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首页> 外文期刊>Microbial Cell Factories >Heterologous expression of Phanerochaete chrysosporium cellobiose dehydrogenase in Trichoderma reesei
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Heterologous expression of Phanerochaete chrysosporium cellobiose dehydrogenase in Trichoderma reesei

机译:Trichoderma Reesei的Phanerochaete Chrysosporium Cellobiose脱氢酶的异源表达

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Cellobiose dehydrogenase from Phanerochaete chrysosporium (PcCDH) is a key enzyme in lignocellulose depolymerization, biosensors and biofuel cells. For these applications, it should retain important molecular and catalytic properties when recombinantly expressed. While homologous expression is time-consuming and the prokaryote Escherichia coli is not suitable for expression of the two-domain flavocytochrome, the yeast Pichia pastoris is hyperglycosylating the enzyme. Fungal expression hosts like Aspergillus niger and Trichoderma reesei were successfully used to express CDH from the ascomycete Corynascus thermophilus. This study describes the expression of basidiomycetes PcCDH in T. reesei (PcCDHTr) and the detailed comparison of its molecular, catalytic and electrochemical properties in comparison with PcCDH expressed by P. chrysosporium and P. pastoris (PcCDHPp). PcCDHTr was recombinantly produced with a yield of 600?U?L?1 after 4?days, which is fast compared to the secretion of the enzyme by P. chrysosporium. PcCDHTr and PcCDH were purified to homogeneity by two chromatographic steps. Both enzymes were comparatively characterized in terms of molecular and catalytic properties. The pH optima for electron acceptors are identical for PcCDHTr and PcCDH. The determined FAD cofactor occupancy of 70% for PcCDHTr is higher than for other recombinantly produced CDHs and its catalytic constants are in good accordance with those of PcCDH. Mass spectrometry showed high mannose-type N-glycans on PcCDH, but only single N-acetyl-d-glucosamine additions at the six potential N-glycosylation sites of PcCDHTr, which indicates the presence of an endo-N-acetyl-β-d-glucosaminidase in the supernatant. Heterologous production of PcCDHTr is faster and the yield higher than secretion by P. chrysosporium. It also does not need a cellulose-based medium that impedes efficient production and purification of CDH by binding to the polysaccharide. The obtained high uniformity of PcCDHTr glycoforms will be very useful to investigate electron transfer characteristics in biosensors and biofuel cells, which are depending on the spatial restrictions inflicted by high-mannose N-glycan trees. The determined catalytic and electrochemical properties of PcCDHTr are very similar to those of PcCDH and the FAD cofactor occupancy is good, which advocates T. reesei as expression host for engineered PcCDH for biosensors and biofuel cells.
机译:来自Phanerochaete Chrysosporium(PCCH)的纤维糖脱氢酶是木质纤维素淀粉蛋白糖苷脱聚,生物传感器和生物燃料细胞的关键酶。对于这些应用,它应该在重组表达时保留重要的分子和催化性质。虽然同源表达是耗时的,并且原核生物大肠杆菌不适合于双结构域黄鳞菌的表达,酵母Pichia牧场是高糖基化的酶。像曲霉尼日尔和Trichoderma Reesei这样的真菌表达宿主已成功地从Ascomycete Corynascus Hotherophilus表达CDH。该研究描述了与P. Chrysporium和P. Pastoris(PCCDHPP)表达的PCCHDH相比其分子,催化和电化学性质的碱霉素PCCH的表达及其分子,催化和电化学性质的详细比较。 PCCHTR经重组生产,产率为600?u?1〜1后4天,与P. Chrysosporium的酶分泌快速。通过两种色谱步骤纯化PCCHTR和PCCH以均匀性。两种酶在分子和催化性质方面均相对特征。电子受体的pH值对于PCCHTR和PCCDH是相同的。对于PCCHTR的40%的确定的FAD Cofactor占用率高于其他重组产生的CDH,其催化常数与PCCDH的催化常数符合。质谱仪在PCCH上显示出高甘露糖型N-聚糖,但仅在PCCHTR的六个潜在的N-糖基化位点处添加单个N-乙酰-D-葡糖胺添加,这表明存在endo-n-乙酰基-β-D的存在 - 上清液中的葡糖胺酶。 PCCHTR的异源生产速度快,产量高于P. Chrysosporium的分泌。它还不需要基于纤维素的培养基,通过与多糖结合地阻碍CDH的有效生产和纯化。所获得的PCCHTR糖糖族的高均匀性对于研究生物传感器和生物燃料电池中的电子传递特性是非常有用的,这取决于高甘​​露糖醛树木造成的空间限制。固定的催化和电化学性能与PCCH的催化和电化学性质非常相似,并且FAD Cofactor占用率良好,其倡导T.Reesei作为生物传感器和生物燃料细胞的工程化PCODDH的表达宿主。

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