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Different expression systems for production of recombinant proteins in Saccharomyces cerevisiae

机译:在酿酒酵母中生产重组蛋白的不同表达系统

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Yeast Saccharomyces cerevisiae has become an attractive cell factory for production of commodity and speciality chemicals and proteins, such as industrial enzymes and pharmaceutical proteins. Here we evaluate most important expression factors for recombinant protein secretion: we chose two different proteins (insulin precursor (IP) and α-amylase), two different expression vectors (POTud plasmid and CPOTud plasmid) and two kinds of leader sequences (the glycosylated alpha factor leader and a synthetic leader with no glycosylation sites). We used IP and α-amylase as representatives of a simple protein and a multi-domain protein, as well as a non-glycosylated protein and a glycosylated protein, respectively. The genes coding for the two recombinant proteins were fused independently with two different leader sequences and were expressed using two different plasmid systems, resulting in eight different strains that were evaluated by batch fermentations. The secretion level (μmol/L) of IP was found to be higher than that of α-amylase for all expression systems and we also found larger variation in IP production for the different vectors. We also found that there is a change in protein production kinetics during the diauxic shift, that is, the IP was produced at higher rate during the glucose uptake phase, whereas amylase was produced at a higher rate in the ethanol uptake phase. For comparison, we also refer to data from another study, (Tyo et al. submitted) in which we used the p426GPD plasmid (standard vector using URA3 as marker gene and pGPD1 as expression promoter). For the IP there is more than 10-fold higher protein production with the CPOTud vector compared with the standard URA3-based vector, and this vector system therefore represent a valuable resource for future studies and optimization of recombinant protein production in yeast.
机译:酿酒酵母已成为一种有吸引力的细胞工厂,用于生产商品和特种化学品以及蛋白质,例如工业用酶和药物蛋白质。在这里,我们评估了重组蛋白分泌的最重要表达因子:我们选择了两种不同的蛋白(胰岛素前体(IP)和α-淀粉酶),两种不同的表达载体(POTud质粒和CPOTud质粒)和两种前导序列(糖基化的α因子前导子和无糖基化位点的合成前导子)。我们使用IP和α-淀粉酶分别代表简单蛋白和多结构域蛋白以及非糖基化蛋白和糖基化蛋白。编码这两个重组蛋白的基因分别与两个不同的前导序列融合,并使用两个不同的质粒系统表达,从而产生了八种通过分批发酵评估的菌株。在所有表达系统中,IP的分泌水平(μmol/ L)均高于α-淀粉酶,并且我们还发现,不同载体在IP产生方面存在较大差异。我们还发现在双峰转换过程中蛋白质生产动力学发生了变化,即在葡萄糖摄取阶段以较高的速率生产IP,而在乙醇摄取阶段以较高的速率生产淀粉酶。为了进行比较,我们还参考了另一项研究的数据(Tyo等人提交),其中我们使用了p426GPD质粒(使用URA3作为标记基因,pGPD1作为表达启动子的标准载体)。对于IP,与基于URA3的标准载体相比,CPOTud载体的蛋白质产量高10倍以上,因此,该载体系统代表了宝贵的资源,可用于未来研究和优化酵母中重组蛋白质的生产。

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