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首页> 外文期刊>Applied Microbiology >Enhancing the α-Cyclodextrin Specificity of Cyclodextrin Glycosyltransferase from Paenibacillus macerans by Mutagenesis Masking Subsite ?7
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Enhancing the α-Cyclodextrin Specificity of Cyclodextrin Glycosyltransferase from Paenibacillus macerans by Mutagenesis Masking Subsite ?7

机译:通过诱变掩蔽亚位点?7增强斑节菜芽孢杆菌的环糊精糖基转移酶的α-环糊精特异性。

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Cyclodextrin glycosyltransferases (CGTases) (EC 2.4.1.19) catalyze the conversion of starch or starch derivates into mixtures of α-, β-, and γ-cyclodextrins. Because time-consuming and expensive purification procedures hinder the widespread application of single-ingredient cyclodextrins, enzymes with enhanced specificity are needed. In this study, we tested the hypothesis that the α-cyclodextrin selectivity of Paenibacillus macerans α-CGTase could be augmented by masking subsite ?7 of the active site, blocking the formation of larger cyclodextrins, particularly β-cyclodextrin. Five single mutants and three double mutants designed to remove hydrogen-bonding interactions between the enzyme and substrate at subsite ?7 were constructed and characterized in detail. Although the rates of α-cyclodextrin formation varied only modestly, the rate of β-cyclodextrin formation decreased dramatically in these mutants. The increase in α-cyclodextrin selectivity was directly proportional to the increase in the ratio of their k _(cat) values for α- and β-cyclodextrin formation. The R146A/D147P and R146P/D147A double mutants exhibited ratios of α-cyclodextrin to total cyclodextrin production of 75.1% and 76.1%, approximately one-fifth greater than that of the wild-type enzyme (63.2%), without loss of thermostability. Thus, these double mutants may be more suitable for the industrial production of α-cyclodextrin than the wild-type enzyme. The production of β-cyclodextrin by these mutants was almost identical to their production of γ-cyclodextrin, which was unaffected by the mutations in subsite ?7, suggesting that subsite ?7 was effectively blocked by these mutations. Further increases in α-cyclodextrin selectivity will require identification of the mechanism or mechanisms by which these small quantities of larger cyclodextrins are formed.
机译:环糊精糖基转移酶(CGTase)(EC 2.4.1.19)催化淀粉或淀粉衍生物转化为α-,β-和γ-环糊精的混合物。由于耗时且昂贵的纯化程序阻碍了单成分环糊精的广泛应用,因此需要具有增强特异性的酶。在这项研究中,我们检验了以下假说:通过遮盖活性位点的亚位点α7,可以阻止较大的环糊精,特别是β-环糊精的形成,从而增加了Macerans Maceransα-CGTase对α-环糊精的选择性。构建并详细设计了五个单突变体和三个双突变体,这些突变体被设计用来去除亚位点β7上的酶和底物之间的氢键相互作用。尽管α-环糊精的形成速率仅适度变化,但在这些突变体中β-环糊精的形成速率急剧下降。 α-环糊精选择性的增加与形成α-和β-环糊精的k_(cat)值之比成正比。 R146A / D147P和R146P / D147A双重突变体的α-环糊精与总环糊精产量的比率分别为75.1%和76.1%,比野生型酶(63.2%)高约五分之一,而不会失去热稳定性。因此,这些双突变体可能比野生型酶更适合于工业生产α-环糊精。这些突变体产生的β-环糊精几乎与它们的γ-环糊精的产生相同,后者不受位点α7突变的影响,表明位点α7被这些突变有效地阻断了。 α-环糊精选择性的进一步提高将需要鉴定形成少量这些较大的环糊精的机理。

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