Zanghellini Alexandre
Arzeda Corp., 2722 Eastlake Avenue E., Suite 150, Seattle, WA 98102, United States.
Curr Opin Biotechnol. 2014 Oct;29:132-8. doi: 10.1016/j.copbio.2014.03.002. Epub 2014 May 8.
Recent advances in systems and synthetic biology as well as metabolic engineering are poised to transform industrial biotechnology by allowing us to design cell factories for the sustainable production of valuable fuels and chemicals. To deliver on their promises, such cell factories, as much as their brick-and-mortar counterparts, will require appropriate catalysts, especially for classes of reactions that are not known to be catalyzed by enzymes in natural organisms. A recently developed methodology, de novo computational enzyme design can be used to create enzymes catalyzing novel reactions. Here we review the different classes of chemical reactions for which active protein catalysts have been designed as well as the results of detailed biochemical and structural characterization studies. We also discuss how combining de novo computational enzyme design with more traditional protein engineering techniques can alleviate the shortcomings of state-of-the-art computational design techniques and create novel enzymes with catalytic proficiencies on par with natural enzymes.
系统生物学、合成生物学以及代谢工程学的最新进展,有望通过让我们设计用于可持续生产有价值燃料和化学品的细胞工厂,来变革工业生物技术。为了兑现其承诺,这样的细胞工厂与其实体工厂一样,将需要合适的催化剂,特别是对于天然生物体中酶未知催化的反应类型。一种最近开发的方法——从头计算酶设计,可用于创建催化新反应的酶。在这里,我们综述了已设计出活性蛋白催化剂的不同化学反应类别,以及详细的生化和结构表征研究结果。我们还讨论了将从头计算酶设计与更传统的蛋白质工程技术相结合,如何能够弥补现有计算设计技术的不足,并创造出具有与天然酶相当催化能力的新型酶。