The California Center for Algae Biotechnology, University of California, San Diego, La Jolla, CA, USA.
Division of Biological Sciences, University of California, San Diego, La Jolla, CA, USA.
Appl Microbiol Biotechnol. 2022 Feb;106(4):1677-1689. doi: 10.1007/s00253-022-11790-9. Epub 2022 Feb 7.
The single-celled eukaryotic green alga Chlamydomonas reinhardtii has long been a model system for developing genetic tools for algae, and is also considered a potential platform for the production of high-value recombinant proteins. Identifying transformants with high levels of recombinant protein expression has been a challenge in this organism, as random integration of transgenes into the nuclear genome leads to low frequency of cell lines with high gene expression. Here, we describe the design of an optimized vector for the expression of recombinant proteins in Chlamydomonas, that when transformed and screened using a dual antibiotic selection, followed by screening using fluorescence activated cell sorting (FACS), permits rapid identification and isolation of microalgal transformants with high expression of a recombinant protein. This process greatly reduces the time required for the screening process, and can produce large populations of recombinant algae transformants with between 60 and 100% of cells producing the recombinant protein of interest, in as little as 3 weeks, that can then be used for whole population sequencing or individual clone analysis. Utilizing this new vector and high-throughput screening (HTS) process resulted in an order of magnitude improvement over existing methods, which normally produced under 1% of algae transformants expressing the protein of interest. This process can be applied to other algal strains and recombinant proteins to enhance screening efficiency, thereby speeding up the discovery and development of algal-derived recombinant protein products. KEY POINTS: • A protein expression vector using double-antibiotic resistance genes was designed • Double antibiotic selection causes fewer colonies with more positive for phenotype • Coupling the new vector with FACS improves microalgal screening efficiency > 60.
单细胞真核绿藻莱茵衣藻长期以来一直是开发藻类遗传工具的模式系统,也被认为是生产高价值重组蛋白的潜在平台。在该生物中,鉴定具有高水平重组蛋白表达的转化体一直是一个挑战,因为转基因随机整合到核基因组中导致具有高基因表达的细胞系频率很低。在这里,我们描述了一种优化载体的设计,用于在衣藻中表达重组蛋白,该载体在使用双重抗生素选择转化和筛选后,通过荧光激活细胞分选(FACS)筛选,允许快速鉴定和分离具有高表达重组蛋白的微藻转化体。这个过程大大减少了筛选过程所需的时间,并且可以在短短 3 周内产生具有 60%至 100%产生感兴趣的重组蛋白的重组藻类转化体的大群体,然后可以用于全群体测序或单个克隆分析。利用这种新的载体和高通量筛选(HTS)过程,与现有方法相比,筛选效率提高了一个数量级,而现有方法通常只能产生不到 1%的表达目标蛋白的藻类转化体。该过程可应用于其他藻类菌株和重组蛋白,以提高筛选效率,从而加快藻类衍生重组蛋白产品的发现和开发。要点:• 设计了一种使用双抗生素抗性基因的蛋白表达载体。• 双抗生素选择导致具有更多阳性表型的菌落更少。• 将新载体与 FACS 结合可提高微藻筛选效率>60。