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Mechanochemical analysis of DNA gyrase using rotor bead tracking

机译:利用转子磁珠跟踪对DNA促旋酶进行机械化学分析

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DNA gyrase is a molecular machine that uses the energy of ATP hydrolysis to introduce essential negative supercoils into DNA(1-3). The directionality of supercoiling is ensured by chiral wrapping of the DNA(4,5) around a specialized domain(6-9) of the enzyme before strand passage. Here we observe the activity of gyrase in real time by tracking the rotation of a submicrometre bead attached to the side of a stretched DNA molecule(10). In the presence of gyrase and ATP, we observe bursts of rotation corresponding to the processive, stepwise introduction of negative supercoils in strict multiples of two(11). Changes in DNA tension have no detectable effect on supercoiling velocity, but the enzyme becomes markedly less processive as tension is increased over a range of only a few tenths of piconewtons. This behaviour is quantitatively explained by a simple mechanochemical model in which processivity depends on a kinetic competition between dissociation and rapid, tension-sensitive DNA wrapping. In a high-resolution variant of our assay, we directly detect rotational pauses corresponding to two kinetic substeps: an ATP-independent step at the end of the reaction cycle, and an ATP-binding step in the middle of the cycle, subsequent to DNA wrapping.
机译:DNA促旋酶是一种利用ATP水解能量将必不可少的负超螺旋引入DNA(1-3)的分子机器。通过在链通过之前将DNA(4,5)绕酶的特殊结构域(6-9)进行手性包裹,可以确保超螺旋的方向性。在这里,我们通过跟踪附着在拉伸的DNA分子侧面的亚微米珠的旋转来实时观察回旋酶的活性(10)。在存在促旋酶和ATP的情况下,我们观察到旋转的爆发,这些爆发与以2(11)的严格倍数逐步增加,逐步引入负超螺旋相对应。 DNA张力的变化对超螺旋速度没有可检测的影响,但是随着张力在十分之几的皮克顿范围内增加,酶的加工能力明显降低。通过简单的机械化学模型可以定量地解释这种行为,其中,合成能力取决于解离与张力敏感的快速DNA包装之间的动力学竞争。在我们的测定方法的高分辨率变体中,我们直接检测到与两个动力学子步骤相对应的旋转停顿:一个在反应周期结束时不依赖ATP的步骤,一个在循环中间进行DNA继而进行的ATP结合步骤包装。

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