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首页> 外文期刊>Bulletin of the Korean Chemical Society >Contribution of Counterion Entropy to the Salt-Induced Transition Between B-DNA and Z-DNA
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Contribution of Counterion Entropy to the Salt-Induced Transition Between B-DNA and Z-DNA

机译:抗衡离子熵对盐诱导的B-DNA和Z-DNA过渡的贡献

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Formation of Z-DNA, a left-handed double helix, from B-DNA, the canonical right-handed double helix, occurs during important biological processes such as gene expression and DNA transcription. Such B-Z transitions can also be induced by high salt concentration in vitro, but the changes in the relative stability of BDNA and Z-DNA with salt concentration have not been fully explained despite numerous attempts. For example, electrostatic effects alone could not account for salt-induced B-Z transitions in previous studies. In this paper, we propose that the B-Z transition can be explained if counterion entropy is considered along with the electrostatic interactions. This can be achieved by conducting all-atom, explicit-solvent MD simulations followed by MM-PBSA and molecular DFT calculations. Our MD simulations show that counterions tend to bind at specific sites in B-DNA and Z-DNA, and that more ions cluster near Z-DNA than near B-DNA. Moreover, the difference in counterion ordering near B-DNA and Z-DNA is larger at a low salt concentration than at a high concentration. The results imply that the exclusion of counterions by Z-DNA-binding proteins may facilitate Z-DNA formation under physiological conditions.
机译:Z-DNA是左旋双螺旋,由B-DNA(规范的右旋双螺旋)形成,发生在重要的生物学过程中,例如基因表达和DNA转录。这种B-Z过渡也可以通过体外高盐浓度来诱导,但是尽管进行了许多尝试,但BDNA和Z-DNA的相对稳定性随盐浓度的变化尚未得到充分解释。例如,在以前的研究中,仅静电作用不能解释盐诱导的B-Z跃迁。在本文中,我们建议如果考虑抗衡离子熵以及静电相互作用,则可以解释B-Z跃迁。这可以通过进行全原子,显式溶剂MD模拟,然后进行MM-PBSA和分子DFT计算来实现。我们的MD模拟显示,抗衡离子倾向于结合在B-DNA和Z-DNA的特定位点,并且在Z-DNA附近的离子簇比在B-DNA附近的离子更多。而且,低盐浓度下的B-DNA和Z-DNA附近的抗衡离子顺序的差异比高浓度下的更大。结果暗示Z-DNA结合蛋白排除抗衡离子可促进在生理条件下Z-DNA的形成。

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