O'Neill Ellis C, Kelly Steven
a Department of Plant Sciences , University of Oxford , Oxford , UK.
Crit Rev Biotechnol. 2017 Sep;37(6):779-802. doi: 10.1080/07388551.2016.1237467. Epub 2016 Oct 4.
The photosynthetic, autotrophic lifestyle of plants and algae position them as ideal platform organisms for sustainable production of biomolecules. However, their use in industrial biotechnology is limited in comparison to heterotrophic organisms, such as bacteria and yeast. This usage gap is in part due to the challenges in generating genetically modified plants and algae and in part due to the difficulty in the development of synthetic biology tools for manipulating gene expression in these systems. Plant and algal metabolism, pre-installed with multiple biosynthetic modules for precursor compounds, bypasses the requirement to install these pathways in conventional production organisms, and creates new opportunities for the industrial production of complex molecules. This review provides a broad overview of the successes, challenges and future prospects for genetic engineering in plants and algae for enhanced or de novo production of biomolecules. The toolbox of technologies and strategies that have been used to engineer metabolism are discussed, and the potential use of engineered plants for industrial manufacturing of large quantities of high-value compounds is explored. This review also discusses the routes that have been taken to modify the profiles of primary metabolites for increasing the nutritional quality of foods as well as the production of specialized metabolites, cosmetics, pharmaceuticals and industrial chemicals. As the universe of high-value biosynthetic pathways continues to expand, and the tools to engineer these pathways continue to develop, it is likely plants and algae will become increasingly valuable for the biomanufacturing of high-value compounds.
植物和藻类的光合自养生活方式使其成为可持续生产生物分子的理想平台生物。然而,与细菌和酵母等异养生物相比,它们在工业生物技术中的应用受到限制。这种应用差距部分是由于生成转基因植物和藻类存在挑战,部分是由于难以开发用于操纵这些系统中基因表达的合成生物学工具。植物和藻类的代谢预先安装了用于前体化合物的多个生物合成模块,无需在传统生产生物中安装这些途径,为复杂分子的工业生产创造了新机会。本综述广泛概述了植物和藻类基因工程在增强或从头生产生物分子方面的成功、挑战和未来前景。讨论了用于工程化代谢的技术和策略工具箱,并探讨了工程植物在大量工业制造高价值化合物方面的潜在用途。本综述还讨论了为提高食品营养质量以及生产特殊代谢产物、化妆品、药品和工业化学品而改变初级代谢产物谱的途径。随着高价值生物合成途径的范围不断扩大,以及工程化这些途径的工具不断发展,植物和藻类在高价值化合物的生物制造中可能会变得越来越有价值。