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将植物代谢工程改造为微生物:从系统生物学到合成生物学。

Engineering plant metabolism into microbes: from systems biology to synthetic biology.

机构信息

Department of Chemical and Biological Engineering, Rensselaer Polytechnic Institute, Troy, NY 12180, United States; Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, NY 12180, United States.

出版信息

Curr Opin Biotechnol. 2013 Apr;24(2):291-9. doi: 10.1016/j.copbio.2012.08.010. Epub 2012 Sep 15.

Abstract

Plant metabolism represents an enormous repository of compounds that are of pharmaceutical and biotechnological importance. Engineering plant metabolism into microbes will provide sustainable solutions to produce pharmaceutical and fuel molecules that could one day replace substantial portions of the current fossil-fuel based economy. Metabolic engineering entails targeted manipulation of biosynthetic pathways to maximize yields of desired products. Recent advances in Systems Biology and the emergence of Synthetic Biology have accelerated our ability to design, construct and optimize cell factories for metabolic engineering applications. Progress in predicting and modeling genome-scale metabolic networks, versatile gene assembly platforms and delicate synthetic pathway optimization strategies has provided us exciting opportunities to exploit the full potential of cell metabolism. In this review, we will discuss how systems and synthetic biology tools can be integrated to create tailor-made cell factories for efficient production of natural products and fuel molecules in microorganisms.

摘要

植物代谢代表了一个巨大的化合物库,这些化合物具有药物和生物技术的重要性。将植物代谢工程应用于微生物中,将为生产药物和燃料分子提供可持续的解决方案,这些分子有朝一日可能取代当前以化石燃料为基础的经济的很大一部分。代谢工程需要对生物合成途径进行有针对性的操作,以最大限度地提高所需产物的产量。系统生物学的最新进展和合成生物学的出现加速了我们设计、构建和优化细胞工厂用于代谢工程应用的能力。在预测和建模基因组规模代谢网络、多功能基因组装平台和精细的合成途径优化策略方面的进展,为我们充分利用细胞代谢的潜力提供了令人兴奋的机会。在这篇综述中,我们将讨论如何整合系统和合成生物学工具,为微生物中天然产物和燃料分子的高效生产创建定制的细胞工厂。

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