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Genome-Scale Metabolic Model of Actinosynnema pretiosum ATCC 31280 and Its Application for Ansamitocin P-3 Production Improvement

机译:猕猴桃ATCC 31280的基因组规模代谢模型及其在安托霉素P-3生产改进中的应用

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Actinosynnema pretiosum ATCC 31280 is the producer of antitumor agent ansamitocin P-3 (AP-3). Understanding of the AP-3 biosynthetic pathway and the whole metabolic network in A. pretiosum is important for the improvement of AP-3 titer. In this study, we reconstructed the first complete Genome-Scale Metabolic Model (GSMM) Aspm1282 for A. pretiosum ATCC 31280 based on the newly sequenced genome, with 87% reactions having definite functional annotation. The model has been validated by effectively predicting growth and the key genes for AP-3 biosynthesis. Then we built condition-specific models for an AP-3 high-yield mutant NXJ-24 by integrating Aspm1282 model with time-course transcriptome data. The changes of flux distribution reflect the metabolic shift from growth-related pathway to secondary metabolism pathway since the second day of cultivation. The AP-3 and methionine metabolisms were both enriched in active flux for the last two days, which uncovered the relationships among cell growth, activation of methionine metabolism, and the biosynthesis of AP-3. Furthermore, we identified four combinatorial gene modifications for overproducing AP-3 by in silico strain design, which improved the theoretical flux of AP-3 biosynthesis from 0.201 to 0.372 mmol/gDW/h. Upregulation of methionine metabolic pathway is a potential strategy to improve the production of AP-3.
机译:t肌放线菌ATCC 31280是抗肿瘤药安妥霉素P-3(AP-3)的生产商。理解Pre.iosus的AP-3生物合成途径和整个代谢网络对于改善AP-3滴度很重要。在这项研究中,我们基于新测序的基因组重建了第一个完整的全基因组规模代谢模型(GSMM)Aspm1282 for pretiosum ATCC 31280,其中87%的反应具有明确的功能注释。该模型已通过有效预测AP-3生物合成的生长和关键基因进行了验证。然后,我们通过将Aspm1282模型与时程转录组数据进行整合,为AP-3高产突变体NXJ-24建立了条件特定的模型。从培养的第二天开始,通量分布的变化反映了代谢从生长相关途径向次级代谢途径的转变。在最后两天,AP-3和蛋氨酸的代谢都富集了有效通量,这揭示了细胞生长,蛋氨酸代谢的激活和AP-3的生物合成之间的关系。此外,我们通过计算机菌株设计鉴定了用于过量生产AP-3的四种组合基因修饰,这将AP-3生物合成的理论通量从0.201提高到0.372 mmol / gDW / h。蛋氨酸代谢途径的上调是提高AP-3产量的潜在策略。

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