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基于基因组尺度代谢重建的毕赤酵母 Pichia pastoris 遗传改造与模拟分析

Genome-scale metabolic reconstruction and in silico analysis of methylotrophic yeast Pichia pastoris for strain improvement.

机构信息

NUS Graduate School for Integrative Sciences and Engineering, National University of Singapore, 28 Medical Drive, #05-01, 117456, Singapore.

出版信息

Microb Cell Fact. 2010 Jul 1;9:50. doi: 10.1186/1475-2859-9-50.

Abstract

BACKGROUND

Pichia pastoris has been recognized as an effective host for recombinant protein production. A number of studies have been reported for improving this expression system. However, its physiology and cellular metabolism still remained largely uncharacterized. Thus, it is highly desirable to establish a systems biotechnological framework, in which a comprehensive in silico model of P. pastoris can be employed together with high throughput experimental data analysis, for better understanding of the methylotrophic yeast's metabolism.

RESULTS

A fully compartmentalized metabolic model of P. pastoris (iPP668), composed of 1,361 reactions and 1,177 metabolites, was reconstructed based on its genome annotation and biochemical information. The constraints-based flux analysis was then used to predict achievable growth rate which is consistent with the cellular phenotype of P. pastoris observed during chemostat experiments. Subsequent in silico analysis further explored the effect of various carbon sources on cell growth, revealing sorbitol as a promising candidate for culturing recombinant P. pastoris strains producing heterologous proteins. Interestingly, methanol consumption yields a high regeneration rate of reducing equivalents which is substantial for the synthesis of valuable pharmaceutical precursors. Hence, as a case study, we examined the applicability of P. pastoris system to whole-cell biotransformation and also identified relevant metabolic engineering targets that have been experimentally verified.

CONCLUSION

The genome-scale metabolic model characterizes the cellular physiology of P. pastoris, thus allowing us to gain valuable insights into the metabolism of methylotrophic yeast and devise possible strategies for strain improvement through in silico simulations. This computational approach, combined with synthetic biology techniques, potentially forms a basis for rational analysis and design of P. pastoris metabolic network to enhance humanized glycoprotein production.

摘要

背景

毕赤酵母已被公认为是生产重组蛋白的有效宿主。已经有许多报道致力于改进该表达系统。然而,其生理学和细胞代谢仍在很大程度上未被阐明。因此,建立一个系统生物技术框架是非常可取的,在该框架中,可以与高通量实验数据分析一起使用毕赤酵母的全面计算机模拟,以更好地理解甲醇营养型酵母的代谢。

结果

基于毕赤酵母的基因组注释和生化信息,构建了一个完全分区的代谢模型(iPP668),该模型由 1361 个反应和 1177 个代谢物组成。然后使用基于约束的通量分析来预测可实现的生长速率,该速率与毕赤酵母在恒化器实验中观察到的细胞表型一致。随后的计算机分析进一步探讨了各种碳源对细胞生长的影响,揭示了山梨醇是培养生产异源蛋白的重组毕赤酵母菌株的有前途的候选物。有趣的是,甲醇消耗产生了高的还原当量再生率,这对有价值的药物前体的合成非常重要。因此,作为一个案例研究,我们检验了毕赤酵母系统在全细胞生物转化中的适用性,并确定了相关的代谢工程目标,这些目标已经过实验验证。

结论

该基因组规模的代谢模型描述了毕赤酵母的细胞生理学,从而使我们能够深入了解甲醇营养型酵母的代谢,并通过计算机模拟设计可能的菌株改良策略。这种计算方法结合合成生物学技术,可能为理性分析和设计毕赤酵母代谢网络以增强人源化糖蛋白生产提供基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1646/2908565/5e00e6c9dc00/1475-2859-9-50-1.jpg

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