首页> 外文期刊>Journal of Biomolecular NMR >CPMG relaxation dispersion NMR experiments measuring glycine H-1(alpha) and C-13(alpha) chemical shifts in the 'invisible' excited states of proteins
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CPMG relaxation dispersion NMR experiments measuring glycine H-1(alpha) and C-13(alpha) chemical shifts in the 'invisible' excited states of proteins

机译:CPMG弛豫分散核磁共振实验,测量蛋白质“隐形”激发态中甘氨酸H-1α和C-13α的化学位移

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摘要

Carr-Purcell-Meiboom-Gill (CPMG) relaxation dispersion NMR experiments are extremely powerful for characterizing millisecond time-scale conformational exchange processes in biomolecules. A large number of such CPMG experiments have now emerged for measuring protein backbone chemical shifts of sparsely populated (> 0.5%), excited state conformers that cannot be directly detected in NMR spectra and that are invisible to most other biophysical methods as well. A notable deficiency is, however, the absence of CPMG experiments for measurement of H-1(alpha) and C-13(alpha) chemical shifts of glycine residues in the excited state that reflects the fact that in this case the H-1(alpha), C-13(alpha) spins form a three-spin system that is more complex than the AX H-1(alpha)-C-13(alpha) spin systems in the other amino acids. Here pulse sequences for recording H-1(alpha) and C-13(alpha) CPMG relaxation dispersion profiles derived from glycine residues are presented that provide information from which H-1(alpha), C-13(alpha) chemical shifts can be obtained. The utility of these experiments is demonstrated by an application to a mutant of T4 lysozyme that undergoes a millisecond time-scale exchange process facilitating the binding of hydrophobic ligands to an internal cavity in the protein.
机译:Carr-Purcell-Meiboom-Gill(CPMG)弛豫分散NMR实验对于表征生物分子中的毫秒级时标构象交换过程非常有力。现在已经出现了大量此类CPMG实验,用于测量稀疏(> 0.5%)激发态构象体的蛋白质骨架化学位移,这些分子在NMR光谱中无法直接检测到,并且大多数其他生物物理方法也看不见。然而,一个明显的缺陷是缺少CPMG实验来测量激发态甘氨酸残基的H-1α和C-13α化学位移,这反映了在这种情况下H-1( α),C-13α自旋形成一个三轴系统,比其他氨基酸中的AXH-1α-C-13α自旋系统更复杂。此处显示了用于记录源自甘氨酸残基的H-1α和C-13αCPMG弛豫分散曲线的脉冲序列,这些脉冲序列提供了可以从中进行H-1α,C-13α化学位移的信息。获得。这些实验的实用性通过应用于T4溶菌酶的突变体得以证明,该突变体经历了毫秒级的时标交换过程,促进了疏水性配体与蛋白质内部空腔的结合。

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