Department of Physics and Astronomy, Seoul National University, Seoul 151-747, Korea.
Proc Natl Acad Sci U S A. 2012 Feb 21;109(8):2925-30. doi: 10.1073/pnas.1115704109. Epub 2012 Feb 9.
Topoisomerase II resolves intrinsic topological problems of double-stranded DNA. As part of its essential cellular functions, the enzyme generates DNA breaks, but the regulation of this potentially dangerous process is not well understood. Here we report single-molecule fluorescence experiments that reveal a previously uncharacterized sequence of events during DNA cleavage by topoisomerase II: nonspecific DNA binding, sequence-specific DNA bending, and stochastic cleavage of DNA. We have identified unexpected structural roles of Mg(2+) ions coordinated in the TOPRIM (topoisomerase-primase) domain in inducing cleavage-competent DNA bending. A break at one scissile bond dramatically stabilized DNA bending, explaining how two scission events in opposing strands can be coordinated to achieve a high probability of double-stranded cleavage. Clamping of the protein N-gate greatly enhanced the rate and degree of DNA bending, resulting in a significant stimulation of the DNA cleavage and opening reactions. Our data strongly suggest that the accurate cleavage of DNA by topoisomerase II is regulated through a tight coordination with DNA bending.
拓扑异构酶 II 解决了双链 DNA 的固有拓扑问题。作为其基本细胞功能的一部分,该酶会产生 DNA 断裂,但这种潜在危险过程的调节机制尚不清楚。本文报道了一项单分子荧光实验,揭示了拓扑异构酶 II 介导的 DNA 断裂过程中一个以前未被描述的事件序列:非特异性 DNA 结合、序列特异性 DNA 弯曲和 DNA 的随机断裂。我们发现了在 TOPRIM(拓扑异构酶-引发酶)结构域中与镁离子配位的意想不到的结构作用,这种作用诱导了具有切割能力的 DNA 弯曲。一个切口的断裂极大地稳定了 DNA 的弯曲,解释了两个在相反链上的断裂事件如何协调以实现双链切割的高概率。蛋白质 N 门的钳制极大地提高了 DNA 弯曲的速率和程度,从而显著刺激了 DNA 切割和开口反应。我们的数据强烈表明,拓扑异构酶 II 通过与 DNA 弯曲的紧密协调来精确控制 DNA 的切割。