Dyo Yuliya M, Purton Saul
Molecular Research of Microalgae Laboratory, M. A. Ajtkhozhin Institute of Molecular Biology and Biochemistry, Almaty, Kazakhstan.
Department of Biotechnology, Kazakh National Research Technology University, Almaty, Kazakhstan.
Microbiology (Reading). 2018 Feb;164(2):113-121. doi: 10.1099/mic.0.000599. Epub 2018 Jan 3.
The chloroplast of Chlamydomonas reinhardtii and other microalgae represents an attractive new platform for the synthesis of recombinant therapeutics using synthetic biology (synbio) approaches. Transgenes can be designed in silico, assembled from validated DNA parts and inserted at precise and predetermined locations within the chloroplast genome to give stable synthesis of a desired recombinant protein. Numerous recent examples of different therapeutic proteins produced successfully in the C. reinhardtii chloroplast highlight the potential of this green alga as a simple, low-cost and benign host. Furthermore, some of the features of the alga may offer additional advantages over more-established microbial, mammalian or plant-based systems. These include efficient folding and accumulation of the product in the chloroplast; a lack of contaminating toxins or infectious agents; reduced downstream processing requirements; the possibility to make complex therapeutics such as immunotoxins; and the opportunity to use the whole alga as a low-cost oral vaccine. In this paper we review the current status of algal chloroplast engineering with respect to therapeutic proteins. We also consider future advances in synbio tools, together with improvements to recipient strains, which will allow the design of bespoke strains with high levels of productivity.
莱茵衣藻和其他微藻的叶绿体是利用合成生物学方法合成重组治疗药物的一个有吸引力的新平台。转基因可以在计算机上设计,由经过验证的DNA片段组装而成,并插入叶绿体基因组内精确的预定位置,以实现所需重组蛋白的稳定合成。最近有许多在莱茵衣藻叶绿体中成功生产不同治疗性蛋白质的例子,凸显了这种绿藻作为一种简单、低成本且安全的宿主的潜力。此外,与更成熟的微生物、哺乳动物或植物系统相比,这种藻类的一些特性可能具有额外优势。这些优势包括产物在叶绿体中高效折叠和积累;不存在污染毒素或感染因子;减少下游加工需求;能够生产免疫毒素等复杂治疗药物;以及有机会将整个藻类用作低成本口服疫苗。在本文中,我们综述了藻类叶绿体工程在治疗性蛋白质方面的现状。我们还考虑了合成生物学工具的未来进展,以及受体菌株的改进,这将有助于设计出具有高生产力的定制菌株。