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Selective Characterization of Microsecond Motions in Proteins by NMR Relaxation

机译:通过NMR弛豫对蛋白质中微秒运动的选择性表征

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摘要

The three-dimensional structures of macromolecules fluctuate over a wide range of time-scales. Separating the individual dynamic processes according to frequency is of importance in relating protein motions to biological function and stability. We present here a general NMR method for the specific characterization of microsecond motions at backbone positions in proteins even in the presence of other dynamics such as large-amplitude nanosecond motions and millisecond chemical exchange processes. The method is based on measurement of relaxation rates of four bilinear coherences and relies on the ability of strong continuous radio frequency fields to quench millisecond chemical exchange. The utility of the methodology is demonstrated and validated through two specific examples focusing on the thermostable proteins, ubiquitin and protein L, where it is found that small-amplitude microsecond dynamics are more pervasive than previously thought. Specifically, these motions are localized to a helices, loop regions, and regions along the rim of β sheets in both of the proteins examined. A third example focuses on a 28 kDa ternary complex of the chaperone Chz1 and the histones H2A.Z/H2B, where it is established that pervasive microsecond motions are localized to a region of the chaperone that is important for stabilizing the complex. It is further shown that these motions can be well separated from extensive millisecond dynamics that are also present and that derive from exchange of Chz1 between bound and free states. The methodology is straightforward to implement, and data recorded at only a single static magnetic field are required.
机译:大分子的三维结构在很大的时间范围内波动。根据频率分离各个动态过程对于将蛋白质运动与生物学功能和稳定性相关联非常重要。我们在这里提出了一种通用的NMR方法,即使在存在其他动力学(例如大幅度纳秒运动和毫秒化学交换过程)的情况下,也可以对蛋白质骨架位置的微秒运动进行特定表征。该方法基于四个双线性相干的弛豫率的测量,并且依赖于强连续射频场淬灭毫秒化学交换的能力。通过两个针对热稳定蛋白,泛素和蛋白L的特定实例证明并验证了该方法的实用性,在这些实例中,发现小幅度微秒动力学比以前认为的更为普遍。具体而言,这些运动位于两种检测的蛋白质中的螺旋,环状区域和沿β折叠边缘的区域。第三个例子集中在分子伴侣Chz1和组蛋白H2A.Z / H2B的28 kDa三元复合物上,其中确定了普遍的微秒运动位于对稳定复合物很重要的分子伴侣区域。进一步表明,这些运动可以与广泛存在的毫秒动力学很好地分开,后者也可以从绑定状态和自由状态之间的Chz1交换中获得。该方法易于实现,并且仅需要在单个静磁场下记录的数据。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2009年第44期|16257-16265|共9页
  • 作者单位

    Departments of Molecular Genetics, Biochemistry, and Chemistry, The University of Toronto,Toronto, Ontario M5S 1A8, Canada;

    Laboratory of Biochemistry and Molecular Biology,Center for Cancer Research, NCI, NIH, Bethesda, Maryland 20892;

    Laboratory of Biochemistry and Molecular Biology,Center for Cancer Research, NCI, NIH, Bethesda, Maryland 20892;

    Laboratory of Biochemistry and Molecular Biology,Center for Cancer Research, NCI, NIH, Bethesda, Maryland 20892;

    Departments of Molecular Genetics, Biochemistry, and Chemistry, The University of Toronto,Toronto, Ontario M5S 1A8, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:17:26

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