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Synthetic biology and molecular genetics in non-conventional yeasts: Current tools and future advances

机译:非常规酵母中的合成生物学和分子遗传学:当前的工具和未来的进展

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coupling the tools of synthetic biology with traditional molecular genetic techniques can enable the rapid prototyping and optimization of yeast strains. While the era of yeast synthetic biology began in the well-characterized model organism Saccharomyces cerevisiae, it is swiftly expanding to include non conventional yeast production systems such as Hansenula polymorpha, Kluyveromyces lactis, Pichia pas torts, and Yarrowia lipolytica. These yeasts already have roles in the manufacture of vaccines, therapeutic proteins, food additives, and biorenewable chemicals, but recent synthetic biology advances have the potential to greatly expand and diversify their impact on biotechnology. In this review, we summarize the development of synthetic biological tools (including promoters and terminators) and enabling molecular genetics approaches that have been applied in these four promising alternative biomanufacturing Platforms. An emphasis is placed on synthetic parts and genome editing tools. Finally, we discuss examples of synthetic tools developed in other organisms that can be adapted or optimized for these hosts in the near future. (C)2015 Elsevier Inc. All rights reserved.
机译:将合成生物学的工具与传统的分子遗传技术相结合,可以实现酵母菌株的快速原型设计和优化。尽管酵母合成生物学的时代始于功能强大的典型生物酿酒酵母,但它迅速扩展到包括非常规酵母生产系统,如多形汉逊酵母,乳酸克鲁维酵母,毕赤酵母和解脂耶氏酵母。这些酵母菌已经在疫苗,治疗性蛋白质,食品添加剂和生物可再生化学物质的生产中发挥作用,但是最近合成生物学的进步具有极大地扩展和分散其对生物技术影响的潜力。在这篇综述中,我们总结了合成生物学工具(包括启动子和终止子)的发展,以及使分子遗传学方法在这四个有希望的替代生物制造平台中得到应用的方法。重点放在合成部分和基因组编辑工具上。最后,我们讨论了在其他生物中开发的合成工具的示例,这些工具可以在不久的将来针对这些宿主进行调整或优化。 (C)2015 Elsevier Inc.保留所有权利。

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