组广泛分布于原核生物中的转录调节因子。然而,Lrp家族与MarR家族之间的层级调节关系仍不清楚。我们之前的研究发现,来自糖多孢红霉菌的一个Lrp(SACE_Lrp)间接抑制红霉素的生物合成。在本研究中,我们鉴定了一种来自糖多孢红霉菌的新型MarR家族蛋白(SACE_6745),它受SACE_Lrp调控,并在红霉素生物合成和输出中发挥直接调节作用。SACE_Lrp通过特异性结合精确位点OM(5'-CTCCGGGAACCATT-3')直接调节marR的表达。marR基因敲除使糖多孢红霉菌A226中的红霉素产量提高了45%。我们发现MarR对红霉素生物合成基因的启动子区域以及一个ABC转运蛋白SACE_2701 - 2702具有直接的DNA结合活性,基因分析证明该转运蛋白负责红霉素外排。在工业菌株糖多孢红霉菌WB中敲除SACE_Lrp是提高红霉素产量的有效策略。在此,我们通过在WBΔSACE_Lrp中删除marR对SACE_Lrp及其靶标MarR进行联合工程改造,与WBΔSACE_Lrp相比,突变体WBΔLrpΔmarR中的红霉素产量提高了20%,与WB相比提高了39%。总体而言,我们的研究结果为Lrp和MarR蛋白的层级调节关系提供了新见解,并为通过联合工程改造放线菌中的调节因子来协调抗生素生物合成和输出提供了新途径。要点:• 确定了SACE_Lrp和MarR之间的层级调节关系。• MarR直接控制红霉素生物合成和输出基因的表达。• SACE_Lrp - MarR调节元件的联合工程改造提高了红霉素产量。

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