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Interactions Controlling the Slow Dynamic Conformational Motions of Ubiquitin

机译:控制泛素慢动态构象运动的相互作用

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摘要

Rational mutation of proteins based on their structural and dynamic characteristics is a useful strategy for amplifying specific fluctuations in proteins. Here, we show the effects of mutation on the conformational fluctuations and thermodynamic stability of ubiquitin. In particular, we focus on the salt bridge between K11 and E34 and the hydrogen bond between I36 and Q41, which are predicted to control the fluctuation between the basic folded state, N1, and the alternatively folded state, N2, of the protein, using high-pressure NMR spectroscopy. The E34A mutation, which disrupts the salt bridge, did not alter picosecond–to–nanosecond, microsecond–to–millisecond dynamic motions, and stability of the protein, while the Q41N mutation, which destabilizes the hydrogen bond, specifically amplified the N1–N2 conformational fluctuation and decreased stability. Based on the observed thermodynamic stabilities of the various conformational states, we showed that in the Q41N mutant, the N1 state is more significantly destabilized than the N2 state, resulting in an increase in the relative population of N2. Identifying the interactions controlling specific motions of a protein will facilitate molecular design to achieve functional dynamics beyond native state dynamics.
机译:基于蛋白质的结构和动态特性对蛋白质进行合理的突变是放大蛋白质中特定波动的有用策略。在这里,我们显示了突变对泛素的构象波动和热力学稳定性的影响。特别是,我们着眼于K11和E34之间的盐桥以及I36和Q41之间的氢键,据预测,它们可以控制蛋白质的基本折叠状态N1和交替折叠状态N2之间的波动,高压NMR光谱。破坏盐桥的E34A突变并没有改变皮秒到纳秒,微秒到毫秒的动态运动和蛋白质的稳定性,而使氢键不稳定的Q41N突变则专门扩增了N1-N2构象波动和稳定性下降。基于观察到的各种构象态的热力学稳定性,我们表明在Q41N突变体中,N1态比N2态更加不稳定,从而导致N2相对种群增加。识别控制蛋白质特定运动的相互作用将有助于分子设计实现超越天然状态动力学的功能动力学。

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