Institute of Molecular Plant Sciences, School of Biological Sciences, University of Edinburgh, Edinburgh EH9 3BF, United Kingdom.
Centre for Synthetic and Systems Biology, University of Edinburgh, Edinburgh EH9 3BF, United Kingdom.
Plant Physiol. 2019 May;180(1):39-55. doi: 10.1104/pp.18.01401. Epub 2019 Feb 28.
Recent advances in synthetic biology research have been underpinned by an exponential increase in available genomic information and a proliferation of advanced DNA assembly tools. The adoption of plasmid vector assembly standards and parts libraries has greatly enhanced the reproducibility of research and the exchange of parts between different labs and biological systems. However, a standardized modular cloning (MoClo) system is not yet available for cyanobacteria, which lag behind other prokaryotes in synthetic biology despite their huge potential regarding biotechnological applications. By building on the assembly library and syntax of the Plant Golden Gate MoClo kit, we have developed a versatile system called CyanoGate that unites cyanobacteria with plant and algal systems. Here, we describe the generation of a suite of parts and acceptor vectors for making (1) marked/unmarked knock-outs or integrations using an integrative acceptor vector, and (2) transient multigene expression and repression systems using known and previously undescribed replicative vectors. We tested and compared the CyanoGate system in the established model cyanobacterium sp. PCC 6803 and the more recently described fast-growing strain UTEX 2973. The UTEX 2973 fast-growth phenotype was only evident under specific growth conditions; however, UTEX 2973 accumulated high levels of proteins with strong native or synthetic promoters. The system is publicly available and can be readily expanded to accommodate other standardized MoClo parts to accelerate the development of reliable synthetic biology tools for the cyanobacterial community.
最近的合成生物学研究进展得益于可用基因组信息的指数增长和先进 DNA 组装工具的激增。质粒载体组装标准和部件库的采用极大地提高了研究的可重复性和不同实验室和生物系统之间部件的交换。然而,标准化的模块化克隆(MoClo)系统对于蓝藻来说还不可用,尽管它们在生物技术应用方面具有巨大的潜力,但它们在合成生物学方面落后于其他原核生物。通过构建植物 Golden Gate MoClo 试剂盒的组装库和语法,我们开发了一种称为 CyanoGate 的通用系统,该系统将蓝藻与植物和藻类系统结合在一起。在这里,我们描述了一系列用于构建(1)使用整合性接受载体进行标记/非标记敲除或整合的部件和接受载体套件,以及(2)使用已知和以前未描述的复制载体进行瞬时多基因表达和抑制系统的套件的生成。我们在已建立的模型蓝藻 sp. PCC 6803 和最近描述的快速生长菌株 UTEX 2973 中测试和比较了 CyanoGate 系统。只有在特定的生长条件下,UTEX 2973 的快速生长表型才明显;然而,UTEX 2973 积累了高水平的具有强天然或合成启动子的蛋白质。该系统是公开的,可以很容易地扩展以适应其他标准化的 MoClo 部件,以加速为蓝藻社区开发可靠的合成生物学工具。