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Guanidinium derivatives bind preferentially and trigger long-distance conformational changes in an engineered T4 lysozyme

机译:胍基衍生物优先结合并在工程T4溶菌酶中触发远距离构象变化

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摘要

The binding of guanidinium ion has been shown to promote a large-scale translation of a tandemly duplicated helix in an engineered mutant of T4 lysozyme. The guanidinium ion acts as a surrogate for the guanidino group of an arginine side chain. Here we determine whether methyl- and ethylguani-dinium provide better mimics. The results show that addition of the hydrophobic moieties to the ligand enhances the binding affinity concomitant with reduction in ligand solubility. Crystallographic analysis confirms that binding of the alternative ligands to the engineered site still drives the large-scale conformational change. Thermal analysis and NMR data show, in comparison to guanidinium, an increase in protein stability and in ligand affinity. This is presumably due to the successive increase in hydrophobicity in going from guanidinium to ethylguanidinium. A fluorescence-based optical method was developed to sense the ligand-triggered helix translation in solution. The results are a first step in the de novo design of a molecular switch that is not related to the normal function of the protein.
机译:已显示胍盐离子的结合可促进T4溶菌酶工程突变体中串联复制的螺旋的大规模翻译。胍盐离子充当精氨酸侧链的胍基的替代物。在这里,我们确定甲基胍基和乙基胍基是否提供更好的模拟物。结果表明,将疏水性部分添加到配体中可增强结合亲和力,同时配体溶解度降低。晶体学分析证实替代配体与工程位点的结合仍驱动大规模构象变化。与胍鎓相比,热分析和NMR数据显示蛋白质稳定性和配体亲和力增加。据推测这是由于从胍盐到乙基胍盐的疏水性连续增加。开发了一种基于荧光的光学方法来检测溶液中配体触发的螺旋翻译。结果是分子开关从头设计的第一步,该开关与蛋白质的正常功能无关。

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