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Rational engineering of a cold-adapted α-amylase from the Antarctic ciliate Euplotes focardii for simultaneous improvement of thermostability and catalytic activity

机译:合理设计南极纤毛Euplotes focardii的冷适应性α-淀粉酶,以同时提高热稳定性和催化活性

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摘要

The α-amylases are endo-acting enzyme which hydrolyze starch by randomly cleaving the 1,4-α-D-glucosidic linkages between the adjacent glucose units in linear amylose chain. It has significant advantages in a wide range of applications, in particular in food industry. The eukaryotic α-amylase isolated from the Antarctic ciliated protozoon Euplotes focardii (EfAmy) is an alkaline enzyme, differently from most of the α-amylases characterized so far. Furthermore, EfAmy shows the characteristics of a psychrophilic α-amylase, such as the highest hydrolytic activity at low temperature and high thermolability, which is the major drawback of cold-active enzymes in industrial applications. In this work, we applied site-directed mutagenesis combined with rational design to generate a cold-active EfAmy with improved thermostability and catalytic efficiency at low temperatures. We engineered two EfAmy mutants: in one mutant we introduced Pro residues on the A and B domains in surface loops. In the second mutant we changed Val into Thr residues close to the catalytic site. The aim of these substitutions was to rigidify the molecular structure of the enzyme. Furthermore, we also analyzed mutants containing these combined substitutions. Biochemical enzymatic assays of engineered versions of EfAmy revealed that the combination of mutations at the surface loops increased thermostability and catalytic efficiency of the enzyme. The possible mechanisms responsible for changes in the biochemical properties are discussed by analyzing the three-dimensional structural model.IMPORTANCE Cold-adapted enzymes have high specific activity at low and moderate temperatures, a property that can be extremely useful in various applications as it implies a reduction in energy consumption during the catalyzed reaction. However, the concurrent high thermolability of cold-adapted enzymes often limits their applications in industrial processes. The α-amylase from the psychrophilic Antarctic ciliate Euplotes focardii (named EfAmy) is a cold-adapted enzyme with optimal catalytic activity in alkaline environment. These unique features distinguish it from most α-amylases characterized so far. In this work, we engineered the novel EfAmy with improved thermostability, substrate binding affinity and catalytic efficiency to various extents, without impact on its pH preference. These characteristics can be considered an important property to be used in food, detergents, textiles and other industrial applications. The enzyme engineering strategy developed in this study may also provide useful knowledge for future optimization of molecules to be used in particular industrial applications.
机译:α-淀粉酶是一种内在作用酶,通过随机裂解线性直链淀粉链中相邻葡萄糖单元之间的1,4-α-D-葡萄糖苷键来水解淀粉。它在广泛的应用中具有显着的优势,特别是在食品工业中。从南极纤毛原生动物Euplotes focardii(EfAmy)分离出的真核α-淀粉酶是一种碱性酶,与目前为止表征的大多数α-淀粉酶不同。此外,EfAmy具有嗜冷性α-淀粉酶的特性,例如在低温下具有最高的水解活性和较高的可热化性,这是工业应用中冷活性酶的主要缺点。在这项工作中,我们将定点诱变与合理的设计相结合,以产生具有改进的低温热稳定性和催化效率的冷活性EfAmy。我们设计了两个EfAmy突变体:在一个突变体中,我们在表面环的A和B结构域上引入了Pro残基。在第二个突变体中,我们将Val变为靠近催化位点的Thr残基。这些取代的目的是加强酶的分子结构。此外,我们还分析了包含这些组合取代的突变体。工程版本的EfAmy的生化酶分析表明,表面环处突变的组合增加了酶的热稳定性和催化效率。通过分析三维结构模型,讨论了可能导致生化特性发生变化的机理。重要说明:冷适应的酶在低温和中温下具有较高的比活性,该特性在各种应用中都非常有用,因为它暗示了减少催化反应过程中的能量消耗。然而,同时存在的适应冷态的酶的高热解性常常限制了它们在工业过程中的应用。嗜冷的南极纤毛虫Euplotes focardii的α-淀粉酶(称为EfAmy)是一种冷适应的酶,在碱性环境中具有最佳的催化活性。这些独特的功能使它与迄今为止表征的大多数α-淀粉酶区分开来。在这项工作中,我们设计了新颖的EfAmy,具有不同程度的改进的热稳定性,底物结合亲和力和催化效率,而不会影响其pH值。这些特性可以被认为是用于食品,洗涤剂,纺织品和其他工业应用的重要特性。在这项研究中开发的酶工程策略也可能为将来在特定工业应用中使用的分子的优化提供有用的知识。

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