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Strategy for the Study of Paramagnetic Proteins with Slow Electronic Relaxation Rates by NMR Spectroscopy: Application to Oxidized Human [2Fe-2S] Ferredoxin

机译:核磁共振波谱研究慢电子弛豫速率顺磁性蛋白质的策略:在氧化的人[2Fe-2S]铁氧还蛋白上的应用

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摘要

NMR studies of paramagnetic proteins are hampered by the rapid relaxation of nuclei near the paramagnetic center, which prevents the application of conventional methods to investigations of the most interesting regions of such molecules. This problem is particularly acute in systems with slow electronic relaxation rates. We present a strategy that can be used with a protein with slow electronic relaxation to identify and assign resonances from nuclei near the paramagnetic center. Oxidized human [2Fe-2S] ferredoxin (adrenodoxin) was used to test the approach. The strategy involves six steps: (1) NMR signals from ~1H, ~(13)C, and ~(15)N nuclei unaffected or minimally affected by paramagnetic effects are assigned by standard multinuclear two- and three-dimensional (2D and 3D) spectroscopic methods with protein samples labeled uniformly with ~(13)C and ~(15)N. (2) The very broad, hyperfine-shifted signals from carbons in the residues that ligate the metal center are classified by amino acid and atom type by selective ~(13)C labeling and one-dimensional (1D) ~(13)C NMR spectroscopy. (3) Spin systems involving carbons near the paramagnetic center that are broadened but not hyperfine-shifted are elucidated by ~(13)C{~(13)C} constant time correlation spectroscopy (CT-COSY). (4) Signals from amide nitrogens affected by the paramagnetic center are assigned to amino acid type by selective ~(15)N labeling and 1D ~(15)N NMR spectroscopy. (5) Sequence-specific assignments of these carbon and nitrogen signals are determined by 1D ~(13)C{~(15)N} difference decoupling experiments. (6) Signals from ~1H nuclei in these spin systems are assigned by paramagnetic-optimized 2D and 3D ~1H{~(13)C} experiments. For oxidized human ferredoxin, this strategy led to assignments (to amino acid and atom type) for 88% of the carbons in the [2Fe-2S] cluster-binding loops (residues 43-58 and 89-94). These included complete carbon spin-system assignments for eight of the 22 residues and partial assignments for each of the others. Sequence-specific assignments were determined for the backbone ~(15)N signals from nine of the 22 residues and ambiguous assignments for five of the others.
机译:顺磁性蛋白质的NMR研究受到顺磁性中心附近原子核的快速松弛的阻碍,这阻止了将常规方法应用于此类分子最感兴趣区域的研究。在电子弛豫速率慢的系统中,这个问题尤为严重。我们提出了可以与具有缓慢电子弛豫的蛋白质一起使用的策略,以识别和分配来自顺磁中心附近原子核的共振。氧化的人[2Fe-2S]铁氧还蛋白(肾上腺素)用于测试该方法。该策略涉及六个步骤:(1)通过标准多核二维和三维(2D和3D)分配来自〜1H,〜(13)C和〜(15)N核的NMR信号,这些信号不受顺磁效应影响或受到最小影响。 )的光谱方法,用〜(13)C和〜(15)N均匀标记的蛋白质样品。 (2)通过选择性〜(13)C标记和一维(1D)〜(13)C NMR通过氨基酸和原子类型对来自残基金属中心残基中碳的非常宽泛的超细位移信号进行分类光谱学。 (3)通过〜(13)C {〜(13)C}恒定时间相关光谱(CT-COSY)阐明了涉及顺磁中心附近碳的扩宽但未发生超精细位移的自旋系统。 (4)通过选择性〜(15)N标记和1D〜(15)N NMR光谱将来自顺磁性中心影响的酰胺氮的信号分配为氨基酸类型。 (5)通过一维〜(13)C {〜(15)N}差异解耦实验确定这些碳和氮信号的序列特异性分配。 (6)通过顺磁优化的2D和3D〜1H {〜(13)C}实验分配来自这些自旋系统中〜1H原子核的信号。对于氧化的人铁氧还蛋白,此策略导致[2Fe-2S]簇结合环(残基43-58和89-94)中88%的碳分配(氨基酸和原子类型)。其中包括对22个残基中的8个进行完整的碳自旋系统分配,对其他每个进行部分分配。确定了来自22个残基中9个残基的骨架〜(15)N信号的序列特异性分配,以及其他5个残基的歧义分配。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2004年第17期|p. 5413-5426|共14页
  • 作者单位

    National Magnetic Resonance Facility at Madison, Department of Biochemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706;

    National Magnetic Resonance Facility at Madison, Department of Biochemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706;

    National Magnetic Resonance Facility at Madison, Department of Biochemistry, University of Wisconsin-Madison, Madison, Wisconsin 53706;

  • 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
  • 中图分类 化学;
  • 关键词

  • 入库时间 2022-08-18 03:24:47

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