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Improved Transferase/Hydrolase Ratio through Rational Design of a Family 1 β-Glucosidase from Thermotoga neapolitana

机译:通过合理设计纳氏嗜热菌的家族1β-葡萄糖苷酶改善了转移酶/水合酶的比例

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摘要

Alkyl glycosides are attractive surfactants because of their high surface activity and good biodegradability and can be produced from renewable resources. Through enzymatic catalysis, one can obtain well-defined alkyl glycosides, something that is very difficult to do using conventional chemistry. However, there is a need for better enzymes to get a commercially feasible process. A thermostable β-glucosidase from the well-studied glycoside hydrolase family 1 from Thermotoga neapolitana, TnBgl1A, was mutated in an attempt to improve its value for synthesis of alkyl glycosides. This was done by rational design using prior knowledge from structural homologues together with a recently generated model of the enzyme in question. Three out of four studied mutations increased the hydrolytic reaction rate in an aqueous environment, while none displayed this property in the presence of an alcohol acceptor. This shows that even if the enzyme resides in a separate aqueous phase, the presence of an organic solvent has a great influence. We could also show that a single amino acid replacement in a less studied part of the aglycone subsite, N220F, improves the specificity for transglycosylation 7-fold and thereby increases the potential yield of alkyl glycoside from 17% to 58%.
机译:烷基糖苷具有很高的表面活性和良好的生物降解性,因此是有吸引力的表面活性剂,可以由可再生资源生产。通过酶催化,可以获得明确的烷基糖苷,这是使用常规化学方法很难完成的。然而,需要更好的酶来获得商业上可行的方法。为了提高其在合成烷基糖苷方面的价值,对来自经过精心研究的热那亚嗜热菌TnBgl1A的糖苷水解酶家族1的热稳定β-葡萄糖苷酶进行了突变。通过使用来自结构同源物的先验知识以及最近生成的所述酶模型,通过合理的设计来完成。在研究的四个突变中,有三个突变增加了在水性环境中的水解反应速率,而在存在醇受体的情况下,没有一个表现出这种特性。这表明即使酶存在于单独的水相中,有机溶剂的存在也具有很大的影响。我们还可以显示,在糖苷配基亚位点N220F的研究较少的部分中,单个氨基酸置换可将转糖基化的特异性提高7倍,从而使烷基糖苷的潜在收率从17%提高至58%。

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