Perozeni Federico, Baier Thomas
Department of Biotechnology, University of Verona, 37134 Verona, Italy.
Algae Biotechnology and Bioenergy, Faculty of Biology, Center for Biotechnology (CeBiTec), Bielefeld University, 33615 Bielefeld, Germany.
Life (Basel). 2023 Jul 15;13(7):1566. doi: 10.3390/life13071566.
The green model microalga recently emerged as a sustainable production chassis for the efficient biosynthesis of recombinant proteins and high-value metabolites. Its capacity for scalable, rapid and light-driven growth in minimal salt solutions, its simplicity for genetic manipulation and its "Generally Recognized As Safe" (GRAS) status are key features for its application in industrial biotechnology. Although nuclear transformation has typically resulted in limited transgene expression levels, recent developments now allow the design of powerful and innovative bioproduction concepts. In this review, we summarize the main obstacles to genetic engineering in and describe all essential aspects in sequence adaption and vector design to enable sufficient transgene expression from the nuclear genome. Several biotechnological examples of successful engineering serve as blueprints for the future establishment of as a green cell factory.
绿色模式微藻最近成为用于重组蛋白和高价值代谢物高效生物合成的可持续生产底盘。它在低盐溶液中可扩展、快速且受光驱动生长的能力、基因操作的简便性以及其“一般认为安全”(GRAS)的地位是其在工业生物技术中应用的关键特征。尽管核转化通常导致转基因表达水平有限,但最近的进展现在允许设计强大且创新的生物生产概念。在本综述中,我们总结了[具体微藻名称未给出]基因工程的主要障碍,并描述了序列适配和载体设计中所有必要方面,以实现来自核基因组的足够转基因表达。几个成功工程的生物技术实例可作为未来将[具体微藻名称未给出]建立为绿色细胞工厂的蓝图。