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Probing Protein-Protein Interactions Using Asymmetric Labeling and Carbonyl-Carbon Selective Heteronuclear NMR Spectroscopy

机译:使用不对称标记和羰基碳选择性杂核NMR光谱探测蛋白质与蛋白质的相互作用

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摘要

Protein-protein interactions (PPIs) regulate a plethora of cellular processes and NMR spectroscopy has been a leading technique for characterizing them at the atomic resolution. Technically, however, PPIs characterization has been challenging due to multiple samples required to characterize the hot spots at the protein interface. In this paper, we review our recently developed methods that greatly simplify PPI studies, which minimize the number of samples required to fully characterize residues involved in the protein-protein binding interface. This original strategy combines asymmetric labeling of two binding partners and the carbonyl-carbon label selective (CCLS) pulse sequence element implemented into the heteronuclear single quantum correlation (1H-15N HSQC) spectra. The CCLS scheme removes signals of the J-coupled 15N–13C resonances and records simultaneously two individual amide fingerprints for each binding partner. We show the application to the measurements of chemical shift correlations, residual dipolar couplings (RDCs), and paramagnetic relaxation enhancements (PRE). These experiments open an avenue for further modifications of existing experiments facilitating the NMR analysis of PPIs.
机译:蛋白质-蛋白质相互作用(PPI)调节了许多细胞过程,而NMR光谱学已成为表征原子分辨率下的领先技术。但是,从技术上讲,由于需要多个样品来表征蛋白质界面上的热点,因此PPI的表征一直具有挑战性。在本文中,我们回顾了我们最近开发的方法,这些方法大大简化了PPI研究,从而最大程度地减少了充分表征蛋白质-蛋白质结合界面中涉及的残基所需的样品数量。这种原始策略将两个结合配偶体的不对称标记与羰基-碳标记选择(CCLS)脉冲序列元件结合在一起,实现了异核单量子相关性( 1 H- 15 N HSQC)光谱。 CCLS方案消除了J耦合的 15 N– 13 C共振的信号,并为每个结合配偶体同时记录了两个单独的酰胺指纹。我们展示了在化学位移相关性,残留偶极耦合(RDC)和顺磁弛豫增强(PRE)的测量中的应用。这些实验为进一步修改现有实验提供了便利,以方便对PPI进行NMR分析。

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