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首页> 外文期刊>Journal of Molecular Biology >Assignment strategies for large proteins by magic-angle spinning NMR: the 21-kDa disulfide-bond-forming enzyme DsbA.
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Assignment strategies for large proteins by magic-angle spinning NMR: the 21-kDa disulfide-bond-forming enzyme DsbA.

机译:大分子通过魔角旋转NMR分配策略:21 kDa二硫键形成酶DsbA。

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We present strategies for chemical shift assignments of large proteins by magic-angle spinning solid-state NMR, using the 21-kDa disulfide-bond-forming enzyme DsbA as prototype. Previous studies have demonstrated that complete de novo assignments are possible for proteins up to approximately 17 kDa, and partial assignments have been performed for several larger proteins. Here we show that combinations of isotopic labeling strategies, high field correlation spectroscopy, and three-dimensional (3D) and four-dimensional (4D) backbone correlation experiments yield highly confident assignments for more than 90% of backbone resonances in DsbA. Samples were prepared as nanocrystalline precipitates by a dialysis procedure, resulting in heterogeneous linewidths below 0.2 ppm. Thus, high magnetic fields, selective decoupling pulse sequences, and sparse isotopic labeling all improved spectral resolution. Assignments by amino acid type were facilitated by particular combinations of pulse sequences and isotopic labeling; for example, transferred echo double resonance experiments enhanced sensitivity for Pro and Gly residues; [2-(13)C]glycerol labeling clarified Val, Ile, and Leu assignments; in-phase anti-phase correlation spectra enabled interpretation of otherwise crowded Glx/Asx side-chain regions; and 3D NCACX experiments on [2-(13)C]glycerol samples provided unique sets of aromatic (Phe, Tyr, and Trp) correlations. Together with high-sensitivity CANCOCA 4D experiments and CANCOCX 3D experiments, unambiguous backbone walks could be performed throughout the majority of the sequence. At 189 residues, DsbA represents the largest monomeric unit for which essentially complete solid-state NMR assignments have so far been achieved. These results will facilitate studies of nanocrystalline DsbA structure and dynamics and will enable analysis of its 41-kDa covalent complex with the membrane protein DsbB, for which we demonstrate a high-resolution two-dimensional (13)C-(13)C spectrum.
机译:我们提出了使用21 kDa二硫键形成酶DsbA作为原型,通过魔角旋转固态NMR对大蛋白进行化学位移分配的策略。先前的研究表明,对于大约17 kDa以下的蛋白质,完全可以从头进行分配,而对几种较大的蛋白质进行了部分分配。在这里,我们显示了同位素标记策略,高场相关光谱法以及三维(3D)和三维(4D)骨架相关性实验的组合,可为DsbA中超过90%的骨架共振产生高可信度的分配。通过渗析程序将样品制备为纳米晶体沉淀物,导致线宽不均低于0.2 ppm。因此,高磁场,选择性去耦脉冲序列和稀疏同位素标记都改善了光谱分辨率。脉冲序列和同位素标记的特定组合有助于氨基酸类型的分配。例如,转移回波双共振实验提高了对Pro和Gly残基的灵敏度; [2-(13)C]甘油标记明确了Val,Ile和Leu的分配;同相反相相关光谱能够解释原本拥挤的Glx / Asx侧链区域; [2-(13)C]甘油样品的3D NCACX实验提供了独特的芳香族(Phe,Tyr和Trp)相关性组。结合高灵敏度CANCOCA 4D实验和CANCOCX 3D实验,可以在整个序列的大部分过程中进行明确的骨架行走。在189个残基上,DsbA代表最大的单体单元,到目前为止,已实现了基本上完整的固态NMR分配。这些结果将有助于研究纳米晶体DsbA的结构和动力学,并将使其与膜蛋白DsbB的41-kDa共价复合物的分析成为可能,为此我们展示了高分辨率的二维(13)C-(13)C光谱。

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