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The role of the conserved residues His-246, His-199, and Tyr-255 in the catalysis of catechol 2,3-dioxygenase from Pseudomonas stutzeri OX1

机译:保守残基His-246,His-199和Tyr-255在来自施氏假单胞菌OX1的儿茶酚2,3-双加氧酶催化中的作用

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摘要

Catechol 2,3-dioxygenase (C2,3O) from Pseudomonas stutzeri OX1, which is able to grow on various aromatic substrates as the sole source of carbon and energy, has been expressed in Escherichia coli, purified, characterized, and found to be very similar to other dioxygenases from Pseudomonas species. Interestingly, the activity of the protein shows a rather unusual pH dependence when assayed on catechol. A model of the catalytic mechanism was developed that is able to reproduce the catalytic behavior of the protein as a function of the pH. The model includes multiple equilibria and four productive intermediates with different ionization states of the enzyme-substrate complex. The fitting of the theoretical curve to the experimental data suggests that a tyrosine and two histidine residues are involved in catalysis. Mutants (H246N)-, (H246A)-, (H199N)- and (Y255F)-C2,3O were produced to investigate the role of highly conserved His-199, His-246, and Tyr-255. The strongly reduced activity of the mutants suggests a primary catalytic role for each of these residues. Moreover, mutants at positions 199 and 246 display pH profiles different from that of the wild-type protein, thus indicating that residues His-246 and His-199 play a role in determining the unusual pH dependence of the enzyme. In addition, electron-withdrawing groups on catechol, which increase the acidity of the phenolic hydroxyl group, are able to counterbalance the effect of the mutation H246N in reducing catalytic activity but cause a further reduction of the activity of (H199N)-C2,3O. This finding suggests that His-246 is involved in the initial catechol deprotonation, whereas His-199 promotes the reaction between oxygen and the aromatic ring.
机译:斯图氏假单胞菌OX1的邻苯二酚2,3-二加氧酶(C2,3O)能够在多种芳香族底物上生长,是唯一的碳和能量来源,已在大肠杆菌中表达,纯化,鉴定并发现其非常与假单胞菌属的其他双加氧酶相似。有趣的是,当检测儿茶酚时,蛋白质的活性表现出相当不寻常的pH依赖性。开发了一种催化机理模型,该模型能够再现蛋白质作为pH值的催化行为。该模型包括多个平衡和具有酶-底物复合物不同电离态的四个生产中间体。理论曲线与实验数据的拟合表明,酪氨酸和两个组氨酸残基参与催化。产生了突变体(H246N)-,(H246A)-,(H199N)-和(Y255F)-C2,3O,以研究高度保守的His-199,His-246和Tyr-255的作用。突变体的活性大大降低表明这些残基中的每一个都具有主要的催化作用。此外,第199位和第246位的突变体显示的pH谱不同于野生型蛋白,因此表明残基His-246和His-199在确定酶的异常pH依赖性中起作用。此外,增加酚羟基酸度的邻苯二酚上的吸电子基团能够抵消突变H246N降低催化活性的作用,但会进一步降低(H199N)-C2,3O的活性。 。这一发现表明,His-246参与了最初的邻苯二酚去质子化反应,而His-199则促进了氧与芳环之间的反应。

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