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Developmental regulator BldD directly regulates lincomycin biosynthesis in Streptomyces lincolnensis

机译:发育稳压器BLDD直接调节Streptomyces Lincolnensis中的Lincomcin生物合成

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The regulatory mechanism of lincomycin biosynthesis remains largely unknown, although lincomycin and its derivatives have been of great application in pharmaceutical industry. As a global regulator, BldD is widespread in Streptomyces, and functions as an on-off switch to regulate the transition from morphological differentiation to secondary metabolism, inspiring us to explore scarcely regulatory realm of lincomycin biosynthesis. In this work, deletion of bldD gene (SLCG_1664) in Streptomyces lincolnensis blocked the sporulation and nearly abolished lincomycin production, while the morphological phenotype and lincomycin production were restored when introducing a functional Delta bldD gene into the Delta bldD mutant. S. lincolnensis BldD (BIdD(SL)) was validated to bind to upstream regions of lincomycin biosynthetic structural genes lmbA, lmbC-lmbD, ImbE, lmbV-lmbW, resistant genes lmrA, lmrB, lmrC, and regulatory gene lmbU. Disruption of bldD significantly decreased the transcription of genes in lincomycin biosynthetic cluster, thus resulting in the sharply loss of lincomycin production. These findings indicate that BldD(SE), similar to Saccharopolyspora erythraea BldD (BIdD(SE)), directly regulates the biosynthesis of lincomycin. What's more, we discovered that BldD(SE) could bind to upstream regions of lmbA, lmbV-lmbW, lmrA and lmrC. Corresponding to this, S. lincolnensis BldD can bind to upstream region of eryAl-eryBIV, revealing an interactional regulation of the two BldDs. In summary, our data indicated that the developmental regulator BldD played a vital role in directly regulating the biosynthesis of lincomycin, and expanded the knowledge on lincomycin biosynthetic regulation in S. lincolnensis. (C) 2019 Elsevier Inc. All rights reserved.
机译:林霉素生物合成的调节机制仍然很大程度上是未知的,尽管林霉素及其衍生物在制药行业的应用方面具有很大的应用。作为全球调节因子,BLDD在链霉菌中普及,并用作开关切换,以调节从形态分化与次生代谢的转变,鼓励我们探索林核霉素生物合成的几乎监管领域。在这项工作中,缺失BLDD基因(SLCG_1664)在链霉菌菌林霉菌中阻断了孢子率和几乎废除的林霉素生产,而在将功能性Delta BLDD基因引入Delta BLDD突变体时恢复了形态学表型和林霉菌产量。验证了林肯森斯BLDD(BIDD(SL)),以结合林霉素生物合成结构基因LMBA,LMBC-LMBD,IMBE,LMBV-LMBW,抗性基因LMRA,LMRB,LMRC和调节基因LMBU的上游区域。 BLDD的破坏显着降低了林霉素生物合成簇中基因的转录,从而导致林霉素生产急剧丧失。这些发现表明,类似于Saccharopolyspora erythraea BLDD(BIDD(SE))的BLDD(SE)直接调节林霉素的生物合成。更重要的是,我们发现BLDD(SE)可以与LMBA,LMBV-LMBW,LMRA和LMRC的上游区域结合。对应于此,S.LINCOLNENESIS BLDD可以结合ERYAL-erybiv的上游区域,揭示了两个BLDD的互动调节。总之,我们的数据表明,发育调节器BLDD在直接调节林霉素的生物合成方面发挥了至关重要的作用,并扩大了林肯尼斯林霉素生物合成调控的知识。 (c)2019 Elsevier Inc.保留所有权利。

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