首页> 外文OA文献 >Catalytic mechanism and role of hydroxyl residues in the active site of theta class glutathione s-transferases investigation of ser-9 and tyr-113 in a glutathione s-transferase from the australian sheep blowfly, lucilia cuprina
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Catalytic mechanism and role of hydroxyl residues in the active site of theta class glutathione s-transferases investigation of ser-9 and tyr-113 in a glutathione s-transferase from the australian sheep blowfly, lucilia cuprina

机译:θ型谷胱甘肽S-转移酶活性位点中羟基残基的催化机理和作用研究澳大利亚绵羊蝇flyLucilia cuprina的谷胱甘肽S-转移酶中ser-9和tyr-113

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摘要

Spectroscopic and kinetic studies have been performed on the Australian sheep blowfly Lucilia cuprina glutathione S-transferase (Lucilia GST; EC 2.5.1.18) to clarify its catalytic mechanism. Steady state kinetics of Lucilia GST are non-Michaelian, but the quite hyperbolic isothermic binding of GSH suggests that a steady state random sequential Bi Bi mechanism is consistent with the anomalous kinetics observed. The rate-limiting step of the reaction is a viscosity-dependent physical event, and stopped-flow experiments indicate that product release is rate-limiting. Spectroscopic and kinetic data demonstrate that Lucilia GST is able to lower the pKa of the bound GSH from 9.0 to about 6.5. Based on crystallographic suggestions, the role of two hydroxyl residues, Ser-9 and Tyr-113, has been investigated. Removal of the hydroxyl group of Ser-9 by site-directed mutagenesis raises the pKa of bound GSH to about 7.6, and a very low turnover number (about 0.5% of that of wild type) is observed. This inactivation may be explained by a strong contribution of the Ser-9 hydroxyl group to the productive binding of GSH and by an involvement in the stabilization of the ionized GSH. This serine residue is highly conserved in the Theta class GSTs, so the present findings may be applicable to all of the family members. Tyr-113 appears not to be essential for the GSH activation. Stopped-flow data indicate that removal of the hydroxyl group of Tyr-113 does not change the rate-limiting step of reaction but causes an increase of the rate constants of both the formation and release of the GSH conjugate. Tyr-113 resides on α-helix 4, and its hydroxyl group hydrogen bonds directly to the hydroxyl of Tyr-105. This would reduce the flexibility of a protein region that contributes to the electrophilic substrate binding site; segmental motion of α-helix 4 possibly modulates different aspects of the catalytic mechanism of the Lucilia GST
机译:已对澳大利亚绵羊蝇.Lucilia cuprina谷胱甘肽S-转移酶(Lucilia GST; EC 2.5.1.18)进行了光谱和动力学研究,以阐明其催化机理。 Lucilia GST的稳态动力学是非Michaelian的,但是GSH的双曲线等温结合表明稳态随机顺序Bi Bi机制与观察到的异常动力学一致。反应的限速步骤是粘度依赖性的物理事件,停止流实验表明产物的释放是限速的。光谱和动力学数据表明,Lucilia GST能够将结合的GSH的pKa从9.0降低至约6.5。根据晶体学建议,已研究了两个羟基残基Ser-9和Tyr-113的作用。通过定点诱变除去Ser-9的羟基将结合的GSH的pKa提高到约7.6,并且观察到非常低的周转率(约是野生型的周转率的0.5%)。这种失活可以通过Ser-9羟基对GSH的生产性结合的强大贡献以及参与离子化GSH的稳定化来解释。该丝氨酸残基在Theta类GST中高度保守,因此,本发现可能适用于所有家庭成员。 Tyr-113似乎不是GSH激活所必需的。停止流动数据表明,除去Tyr-113的羟基不会改变反应的限速步骤,但会导致GSH共轭物形成和释放的速率常数增加。 Tyr-113驻留在α-螺旋4上,其羟基氢键直接与Tyr-105的羟基键合。这将降低有助于亲电底物结合位点的蛋白质区域的柔韧性; α-螺旋4的节段运动可能会调节Lucilia GST催化机制的不同方面

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