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Time-Resolved Transcriptomics and Constraint-Based Modeling Identify System-Level Metabolic Features and Overexpression Targets to Increase Spiramycin Production in Streptomyces ambofaciens

机译:时间分辨的转录组学和基于约束的建模可确定系统水平的代谢特征和过量表达靶点,以增加 Streptomyces ambofaciens 中的螺旋霉素产量

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In this study we have applied an integrated system biology approach to characterize the metabolic landscape of Streptomyces ambofaciens and to identify a list of potential metabolic engineering targets for the overproduction of the secondary metabolites in this microorganism. We focused on an often overlooked growth period (i.e., post-first rapid growth phase) and, by integrating constraint-based metabolic modeling with time resolved RNA-seq data, we depicted the main effects of changes in gene expression on the overall metabolic reprogramming occurring in S. ambofaciens . Moreover, through metabolic modeling, we unraveled a set of candidate overexpression gene targets hypothetically leading to spiramycin overproduction. Model predictions were experimentally validated by genetic manipulation of the recently described ethylmalonyl-CoA metabolic node, providing evidence that spiramycin productivity may be increased by enhancing the carbon flow through this pathway. The goal was achieved by over-expressing the ccr paralog srm4 in an ad hoc engineered plasmid. This work embeds the first metabolic reconstruction of S. ambofaciens and the successful experimental validation of model predictions and demonstrates the validity and the importance of in silico modeling tools for the overproduction of molecules with a biotechnological interest. Finally, the proposed metabolic reconstruction, which includes manually refined pathways for several secondary metabolites with antimicrobial activity, represents a solid platform for the future exploitation of S. ambofaciens biotechnological potential.
机译:在这项研究中,我们应用了集成的系统生物学方法来表征竹链霉菌的代谢态势,并为该微生物中次级代谢物的过量生产确定了潜在的代谢工程目标清单。我们专注于一个经常被忽视的生长期(即后第一个快速生长期),并且通过将基于约束的代谢模型与时间分辨的RNA-seq数据相结合,我们描述了基因表达变化对整体代谢重编程的主要影响发生在柬埔寨葡萄球菌(S. ambofaciens)中。此外,通过代谢建模,我们推测了可能导致螺旋霉素超量生产的一组候选过度表达基因靶标。通过对最近描述的乙基丙二酰-CoA代谢节点进行基因操作,对模型预测进行了实验验证,从而提供了螺菌素生产力可能会通过增强通过该途径的碳流量而增加的证据。通过在特异工程质粒中过量表达ccr旁系同源基因srm4来实现该目标。这项工作嵌入了S.ambofaciens的首次代谢重建,并成功进行了模型预测的实验验证,并证明了计算机模拟工具对于生物技术感兴趣的分子过量生产的有效性和重要性。最后,拟议的代谢重建包括人工纯化的几种具有抗微生物活性的次级代谢产物的途径,为将来利用柬埔寨链球菌的生物技术潜力提供了坚实的平台。

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