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DISTANCE MEASUREMENTS IN METALLOPROTEINS

DISTANCE MEASUREMENTS IN METALLOPROTEINS
金属蛋白质的距离测量
批准号:
2734542
负责人:
GARY W BRUDVIG
金额:
$18.86万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1986
资助国家:
美国
项目状态:
已结题
起止时间:
1986-09-23 至 1999-06-30

项目摘要

项目成果

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中文摘要
翻译
呼吸和光合作用中的能量转导涉及 电子转移反应与An生成的耦合 在双层膜上的电化学梯度。虽然序列 电子转移反应的动力学大体上是已知的 这些系统,更少人知道的空间排列 电子载体和它们之间的距离。理想情况下,电子 载体可以被用作探测器,以解开它们的空间 分子中长程电子转移的组织和距离 生物电子传输过程。这样做的长期目标是 项目是使用电子自旋弛豫增强测量来 测定蛋白质中氧化还原活性部位之间的距离和探针 多核金属离子团簇的磁性。第一 目的是描述成对磁相互作用的影响 关于电子自旋驰豫速率的研究 相互作用中心之间的相互作用和每个中心的磁性是 为人所知。在本研究中,从Rb.球状线虫 将被用作模型系统。这种蛋白质可以在一种状态下制备 它包含两个位于28埃的固定距离上的顺磁点。 细菌叶绿素的电子自旋弛豫速率增强 由于与非血红素的磁性相互作用而产生的特殊对阳离子自由基 Fe2+,或Fe2+中的Mn2+或Cu2+,将被系统地 通过改变金属离子和非金属离子的温度来研究 定向样品和定向样品。这些数据将用于确定 的适用范围,并提供可用于扩展的数据 自旋弛豫增强的理论。第二个目标是使用 电子自旋-晶格弛豫速率增强的测量 确定氧化还原位的空间组织和磁性 在细胞色素c氧化酶、光系统II和一氧化氮合酶中,有三个 结构信息不可用的系统。两种类型的 将继续进行应用,以获得结构和磁性 信息在这三个系统中也要建立通用的 该方法在确定距离和磁场数据中的适用性 其他系统。第一个应用是测量自旋-自旋相互作用 以确定内源部位之间的距离 顺磁中心。第二种方法是使用 稳定态自旋-晶格驰豫速率的温度依赖关系 在光系统II中探测酪氨酸自由基的磁性 MN4集群。这些实验将为电子的使用提供基础。 确定电子距离的自旋-晶格弛豫测量 金属离子团簇在其他氧化还原中的迁移和磁性 蛋白质复合体。更好地理解电子的作用机制 为了应用EPR,蛋白质中的自旋弛豫也是必不可少的 光谱学研究电子转移蛋白质的动力学和 脉冲电子顺磁共振在金属蛋白研究中的应用
英文摘要
Energy transduction in respiration and photosynthesis involves the coupling of electron-transfer reactions to the generation of an electrochemical gradient across a bilayer membrane. Although the sequence and kinetics of the electron-transfer reactions are by and large known in these systems, much less is known about the spatial arrangement of the electron carriers and the distances between them. Ideally, the electron carriers could be used as probes in order to unravel their spatial organization and the distances of long-range electron transfer in the biological electron-transport processes. The long-term goals of this project are to use electron spin-relaxation enhancement measurements to determine distances between redox-active sites in proteins and to probe the magnetic properties of multinuclear metal ion clusters. The first objective is to characterize the effects of pairwise magnetic interactions on the electron spin-relaxation rates in samples in which the distance between interacting centers and the magnetic properties of each center are known. In this study, the reaction center protein from Rb. sphaeroides will be used as a model system. This protein can be prepared in a state that contains two paramagnetic sites at a fixed distance of 28 Angstroms. The electron spin-relaxation rate enhancement of the bacteriochlorophyll special pair cation radical due to a magnetic interaction with the nonheme Fe2+, or Mn2+ or Cu2+ in the Fe2+ site, will be systematically investigated by varying the metal ions and the temperature in both non- oriented and oriented samples. These data will be used to determine the limits of applicability of, and to provide data from which to extend, the theories for spin-relaxation enhancement. The second objective is to use measurements of electron spin-lattice relaxation rate enhancements to determine the spatial organization and magnetic properties of redox sites in cytochrome c oxidase, photosystem II, and nitric oxide synthase, three systems for which structural information is not available. Two types of applications will be pursued in order to obtain structural and magnetic information in these three systems and also to establish the general applicability of this method to determine distances and magnetic data in other systems. The first application is to measure spin-spin interactions between endogenous sites in order to determine the distances between paramagnetic centers. The second is to use measurements of the temperature dependence of the spin-lattice relaxation rate of the stable tyrosine radical in photosystem II to probe the magnetic properties of the Mn4 cluster. These experiments will provide a basis for using electron spin-lattice relaxation measurements to determine distances of electron transfer and magnetic properties of metal ion clusters in other redox protein complexes. A better understanding of the mechanisms of electron spin relaxation in proteins is also essential in order to apply EPR spectroscopy to study dynamics in electron-transfer proteins and for applications of pulsed EPR to metalloproteins.
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PREDOCTORAL PROGRAM IN BIOPHYSICS
  • 批准号:
    2872531
  • 项目类别:
  • 资助金额:
    $39.6万
  • 财政年份:
    1988
  • 负责人:
    GARY W BRUDVIG
  • 依托单位:
PREDOCTORAL PROGRAM IN BIOPHYSICS
  • 批准号:
    6498389
  • 项目类别:
  • 资助金额:
    $44.49万
  • 财政年份:
    1988
  • 负责人:
    GARY W BRUDVIG
  • 依托单位:
Predoctoral Program in Biophysics
  • 批准号:
    6906571
  • 项目类别:
  • 资助金额:
    $38.12万
  • 财政年份:
    1988
  • 负责人:
    GARY W BRUDVIG
  • 依托单位:
Predoctoral Program in Biophysics
  • 批准号:
    6763213
  • 项目类别:
  • 资助金额:
    $41.59万
  • 财政年份:
    1988
  • 负责人:
    GARY W BRUDVIG
  • 依托单位:
海外基金