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Out-of-equilibrium conformational cycling of GroEL under saturating ATP concentrations

机译:饱和ATP浓度下GroEL的非平衡构象循环

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摘要

The molecular chaperone GroEL exists in at least two allosteric states, T and R, that interconvert in an ATP-controlled manner. Thermodynamic analysis suggests that the T-state population becomes negligible with increasing ATP concentrations, in conflict with the requirement for conformational cycling, which is essential for the operation of molecular machines. To solve this conundrum, we performed fluorescence correlation spectroscopy on the single-ring version of GroEL, using a fluorescent switch recently built into its structure, which turns “on,” i.e., increases its fluorescence dramatically, when ATP is added. A series of correlation functions was measured as a function of ATP concentration and analyzed using singular-value decomposition. The analysis assigned the signal to two states whose dynamics clearly differ. Surprisingly, even at ATP saturation, ∼50% of the molecules still populate the T state at any instance of time, indicating constant out-of-equilibrium cycling between T and R. Only upon addition of the cochaperonin GroES does the T-state population vanish. Our results suggest a model in which the T/R ratio is controlled by the rate of ADP release after hydrolysis, which can be determined accordingly.
机译:分子伴侣GroEL至少存在两种​​变构状态,即T和R,它们以ATP控制的方式相互转换。热力学分析表明,随着ATP浓度的增加,T态总体变得微不足道,这与构象循环的要求相冲突,而构象循环对于分子机器的运行至关重要。为了解决这个难题,我们对GroEL的单环版本进行了荧光相关光谱分析,使用了最近内置在其结构中的荧光开关,该开关“打开”,即,当添加ATP时,荧光急剧增加。测量了一系列相关函数,作为ATP浓度的函数,并使用奇异值分解进行了分析。分析将信号分配给两个状态,这两个状态的动力学明显不同。出乎意料的是,即使在ATP饱和时,在任何时间点,仍有约50%的分子仍处于T状态,这表明T和R之间存在恒定的失衡循环。消失。我们的结果提出了一个模型,其中T / R比受水解后ADP释放速率的控制,可以相应地确定。

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