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Electronic Measurements of Single-Molecule Catalysis by cAMP-Dependent Protein Kinase A

机译:电子测量由cAMP依赖性蛋白激酶A进行的单分子催化

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摘要

Single-molecule studies of enzymes open a window into their dynamics and kinetics. A single molecule of the catalytic domain of cAMP-dependent protein kinase (PKA) was attached to a single-walled carbon nanotube device for long duration monitoring. The electronic recording clearly resolves substrate binding, ATP binding, and cooperative formation of PKA’s catalytically functional, ternary complex. Using recordings of a single PKA molecule extending over 10 minutes and tens of thousands of binding events, we determine the full transition probability matrix and conversion rates governing formation of the apo, intermediate, and closed enzyme configurations. We also observe kinetic rates varying over two orders of magnitude from one second to another. Anti-correlation of the on- and off-rates for PKA binding to the peptide substrate, but not ATP, demonstrates that regulation of enzyme activity results from altering the stability of the PKA-substrate complex, not its binding to ATP. The results depict a highly dynamic enzyme offering dramatic possibilities for regulated activity, an attribute useful for an enzyme with crucial roles in cell signaling.
机译:酶的单分子研究为它们的动力学和动力学打开了一个窗口。将cAMP依赖性蛋白激酶(PKA)的催化结构域的单个分子连接到单壁碳纳米管设备上,以进行长时间监控。电子记录清楚地解决了底物结合,ATP结合以及PKA催化功能三元配合物的协同形成。使用单个PKA分子在10分钟内发生的结合和成千上万个结合事件的记录,我们确定了控制apo,中间和封闭酶构型形成的完整过渡概率矩阵和转化率。我们还观察到动力学速率从一秒到另一秒变化超过两个数量级。 PKA结合肽底物而不是ATP的开和关速率的反相关表明,酶活性的调节是由于改变了PKA-底物复合物的稳定性而不是其与ATP的结合而引起的。结果描述了一种高度动态的酶,为调节活性提供了极大的可能性,这种活性对于在细胞信号传导中起关键作用的酶很有用。

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