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A Comprehensive Alanine-Scanning Mutagenesis Study Reveals Roles for Salt Bridges in the Structure and Activity of Pseudomonas aeruginosa Elastase

机译:全面的丙氨酸扫描诱变研究揭示了盐桥在铜绿假单胞菌弹性蛋白酶的结构和活性中的作用。

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摘要

The relationship between salt bridges and stability/enzymatic activity is unclear. We studied this relationship by systematic alanine-scanning mutation analysis using the typical M4 family metalloprotease Pseudomonas aeruginosa elastase (PAE, also known as pseudolysin) as a model. Structural analysis revealed seven salt bridges in the PAE structure. We constructed ten mutants for six salt bridges. Among these mutants, six (Asp189Ala, Arg179Ala, Asp201Ala, Arg205Ala, Arg245Ala and Glu249Ala) were active and four (Asp168Ala, Arg198Ala, Arg253Ala, and Arg279Ala) were inactive. Five mutants were purified, and their catalytic efficiencies (k cat/K m), half-lives (t 1/2) and thermal unfolding curves were compared with those of PAE. Mutants Asp189Ala and Arg179Ala both showed decreased thermal stabilities and increased activities, suggesting that the salt bridge Asp189-Arg179 stabilizes the protein at the expense of catalytic efficiency. In contrast, mutants Asp201Ala and Arg205Ala both showed slightly increased thermal stability and slightly decreased activity, suggesting that the salt bridge Asp201-Arg205 destabilizes the protein. Mutant Glu249Ala is related to a C-terminal salt bridge network and showed both decreased thermal stability and decreased activity. Furthermore, Glu249Ala showed a thermal unfolding curve with three discernable states [the native state (N), the partially unfolded state (I) and the unfolded state (U)]. In comparison, there were only two discernable states (N and U) in the thermal unfolding curve of PAE. These results suggest that Glu249 is important for catalytic efficiency, stability and unfolding cooperativity. This study represents a systematic mutational analyses of salt bridges in the model metalloprotease PAE and provides important insights into the structure-function relationship of enzymes.
机译:盐桥与稳定性/酶活性之间的关系尚不清楚。我们通过使用典型的M4家族金属蛋白酶铜绿假单胞菌弹性蛋白酶(PAE,也称为假溶菌素)作为模型,通过系统的丙氨酸扫描突变分析研究了这种关系。结构分析表明,PAE结构中有七个盐桥。我们为六个盐桥构建了十个突变体。在这些突变体中,六个(Asp189Ala,Arg179Ala,Asp201Ala,Arg205Ala,Arg245Ala和Glu249Ala)是有活性的,而四个(Asp168Ala,Arg198Ala,Arg253Ala和Arg279Ala)是无活性的。纯化了五个突变体,并将其催化效率(k cat / K m),半衰期(t 1/2)和热展开曲线与PAE进行了比较。突变体Asp189Ala和Arg179Ala均显示出降低的热稳定性和活性,这表明盐桥Asp189-Arg179稳定了蛋白质,但催化效率却有所降低。相反,突变体Asp201Ala和Arg205Ala都显示出略微增加的热稳定性和略微降低的活性,表明盐桥Asp201-Arg205破坏了蛋白质的稳定性。突变体Glu249Ala与C端盐桥网络有关,并且显示出降低的热稳定性和降低的活性。此外,Glu249Ala显示出具有三个可辨别状态[天然状态(N),部分展开状态(I)和展开状态(U)]的热展开曲线。相比之下,PAE的热展开曲线中只有两个可分辨的状态(N和U)。这些结果表明,Glu249对于催化效率,稳定性和展开的协同作用很重要。这项研究代表了模型金属蛋白酶PAE中盐桥的系统突变分析,并提供了对酶的结构-功能关系的重要见解。

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