首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Single-molecule Förster resonance energy transfer (FRET) analysis discloses the dynamics of the DNA–topoisomerase II (Top2) interaction in the presence of TOP2-targeting agents
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Single-molecule Förster resonance energy transfer (FRET) analysis discloses the dynamics of the DNA–topoisomerase II (Top2) interaction in the presence of TOP2-targeting agents

机译:单分子福斯特共振能量转移(FRET)分析揭示了在TOP2靶向剂存在下DNA-拓扑异构酶II(Top2)相互作用的动力学

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摘要

Topoisomerases play crucial roles in DNA replication, transcription, and recombination. For instance, topoisomerase II (Top2) is critically important for resolving DNA tangles during cell division, and as such, it is a broad anticancer drug target. Top2 regulates DNA topology by transiently breaking one double-stranded DNA molecule (cleavage), allowing a second double strand to pass through the opened DNA gate (opening), and then closing the gate by rejoining the broken ends. Drugs that modulate Top2 catalysis may therefore affect enzymatic activity at several different steps. Previous studies have focused on examining DNA cleavage and ligation; however, the dynamic opening and closing of the DNA gate has been less explored. Here, we used the single-molecule Förster resonance energy transfer (smFRET) method to observe the open and closed state of the DNA gate and to measure dwell times in each state. Our results show that Top2 binds and bends DNA to increase the energy transfer efficiency (EFRET), and ATP treatment further induces the fluctuation of EFRET, representing the gate opening and closing. Additionally, our results demonstrate that both types of Top2-targeting anticancer drugs, the catalytic inhibitor dexrazoxane (ICRF187) and mechanistic poison teniposide (VM26), can interfere with DNA gate dynamics and shorten the dwell time in the closed state. Moreover, Top2 bound to the nonhydrolyzable ATP analog 5′-adenylyl-β,γ-imidodiphosphate exhibits altered DNA gate dynamics, but the DNA gate appears to open and close even after N-gate closure. In summary, we have utilized single-molecule detection to unravel Top2 DNA gate dynamics and reveal previously unknown effects of Top2 drugs on these dynamics.
机译:拓扑异构酶在DNA复制,转录和重组中起关键作用。例如,拓扑异构酶II(Top2)对于解决细胞分裂过程中的DNA缠结至关重要,因此,它是广泛的抗癌药物靶标。 Top2通过瞬时破坏一个双链DNA分子(裂解),允许第二个双链穿过打开的DNA门(打开),然后通过重新连接断裂的末端来关闭门来调节DNA拓扑。因此,调节Top2催化作用的药物可能会在几个不同的步骤上影响酶的活性。先前的研究集中在检查DNA的切割和连接。然而,关于DNA门的动态打开和关闭的研究较少。在这里,我们使用单分子Förster共振能量转移(smFRET)方法观察DNA门的打开和关闭状态,并测量每种状态下的停留时间。我们的结果表明,Top2结合并弯曲DNA以增加能量转移效率(EFRET),而ATP处理则进一步引起EFRET的波动,代表门的打开和关闭。此外,我们的结果表明,两种靶向Top2的抗癌药,即催化抑制剂右雷佐生(ICRF187)和机械毒性替尼泊苷(VM26),都可以干扰DNA门动力学并缩短闭合状态下的停留时间。而且,与不可水解的ATP类似物5'-腺苷基-β,γ-亚氨基二磷酸结合的Top2表现出改变的DNA门动力学,但是即使在N-门关闭后,DNA门也似乎打开和关闭。总而言之,我们利用单分子检测来揭示Top2 DNA门控动力学,并揭示Top2药物对这些动力学的先前未知的影响。

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