Kamberaj Hiqmet, van der Vaart Arjan
Center for Biological Physics, Department of Chemistry and Biochemistry, Arizona State University, Tempe, Arizona, USA.
Biophys J. 2009 Feb 18;96(4):1307-17. doi: 10.1016/j.bpj.2008.11.019.
The binding of the Ets-1 transcription factor to its target DNA sequence is characterized by a highly unusual conformational change consisting of the unfolding of inhibitory helix 1 (HI-1). To probe the interactions that lead to this unfolding, we performed molecular dynamics simulations of the folded states of apo-Ets-1 and the Ets-1-DNA complex. The simulations showed large differences in correlated motions between helix 4 (H4) and HI-1. In apo-Ets-1, H4 and HI-1 moved in-phase and stabilized each other by hydrogen bonding and macrodipolar interactions, whereas in the DNA-bound state, the motion was out-of-phase, with a disruption of the stabilizing interactions. This change in motion was due to hydrogen-bonding interactions between helix 1 (H1) and the DNA. The dipolar energy between H1 and H4 was modulated by hydrogen bonds between H1 and DNA, and, in accordance with experiments, elimination of the hydrogen bonds increased the stability of HI-1. The simulations confirm that the hydrogen bonds between H1 and DNA act as a conformational switch and show that the presence of DNA is communicated from H1 to H4, destabilizing HI-1. The calculations reveal a critical role for correlated motions at the onset of the DNA-induced unfolding.
Ets-1转录因子与其靶DNA序列的结合具有高度异常的构象变化特征,该变化包括抑制性螺旋1(HI-1)的解折叠。为了探究导致这种解折叠的相互作用,我们对无DNA的Ets-1和Ets-1-DNA复合物的折叠态进行了分子动力学模拟。模拟结果显示螺旋4(H4)和HI-1之间的相关运动存在很大差异。在无DNA的Ets-1中,H4和HI-1同步移动,并通过氢键和宏观偶极相互作用相互稳定,而在与DNA结合的状态下,运动是不同步的,稳定相互作用被破坏。这种运动变化是由于螺旋1(H1)与DNA之间的氢键相互作用。H1和H4之间的偶极能由H1和DNA之间的氢键调节,并且与实验一致,氢键的消除增加了HI-1的稳定性。模拟结果证实H1和DNA之间的氢键起到了构象开关的作用,并表明DNA的存在从H1传递到H4,使HI-1不稳定。计算结果揭示了在DNA诱导的解折叠开始时相关运动的关键作用。