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Kinetic mechanism of indole-3-glycerol phosphate synthase

机译:吲哚-3-甘油磷酸合酶的动力学机理

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The (βα)_8-barrel enzyme indole-3-glycerol phosphate synthase (IGPS) catalyzes the multistep transformation of 1-(o- carboxyphenylamino)-1-deoxyribulose 5-phosphate (CdRP) into indole-3-glycerol phosphate (IGP) in tryptophan biosynthesis. Mutagenesis data and crystal structure analysis of IGPS from Sulfolobus solfataricus (sIGPS) allowed for the formulation of a plausible chemical mechanism of the reaction, and molecular dynamics simulations suggested that flexibility of active site loops might be important for catalysis. Here we developed a method that uses extrinsic fluorophores attached to active site loops to connect the kinetic mechanism of sIGPS to structure and conformational motions. Specifically, we elucidated the kinetic mechanism of sIGPS and correlated individual steps in the mechanism to conformational motions of flexible loops. Pre-steady-state kinetic measurements of CdRP to IGP conversion monitoring changes in intrinsic tryptophan and IGP fluorescence provided a minimal three-step kinetic model in which fast substrate binding and chemical transformation are followed by slow product release. The role of sIGPS loop conformational motion during substrate binding and catalysis was examined via variants that were covalently labeled with fluorescent dyes at the N-terminal extension of the enzyme and mobile active site loop β1α1. Analysis of kinetic data monitoring dye fluorescence revealed a conformational change that follows substrate binding, suggesting an induced-fit-type binding mechanism for the substrate CdRP. Global fitting of all kinetic results obtained with wild-type sIGPS and the labeled variants was best accommodated by a four-step kinetic model. In this model, both the binding of CdRP and its on-enzyme conversion to IGP are accompanied by conformational transitions. The liberation of the product from the active site is the rate-limiting step of the overall reaction. Our results confirm the importance of flexible active loops for substrate binding and catalysis by sIGPS.
机译:(βα)_8-桶酶吲哚-3-甘油磷酸合成酶(IGPS)催化1-(邻羧基苯基氨基)-1-脱氧核糖5-磷酸(CdRP)逐步转变为吲哚-3-甘油磷酸(IGP)在色氨酸的生物合成中。来自Sulfolobus solfataricus(sIGPS)的IGPS的诱变数据和晶体结构分析可用于确定反应的合理化学机理,并且分子动力学模拟表明活性位点环的灵活性可能对催化很重要。在这里,我们开发了一种方法,该方法使用附着在活动位点环上的外部荧光团将sIGPS的动力学机制连接到结构和构象运动。具体来说,我们阐明了sIGPS的动力学机制,并将该机制中的各个步骤与柔性环的构象运动相关联。从CdRP到IGP转化的稳态动力学测量,监测固有色氨酸和IGP荧光的变化,提供了最小的三步动力学模型,其中快速的底物结合和化学转化随后缓慢的产物释放。 sIGPS环构象运动在底物结合和催化过程中的作用通过在酶的N端延伸处和移动活性位点环β1α1共价荧光标记的变体进行了研究。监测染料荧光的动力学数据分析揭示了底物结合后的构象变化,提示了底物CdRP的诱导拟合型结合机制。通过四步动力学模型可以最好地拟合野生型sIGPS和标记变体获得的所有动力学结果的全局拟合。在该模型中,CdRP的结合及其向IGP的酶上转化都伴随着构象转变。产物从活性位点的释放是整个反应的限速步骤。我们的结果证实了柔性主动环对于sIGPS的底物结合和催化的重要性。

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