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Exact Distances and Internal Dynamics of Perdeuterated Ubiquitin from NOE Buildups

机译:来自NOE堆积的全氘泛素的精确距离和内部动力学

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摘要

It is proposed to convert nuclear Overhauser effects (NOEs) into relatively precise distances for detailed structural studies of proteins. To this purpose, it is demonstrated that the measurement of NOE buildups between amide protons in perdeuterated human ubiquitin using a designed ~(15)N-resolved HMQC-NOESY experiment enables the determination of ~1H~N-~1H~N distances up to 5 A with high accuracy and precision. These NOE-derived distances have an experimental random error of ~0.07 A, which is smaller than the pairwise rmsd (root-mean-square deviation) of 0.24 A obtained with corresponding distances extracted from either an NMR or an X-ray structure (pdb codes: 1D3Z and 1UBQ), and also smaller than the pairwise rmsd between distances from X-ray and NMR structures (0.15 A). Because the NOE contains both structural and dynamical information, a comparison between the 3D structures and NOE-derived distances may also give insights into through-space dynamics. It appears that the extraction of motional information from NOEs by comparison to the X-ray structure or the NMR structure is challenging because the motion may be masked by the quality of the structures. Nonetheless, a detailed analysis thereof suggests motions between β-strands and large complex motions in the a-helix of ubiquitin. The NOE-derived motions are, however, of smaller amplitude and possibly of a different character than those present in a 20 ns molecular dynamic simulation of ubiquitin in water using the GROMOS force field. Furthermore, a recently published set of structures representing the conformational distribution over time scales up to milliseconds (pdb: 2K39) does not satisfy the NOEs better than the single X-ray structure. Hence, the measurement of possibly thousands of exact NOEs throughout the protein may serve as an excellent probe toward a correct representation of both structure and dynamics of proteins.
机译:有人提出将核Overhauser效应(NOE)转换为相对精确的距离,以进行蛋白质的详细结构研究。为此目的,证明了使用设计的〜(15)N解析的HMQC-NOESY实验测量全氘人泛素中酰胺质子之间的NOE积累,从而可以确定直至〜1H〜N-〜1H〜N的距离5 A具有高精度和高精度。这些NOE衍生的距离具有〜0.07 A的实验随机误差,小于从NMR或X射线结构(pdb)中提取的相应距离获得的成对rmsd(均方根偏差)0.24 A代码:1D3Z和1UBQ),并且还比距X射线和NMR结构的距离之间的成对均方根值(0.15 A)小。由于NOE既包含结构信息又包含动态信息,因此3D结构与NOE得出的距离之间的比较也可以提供对穿越空间动力学的了解。与X射线结构或NMR结构相比,从NOE中提取运动信息似乎具有挑战性,因为运动可能会被结构的质量掩盖。但是,对其进行的详细分析表明,在泛素的a螺旋中,β链之间的运动与大的复杂运动有关。但是,与使用GROMOS力场进行的20 ns泛素在水中的分子动力学模拟相比,NOE衍生的运动幅度较小,并且可能具有不同的特征。此外,最近发布的一组结构表示随时间变化的构象分布(毫秒)(pdb:2K39)不能比单个X射线结构更好地满足NOE。因此,对整个蛋白质中可能存在的数千种精确NOE的测量可以作为对蛋白质结构和动力学正确表示的极好探针。

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  • 来源
    《Journal of the American Chemical Society》 |2009年第47期|17215-17225|共11页
  • 作者单位

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland;

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland Laboratory of Physical Chemistry, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland;

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland;

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland;

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland;

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland;

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland;

    Swiss Federal Institute of Technology, ETH-Hoenggerberg, CH-8093 Zuerich, Switzerland The Salk Institute, 10010 North Torrey Pines Road, La Jolla, California 92037;

  • 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);
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  • 入库时间 2022-08-18 03:17:31

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