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LUMINESCENCE RESONANCE ENERGY TRANSFER ON ACTOMYOSIN

LUMINESCENCE RESONANCE ENERGY TRANSFER ON ACTOMYOSIN
肌动球蛋白上的发光共振能量转移
批准号:
2769659
负责人:
PAUL R SELVIN
金额:
$10.36万
依托单位国家:
美国
项目类别:
财政年份:
1996
资助国家:
美国
项目状态:
已结题
起止时间:
1996-09-30 至 2001-08-31

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中文摘要
翻译
描述:这项建议的重点是研究构象 使用我们最近推出的肌动球蛋白复合体内的变化 发光共振能量转移(LRET)技术的扩展 目前广泛使用的荧光共振能量转移。初步结果 表明LRET能够准确地测量相对较长的距离 在肌动球蛋白中,并指出LRET应普遍适用于 大分子复合体中蛋白质构象变化的研究。肌动球蛋白是一种 特别重要的分子马达,其中蛋白质构象 变化导致肌肉收缩和各种亚细胞运动 真核生物。在这里,研究人员建议使用LRET来确定两个 肌肉力学的基本参数。 首先,他们将测量S1肌球蛋白头部和肌动蛋白细丝在 活跃的肌肉。目标是确定肌球蛋白头部的比例 与肌动蛋白结合,并在肌动球蛋白循环中产生力量。这 参数已被其他工作人员广泛调查过,但 确切的答案仍然难以捉摸。 其次,LRET将用于检测S1内的构象变化 头部,歌唱纯化的蛋白质和活性纤维。尽管人们普遍认为 肌肉力学的观点,包括S1内的构象变化 肌肉力学的“摆动-跨桥”模型的组成部分, 对这种构象变化的直接测量很少。 具体地说,他们将寻找监管机构之间距离的变化 S1头部的轻链和核苷酸结合区。如果是当前的 模型是正确的,此距离应该从大约51a更改为 动力冲程的开始,到动力冲程结束时的65A。 这两项测量将在等长条件下对肌肉进行, 但它们可以作为对肌肉进行类似测量的模型 长度会发生变化。 LRET适合于这些测量,因为该技术可以直接 测量活动肌肉在不同距离内的构象变化 利息,是相对非侵入性的。要实现这些目标需要, 在某些情况下,LRET的技术进步。将进行初步实验 关于我们这一代的稀土络合供体和我们的光谱仪。 然而,首席研究员还将开发新的反应形式 稀土螯合物,这将使特定部位的结合到S1和 其他蛋白质,测量远距离(大于100A)的能力, 以及检测多种构象状态的能力。他还将 将他们目前基于试管的LRET光谱仪改造成 用于测量单个肌原纤维和肌原纤维的显微镜光谱仪 纤维。这将包括增加一个电荷耦合探测器(电荷耦合探测器) 施主和受主的发射光谱测量将增加 能量传递测量的灵敏度和准确性。
英文摘要
DESCRIPTION: The focus of this proposal is to study the conformational changes within the actomyosin complex using our recently introduced technique of luminescence resonance energy transfer (LRET), an extension of the widely used Fluorescence Resonance Energy Transfer. Preliminary results show that LRET is capable of accurately measuring relatively large distances in actomyosin, and indicates that LRET should be generally applicable to the study of protein conformational changes in large complexes. Actomyosin is a particularly important molecular motor in which protein conformational changes lead to muscle contraction and a variety of subcellular motion in eucaryotes. Here the investigators propose to use LRET to determine two essential parameters in muscle mechanics. First, they will measure distances the S1 myosin head and actin filaments in active muscle. The goal is to determine the fraction of myosin heads which are bound to actin, and generate force, during the actomyosin cycle. This parameter has been extensively investigated by other workers but a definitive answer remains elusive. Second, LRET will be used to detect conformational changes within the S1 head, sing purified proteins and active fibers. Despite the widely held view of muscle mechanics involving conformational changes within S1 as an integral part of the "swinging-crossbridge" model of muscle mechanics, there have been very few direct measurements of such conformational changes. Specifically, they will look for changes in distance between the regulatory light chain of the S1 head and the nucleotide binding region. If current models are correct, this distance should change from approximately 51A at the beginning of the power stroke, to 65A at the end of the power stroke. These two measurements will be made on muscle under isometric conditions, but they serve as models for similar measurements on muscle undergoing length changes. LRET is suited for these measurements because the technique can directly measure conformational changes in active muscle over the distances of interest, and is relatively non-invasive. To achieve these goals requires, in some cases technical advances in LRET. Initial experiments will be made on our current generation of lanthanide chelate donors and our spectrometer. However, the principal investigator will also develop new reactive forms of lanthanide chelates, which will enable site-specific attachment to S1 and other proteins, the ability to measure large distances (greater then 100A), and the ability to detect multiple conformational states. He will also convert their present cuvette-based LRET spectrometer into a microscope-based spectrometer for measurements on single myofibrils and fibers. This will include adding a CCD (charge-coupled-detector) for measurement of emission spectra of donor and acceptor, which will increase the sensitivity and accuracy of energy transfer measurements.
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