首页> 外文期刊>Archives of Biochemistry and Biophysics >Site-directed mutagenesis improves catalytic efficiency and thermostability of Escherichia coli pH 2.5 acid phosphatase/phytase expressed in Pichia pastoris
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Site-directed mutagenesis improves catalytic efficiency and thermostability of Escherichia coli pH 2.5 acid phosphatase/phytase expressed in Pichia pastoris

机译:定点诱变可提高巴斯德毕赤酵母中表达的大肠杆菌pH 2.5酸性磷酸酶/植酸酶的催化​​效率和热稳定性

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Escherichia coli pH 2.5 acid phosphatase gene (appA) and three mutants were expressed in Pichia pastoris to assess the effect of strategic mutations or deletion on the enzyme (EcAP) biochemical properties. Mutants A131N/ V134N/D207N/S211N, C209N/D207N/S211N, and A131N/ V134N/C200N/D207N/S211N had four, two, and four additional potential N-glycosylation sites, respectively. Extracellular phytase and acid phosphatase activities were produced by these mutants and the intact enzyme r-AppA. The N-glycosylation level was higher in mutants A131NN134N/D207NIS211N (48%) and A131N/V134N/ C200N/D207N/S211N (89%) than that in r-AppA (14%). Despite no enhancement of glycosylation, mutant C200N/ D207N/S211N was different from r-AppA in the following properties. First, it was more active at pH 3.5-5.5. Second, it retained more (P < 0.01) phytase activity than that of r-AppA. Third, its specific activity of phytase was 54% higher. Lastly, its apparent catalytic efficiency K-cat/K-m for either p-nitrophenyl phosphate (5.8 x 10(5) vs 2.0 x 10(5) min(-1) M-1) or sodium phytate (6.9 x 10(6) vs 1.1 x 10(6) min(-1) M-1) was improved by factors of 1.9- and 5.3-fold, respectively. Based on the recently published E, coli phytase crystal structure, substitution of C200N in mutant C200N/D207N/S211N seems to eliminate the disulfide bond between the G helix and the GH loop in the alpha-domain of the protein. This change may modulate the domain flexibility and thereby the catalytic efficiency and thermostability of the enzyme, (C) 2000 Academic Press. [References: 35]
机译:大肠杆菌pH 2.5酸性磷酸酶基因(appA)和三个突变体在巴斯德毕赤酵母中表达,以评估策略性突变或缺失对酶(EcAP)生化特性的影响。突变体A131N / V134N / D207N / S211N,C209N / D207N / S211N和A131N / V134N / C200N / D207N / S211N分别具有四个,两个和四个潜在的N-糖基化位点。这些突变体和完整的酶r-AppA产生细胞外植酸酶和酸性磷酸酶活性。突变体A131NN134N / D207NIS211N(48%)和A131N / V134N / C200N / D207N / S211N(89%)的N-糖基化水平高于r-AppA(14%)。尽管没有糖基化增强,突变体C200N / D207N / S211N在以下特性上与r-AppA不同。首先,它在pH 3.5-5.5时更具活性。其次,它保留了比r-AppA更多的(P <0.01)植酸酶活性。第三,其植酸酶的比活性提高了54%。最后,其对磷酸对硝基苯酯(5.8 x 10(5)对2.0 x 10(5)min(-1)M-1)或植酸钠(6.9 x 10(6))的表观催化效率K-cat / Km vs 1.1 x 10(6)min(-1)M-1)分别提高了1.9倍和5.3倍。根据最近发表的大肠杆菌植酸酶晶体结构,突变体C200N / D207N / S211N中的C200N取代似乎消除了蛋白质α域中G螺旋和GH环之间的二硫键。这种变化可以调节域的柔性,从而调节酶的催化效率和热稳定性,(C)2000 Academic Press。 [参考:35]

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