Institute for Food & Bioresource Engineering, College of Engineering, Peking University, Beijing, China,
Appl Microbiol Biotechnol. 2014 Jun;98(11):5069-79. doi: 10.1007/s00253-014-5593-y. Epub 2014 Mar 4.
The unicellular green alga Chlorella zofingiensis has been proposed as a promising producer of natural astaxanthin, a commercially important ketocarotenoid. But the genetic toolbox for this alga is not available. In the present study, an efficient transformation system was established for C. zofingiensis. The transformation system utilized a modified norflurazon-resistant phytoene desaturase (PDS-L516F, with an leucine-phenylalanine change at position 516) as the selectable marker. Three promoters from endogenous PDS, nitrate reductase (NIT), and ribulose-1,5-bisphosphate carboxylase/oxygenase small subunit (RBCS) genes were tested, with the RBCS promoter demonstrating the highest transformation efficiency. Inclusion of the first intron of the PDS gene further enhanced the efficiency by 91 %. Both particle bombardment and electroporation methods were examined, and the latter gave a fourfold higher transformation efficiency. The introduction of PDS-L516F, which exhibited a 33 % higher desaturation activity than the unaltered enzyme, enabled C. zofingiensis to produce 32.1 % more total carotenoids (TCs) and 54.1 % more astaxanthin. The enhanced accumulation of astaxanthin in transformants was revealed to be related to the increase in the transcripts of PDS, β-carotenoid ketolase (BKT), and hydroxylase (CHYb) genes. Our study clearly shows that the modified PDS gene is a dominant selectable marker for the transformation of C. zofingiensis and possibly for the genetic engineering of the carotenoid biosynthetic pathway. In addition, the engineered C. zofingiensis might serve as an improved source of natural astaxanthin.
单细胞绿藻衣藻被提议作为天然虾青素的有前途的生产者,虾青素是一种具有商业重要性的类胡萝卜素。但是,该藻类的遗传工具箱尚不可用。在本研究中,为衣藻建立了一种有效的转化系统。该转化系统利用了一种经过修饰的反式肉桂酸脱氢酶(PDS-L516F,在位置 516 处发生亮氨酸-苯丙氨酸变化)作为选择性标记。测试了来自内源性 PDS、硝酸还原酶(NIT)和核酮糖-1,5-二磷酸羧化酶/加氧酶小亚基(RBCS)基因的三个启动子,结果表明 RBCS 启动子的转化效率最高。包含 PDS 基因的第一个内含子可使效率进一步提高 91%。同时检查了粒子轰击和电穿孔两种方法,后者的转化效率提高了四倍。引入 PDS-L516F 后,其脱饱和活性比未修饰的酶高 33%,使衣藻能够产生 32.1%的总类胡萝卜素(TCs)和 54.1%的虾青素。转化子中虾青素积累的增强与 PDS、β-胡萝卜素酮化酶(BKT)和羟化酶(CHYb)基因转录物的增加有关。我们的研究清楚地表明,修饰后的 PDS 基因是衣藻转化的显性选择标记,可能也是类胡萝卜素生物合成途径的遗传工程的选择标记。此外,经过基因工程改造的衣藻可能成为天然虾青素的改良来源。