College of Life Science, Tianjin Normal University, Tianjin, People's Republic of China.
Mol Biotechnol. 2013 Jun;54(2):211-9. doi: 10.1007/s12033-012-9554-3.
Chlorella ellipsoidea is a single-celled eukaryotic green microalgae with high nutritional value. Its value may be further increased if a simple, reliable and cost-effective transformation method for C. ellipsoidea can be developed. In this paper, we describe a novel transformation method for C. ellipsoidea . This system is based on treatment of C. ellipsoidea cells with cellulolytic enzymes to weaken their cell walls, making them become competent to take up foreign DNA. To demonstrate the usefulness and effectiveness of this method, we treated C. ellipsoidea cells with a cell wall-degrading enzyme, cellulase, followed by transformation with plasmid pSP-Ubi-GUS harbouring both the zeocin resistance gene and the beta-glucuronidase (GUS) reporter gene that serve as selective makers for transformation. Transformants were readily obtained on zeocin selection medium, reaching transformation efficiency of 2.25 × 10(3) transformants/μg of plasmid DNA. PCR analysis has also demonstrated the presence of the GUS reporter gene in the zeocin-resistant transformants. Histochemical assays further showed the expression of the GUS activity in both primary transformants and transformants after long-term growth (10 months) with antibiotic selection on and off. Availability of a simple and efficient transformation system for C. ellipsoidea will accelerate the exploration of this microalga for a broader range of biotechnological applications, including its use as a biologic factory for the production of high-value human therapeutic proteins.
椭圆小球藻是一种具有高营养价值的单细胞真核绿藻。如果能开发出一种简单、可靠、经济有效的椭圆小球藻转化方法,其价值可能会进一步提高。本文描述了一种椭圆小球藻的新型转化方法。该系统基于用纤维素酶处理椭圆小球藻细胞,削弱其细胞壁,使它们能够吸收外源 DNA。为了证明这种方法的有用性和有效性,我们用细胞壁降解酶纤维素酶处理椭圆小球藻细胞,然后用含有zeocin 抗性基因和β-葡萄糖醛酸酶(GUS)报告基因的质粒 pSP-Ubi-GUS 进行转化,该报告基因作为转化的选择性标记。在 zeocin 选择培养基上很容易获得转化体,转化效率达到 2.25×10(3)转化体/μg 质粒 DNA。PCR 分析也表明 zeocin 抗性转化体中存在 GUS 报告基因。组织化学分析进一步表明,在抗生素选择存在和不存在的情况下,经过长期生长(10 个月)后,GUS 活性在初级转化体和转化体中均有表达。为椭圆小球藻提供一种简单高效的转化系统,将加速对该微藻的广泛生物技术应用的探索,包括将其用作生产高价值人类治疗蛋白的生物工厂。