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Dynamic nuclear polarization-enhanced solid-state NMR spectroscopy of GNNQQNY nanocrystals and amyloid fibrils

机译:GNNQQNY纳米晶体和淀粉样原纤维的动态核极化增强固态NMR光谱

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摘要

Dynamic nuclear polarization (DNP) utilizes the inherently larger polarization of electrons to enhance the sensitivity of conventional solid-state NMR experiments at low temperature. Recent advances in instrumentation development and sample preparation have transformed this field and have opened up new opportunities for its application to biological systems. Here, we present DNP-enhanced ~(13)C-~(13)C and ~(15)N-~(13)C correlation experiments on GNNQQNY nanocrystals and amyloid fibrils acquired at 9.4 T and 100 K and demonstrate that DNP can be used to obtain assignments and site-specific structural information very efficiently. We investigate the influence of temperature on the resolution, molecular conformation, structural integrity and dynamics in these two systems. In addition, we assess the low-temperature performance of two commonly used solid-state NMR experiments, proton-driven spin diffusion (PDSD) and transferred echo double resonance (TEDOR), and discuss their potential as tools for measurement of structurally relevant distances at low temperature in combination with DNP.
机译:动态核极化(DNP)利用电子固有的更大极化来增强传统固态NMR低温实验的灵敏度。仪器开发和样品制备的最新进展已经改变了该领域,并为将其应用于生物系统开辟了新的机会。在这里,我们提出了DNP增强的〜(13)C-〜(13)C和〜(15)N-〜(13)C在GNNQQNY纳米晶体和淀粉样原纤维上以9.4 T和100 K获得的相关实验,并证明了DNP可以可用于非常有效地获取分配和特定于站点的结构信息。我们研究了温度对这两个系统的分辨率,分子构象,结构完整性和动力学的影响。此外,我们评估了两个常用的固态NMR实验(质子驱动的自旋扩散(PDSD)和转移回波双共振(TEDOR))的低温性能,并讨论了它们作为测量结构相关距离的工具的潜力。低温与DNP结合使用。

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