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Identification and Biotechnological Application of Novel Regulatory Genes Involved in Streptomyces Polyketide Overproduction through Reverse Engineering Strategy

机译:通过反向工程策略涉及链霉菌聚酮化合物生产过剩的新型调控基因的鉴定和生物技术应用

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摘要

Polyketide belongs to a family of abundant natural products typically produced by the filamentous soil bacteria Streptomyces. Similar to the biosynthesis of most secondary metabolites produced in the Streptomyces species, polyketide compounds are synthesized through tight regulatory networks in the cell, and thus extremely low levels of polyketides are typically observed in wild-type strains. Although many Streptomyces polyketides and their derivatives have potential to be used as clinically important pharmaceutical drugs, traditional strain improvement strategies such as random recursive mutagenesis have long been practiced with little understanding of the molecular basis underlying enhanced polyketide production. Recently, identifying, understanding, and applying a novel polyketide regulatory system identified from various Omics approaches, has become an important tool for rational Streptomyces strain improvement. In this paper, DNA microarray-driven reverse engineering efforts for improving titers of polyketides are briefly summarized, primarily focusing on our recent results of identification and application of novel global regulatory genes such as wblA, SCO1712, and SCO5426 in Streptomyces species. Sequential targeted gene manipulation involved in polyketide biosynthetic reguation synergistically provided an efficient and rational strategy for Streptomyces strain improvement. Moreover, the engineered regulation-optimized Streptomyces mutant strain was further used as a surrogate host for heterologous expression of polyketide pathway.
机译:聚酮化合物属于丰富的天然产物家族,通常由丝状土壤细菌链霉菌产生。类似于链霉菌种中产生的大多数次级代谢产物的生物合成,聚酮化合物是通过细胞中紧密的调节网络合成的,因此在野生型菌株中通常观察到极低的聚酮水平。尽管许多链霉菌聚酮化合物及其衍生物有可能被用作临床上重要的药物,但长期以来一直在实践传统的菌株改良策略,例如随机递归诱变,而对聚酮化合物生产基础的分子基础了解甚少。最近,鉴定,理解和应用从各种Omics方法鉴定出的新型聚酮化合物调节系统,已成为合理改良链霉菌菌株的重要工具。在本文中,简要总结了DNA芯片驱动的逆向工程技术,以改善聚酮化合物的效价,主要集中在我们最近鉴定和应用链霉菌属物种中的新型全球调控基因(如wblA,SCO1712和SCO5426)的结果。顺序靶向的基因操纵参与聚酮化合物生物合成调节协同增效为链霉菌菌株的改良提供了一种有效而合理的策略。此外,工程改造的监管优化链霉菌菌株进一步用作替代宿主的聚酮化合物途径的异源表达。

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