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Iron Sulfur Clusters in Biological Radical Generation

Iron Sulfur Clusters in Biological Radical Generation
生物自由基生成中的铁硫簇
批准号:
6611002
负责人:
Joan B Broderick
金额:
$23.84万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-08-01 至 2005-07-31

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项目成果

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中文摘要
翻译
本项目的总体目标是描述Fe/ s - s -腺苷蛋氨酸(AdoMet)家族酶产生自由基的详细化学机制。假设:依赖腺苷蛋氨酸的铁硫酶都通过一个共同的机制运作,其中一个还原簇与AdoMet相互作用,产生一个直接参与催化的腺苷自由基中间体。这些反应代表了铁硫团簇的新化学反应。为了研究这种新的丙酮酸甲酸裂解酶激活酶(PFL-AE)及其相关酶的化学、生化、光谱、机理和结构研究。我们还将研究铁依赖性AdhE蛋白对PFL自由基的猝灭机制。本建议的具体目的如下:目的:研究Fe-S/AdoMet家族酶中铁硫团簇的结构、性质及其与AdoMet的相互作用。我们的工作将主要集中在PFL-AE,并将包括光谱(EPR, ENDOR, ESEEM,穆斯堡尔,共振拉曼),电化学和动力学研究。2. 利用底物类似物和基于机制的抑制剂作为ES相互作用和PFL-AE催化机制的探针。3. 利用速冻猝灭光谱技术对PFL-AE催化自由基生成反应的中间体进行鉴定和光谱表征。4. 利用x射线晶体学对PFL-AE进行结构表征。迄今为止,FE-S/AdoMet酶没有详细的结构信息,这些结构信息可以极大地增强机制实验的设计和解释。5. 表征AdhE的金属结合位点,以及金属在甘酰基自由基猝灭中的作用。
英文摘要
The overall objective of this project is to delineate the detailed chemical mechanism of radical generation by the Fe/S-S-adenosylmethionine (AdoMet) family of enzymes. Hypothesis: The adenosylmethionine-dependent iron-sulfur enzymes all operate by a common mechanism in which a reduced cluster interacts with AdoMet to generate an adenosyl radical intermediate which is directly involved in catalysis. These reactions represent novel chemistry for iron-sulfur clusters. To investigate this novel chemistry, biochemical, spectroscopic, mechanistic,, and structural studies of pyruvate formate-lyase activating enzyme (PFL-AE) and related enzymes will be pursued. We will also investigate the mechanism of PFL radical quenching by the iron-dependent AdhE protein. The specific aims of this proposal are as follows: 1. To investigate the structures and properties of iron-sulfur clusters in the Fe-S/AdoMet family of enzymes, and the interactions of the clusters with AdoMet. Our work will focus primarily on PFL-AE, and will include spectroscopic (EPR, ENDOR, ESEEM, Mossbauer, resonance Raman), lectrochemical, and kinetic studies. 2. To utilize substrate analogs and mechanism-based inhibitors as probes of ES interactions and the PFL-AE catalytic mechanism.. 3. To identify and spectroscopically characterize intermediates in the radical-generation reaction catalyzed by PFL-AE by using rapid-freeze quench spectroscopy. 4. To pursue structural characterization of PFL-AE using X-ray crystallography. To date, no detailed structural information is available for any of the FE-S/AdoMet enzymes, and such structural information could greatly enhance the design and interpretation of mechanistic experiments. 5. To characterize the metal binding site of AdhE, and the role of the metal in glycyl radical quenching.
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Radical SAM Enzymes: Molecular Mechanisms of Radical Initiation
Radical SAM Enzymes: Molecular Mechanisms of Radical Initiation
Radical SAM Enzymes: Molecular Mechanisms of Radical Initiation
Radical SAM Enzymes: Molecular Mechanisms of Radical Initiation
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