Department of Food Sciences and Technology, University of Natural Resources and Applied Life Sciences (BOKU), Muthgasse 11, 1190 Vienna, Austria.
Appl Microbiol Biotechnol. 2012 May;94(3):695-704. doi: 10.1007/s00253-011-3667-7. Epub 2011 Nov 13.
Pyranose dehydrogenase (PDH) is a fungal flavin-dependent sugar oxidoreductase that is highly interesting for applications in organic synthesis or electrochemistry. The low expression levels of the filamentous fungus Agaricus meleagris as well as the demand for engineered PDH make heterologous expression necessary. Recently, Aspergillus species were described to efficiently secrete recombinant PDH. Here, we evaluate recombinant protein production with expression hosts more suitable for genetic engineering. Expression in Escherichia coli resulted in no soluble or active PDH. Heterologous expression in the methylotrophic yeast Pichia pastoris was investigated using two different signal sequences as well as a codon-optimized sequence. A 96-well plate activity screening for transformants of all constructs was established and the best expressing clone was used for large-scale production in 50-L scale, which gave a volumetric yield of 223 mg L(-1) PDH or 1,330 U L(-1) d(-1) in space-time yield. Purification yielded 13.4 g of pure enzyme representing 95.8% of the initial activity. The hyperglycosylated recombinant enzyme had a 20% lower specific activity than the native enzyme; however, the kinetic properties were essentially identical. This study demonstrates the successful expression of PDH in the eukaryotic host organism P. pastoris paving the way for protein engineering. Additionally, the feasibility of large-scale production of the enzyme with this expression system together with a simplified purification scheme for easy high-yield purification is shown.
吡喃糖脱氢酶(PDH)是一种真菌黄素依赖性糖氧化还原酶,在有机合成或电化学领域的应用中非常有趣。丝状真菌蘑菇(Agaricus meleagris)的表达水平较低,以及对工程化 PDH 的需求,使得异源表达成为必要。最近,曲霉属物种被描述为能够有效地分泌重组 PDH。在这里,我们评估了更适合遗传工程的表达宿主的重组蛋白生产。在大肠杆菌中的表达导致没有可溶或活性的 PDH。在甲醇营养酵母毕赤酵母中使用两种不同的信号序列以及密码子优化序列进行了异源表达的研究。建立了用于所有构建体转化子的 96 孔板活性筛选,并使用最佳表达克隆在 50-L 规模上进行了大规模生产,时空产率为 223 mg L(-1) PDH 或 1,330 U L(-1) d(-1)。纯化得到了 13.4 g 纯酶,代表初始活性的 95.8%。与天然酶相比,高度糖基化的重组酶的比活性降低了 20%;然而,动力学性质基本相同。这项研究证明了 PDH 在真核宿主毕赤酵母中的成功表达,为蛋白质工程铺平了道路。此外,还展示了使用该表达系统进行酶的大规模生产的可行性,以及简化的纯化方案,便于进行高产率的纯化。