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解析链霉菌 CB03234-S 中产生十员环烯二炔类 Tiancimycins 的特定通路调控网络

Deciphering the pathway-specific regulatory network for production of ten-membered enediyne Tiancimycins in Streptomyces sp. CB03234-S.

机构信息

Xiangya International Academy of Translational Medicine, Central South University, Tongzipo Road, #172, Yuelu District, Changsha, 410013, Hunan, China.

Hunan Engineering Research Center of Combinatorial Biosynthesis and Natural Product Drug Discovery, Changsha, 410013, Hunan, China.

出版信息

Microb Cell Fact. 2022 Sep 10;21(1):188. doi: 10.1186/s12934-022-01916-z.

Abstract

BACKGROUND

The anthraquinone-fused 10-membered enediynes (AFEs), represented by tiancimycins (TNMs), possess a unique structural feature and promising potentials as payloads of antitumor antibody-drug conjugates. Despite many efforts, the insufficient yields remain a practical challenge for development of AFEs. Recent studies have suggested a unified basic biosynthetic route for AFEs, those core genes involved in the formation of essential common AFE intermediates, together with multiple regulatory genes, are highly conserved among the reported biosynthetic gene clusters (BGCs) of AFEs. The extreme cytotoxicities of AFEs have compelled hosts to evolve strict regulations to control their productions, but the exact roles of related regulatory genes are still uncertain.

RESULTS

In this study, the genetic validations of five putative regulatory genes present in the BGC of TNMs revealed that only three (tnmR1, tnmR3 and tnmR7) of them were involved in the regulation of TNMs biosynthesis. The bioinformatic analysis also revealed that they represented three major but distinct groups of regulatory genes conserved in all BGCs of AFEs. Further transcriptional analyses suggested that TnmR7 could promote the expressions of core enzymes TnmD/G and TnmN/O/P, while TnmR3 may act as a sensor kinase to work with TnmR1 and form a higher class unconventional orphan two-component regulatory system, which dynamically represses the expressions of TnmR7, core enzymes TnmD/G/J/K1/K2 and auxiliary proteins TnmT2/S2/T1/S1. Therefore, the biosynthesis of TNMs was stringently restricted by this cascade regulatory network at early stage to ensure the normal cell growth, and then partially released at the stationary phase for product accumulation.

CONCLUSION

The pathway-specific cascade regulatory network consisting with TnmR3/R1 and TnmR7 was deciphered to orchestrate the production of TNMs. And it could be speculated as a common regulatory mechanism for productions of AFEs, which shall provide us new insights in future titer improvement of AFEs and potential dynamic regulatory applications in synthetic biology.

摘要

背景

蒽醌融合的 10 元烯二炔(AFE),以田可霉素(TNMs)为代表,具有独特的结构特征和作为抗肿瘤抗体药物偶联物有效载荷的巨大潜力。尽管已经做了很多努力,但产量不足仍然是其发展的实际挑战。最近的研究表明,AFE 具有统一的基本生物合成途径,那些参与形成必需的 AFE 中间体的核心基因,以及多个调节基因,在报道的 AFE 生物合成基因簇(BGC)中高度保守。AFE 的极端细胞毒性迫使宿主进化出严格的调控机制来控制其产生,但相关调节基因的确切作用仍不确定。

结果

本研究对 TNM BGC 中存在的五个假定调节基因进行了遗传验证,结果表明只有三个(tnmR1、tnmR3 和 tnmR7)参与了 TNM 生物合成的调控。生物信息学分析还表明,它们代表了 AFE BGC 中保守的三个主要但不同的调节基因群。进一步的转录分析表明,TnmR7 可以促进核心酶 TnmD/G 和 TnmN/O/P 的表达,而 TnmR3 可能作为传感器激酶与 TnmR1 一起工作,形成一个更高层次的非传统孤儿双组分调节系统,该系统动态抑制 TnmR7、核心酶 TnmD/G/J/K1/K2 和辅助蛋白 TnmT2/S2/T1/S1 的表达。因此,该级联调控网络在早期严格限制 TNM 的生物合成,以确保细胞的正常生长,然后在静止期部分释放,以积累产物。

结论

该研究解析了由 TnmR3/R1 和 TnmR7 组成的具有特定途径的级联调控网络,以协调 TNM 的产生。这可以推测为 AFE 产生的共同调节机制,为未来提高 AFE 的产量和在合成生物学中进行潜在的动态调控应用提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dfc8/9464397/2f63d5e5dbc6/12934_2022_1916_Fig1_HTML.jpg

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