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PurR家族转录调节因子促进多刺糖多孢菌中丁烯基多杀菌素的产生。

The PurR family transcriptional regulator promotes butenyl-spinosyn production in Saccharopolyspora pogona.

作者信息

Li Xinying, Wang Jingnan, Su Chang, Guo Chao, Xu Zhouqin, Wang Kehui, Pang Jian, Lv Bo, Wang Chao, Li Chun

机构信息

Key Laboratory of Medical Molecule Science and Pharmaceutics Engineering, Ministry of Industry and Information Technology, Institute of Biochemical Engineering, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing, 100081, China.

Academy of National Food and Strategic Reserves Administration, Grain and Oils Processing Research Institute, Beijing, 100037, China.

出版信息

Appl Microbiol Biotechnol. 2025 Jan 21;109(1):14. doi: 10.1007/s00253-024-13390-1.

Abstract

Butenyl-spinosyn, derived from Saccharopolyspora pogona, is a broad-spectrum and effective bioinsecticide. However, the regulatory mechanism affecting butenyl-spinosyn synthesis has not been fully elucidated, which hindered the improvement of production. Here, a high-production strain S. pogona H2 was generated by Cobalt-60 γ-ray mutagenesis, which showed a 2.7-fold increase in production compared to the wild-type strain S. pogona ASAGF58. A comparative transcriptomic analysis between S. pogona ASAGF58 and H2 was performed to elucidate the high-production mechanism that more precursors and energy were used to synthesize of butenyl-spinosyn. Fortunately, a PurR family transcriptional regulator TF00350 was discovered. TF00350 overexpression strain RS00350 induced morphological differentiation and butenyl-spinosyn production, ultimately leading to a 5.5-fold increase in butenyl-spinosyn production (141.5 ± 1.03 mg/L). Through transcriptomics analysis, most genes related to purine metabolism pathway were downregulated, and the butenyl-spinosyn biosynthesis gene was upregulated by increasing the concentration of c-di-GMP and decreasing the concentration of c-di-AMP. These results provide valuable insights for further mining key regulators and improving butenyl-spinosyn production. KEY POINTS: • A high production strain of S. pogona H2 was obtained by Co γ-ray mutagenesis. • Positive regulator TF00350 identified by transcriptomics, increasing butenyl-spinosyn production by 5.5-fold. • TF00350 regulated of butenyl-spinosyn production by second messengers.

摘要

源自多刺糖多孢菌的丁烯基多杀菌素是一种广谱高效的生物杀虫剂。然而,影响丁烯基多杀菌素合成的调控机制尚未完全阐明,这阻碍了其产量的提高。在此,通过钴-60γ射线诱变产生了高产菌株多刺糖多孢菌H2,与野生型菌株多刺糖多孢菌ASAGF58相比,其产量提高了2.7倍。对多刺糖多孢菌ASAGF58和H2进行了比较转录组分析,以阐明高产机制,即更多的前体和能量用于丁烯基多杀菌素的合成。幸运的是,发现了一个PurR家族转录调节因子TF00350。TF00350过表达菌株RS00350诱导形态分化和丁烯基多杀菌素产生,最终导致丁烯基多杀菌素产量提高5.5倍(141.5±1.03mg/L)。通过转录组学分析,大多数与嘌呤代谢途径相关的基因下调,而丁烯基多杀菌素生物合成基因通过增加环二鸟苷酸(c-di-GMP)浓度和降低环二腺苷酸(c-di-AMP)浓度而上调。这些结果为进一步挖掘关键调节因子和提高丁烯基多杀菌素产量提供了有价值的见解。要点:•通过钴γ射线诱变获得了多刺糖多孢菌高产菌株H2。•通过转录组学鉴定出正调节因子TF00350,使丁烯基多杀菌素产量提高5.5倍。•TF00350通过第二信使调节丁烯基多杀菌素的产生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3b65/11750948/6f9b7b5b8b4e/253_2024_13390_Fig1_HTML.jpg

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