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并非所有的G-四链体都具有类似离子通道的性质:d(G(3)T(4)G(4))(2)四链体内铵离子(不)移动的核磁共振研究。

Not all G-quadruplexes exhibit ion-channel-like properties: NMR study of ammonium ion (non)movement within the d(G(3)T(4)G(4))(2) quadruplex.

作者信息

Sket Primoz, Plavec Janez

机构信息

Slovenian NMR Center, National Institute of Chemistry, Hajdrihova 19, SI-1000 Ljubljana, Slovenia.

出版信息

J Am Chem Soc. 2007 Jul 18;129(28):8794-800. doi: 10.1021/ja0710003. Epub 2007 Jun 20.

DOI:10.1021/ja0710003
PMID:17580943
Abstract

A solution-state NMR study on 15NH4(+) ion movement within d(G(3)T(4)G(4))(2), a dimeric G-quadruplex consisting of three G-quartets and two T(4) loops, rather unexpectedly demonstrated the absence of 15NH4(+) ion movement between the binding sites U and L along the central axis of the G-quadruplex. Distinct temperature dependences of autocorrelation signals for U and L binding sites have been observed in 15N-1H NzExHSQC spectra which correlate with the local stiffness of the G-quadruplex. The volumes of the cross-peaks, which are the result of 15NH4(+) ion movement, have been interpreted in terms of rate constants, T(1) relaxation, and proton exchange. 15NH4(+) ion movements from the binding sites U and L into the bulk solution are characterized by lifetimes of 139 ms and 1.7 s at 298 K, respectively. The 12 times faster movement from the binding site U demonstrates that 15NH4(+) ion movement is controlled by the structure of T4 loop residues, which through diagonal- vs edge-type orientations impose distinct steric restraints for cations to leave or enter the G-quadruplex. Arrhenius-type analysis has afforded an activation energy of 66 kJ mol(-)1 for the UB process, while it could not be determined for the LB process due to slow rates at temperatures below 298 K. We further the use of the 15NH4(+) ion as an NMR probe to gain insight into the occupancy of binding sites by cations and kinetics of ion movement which are intrinsically correlated with the structural details, dynamic fluctuations, and local flexibility of the DNA structure.

摘要

一项关于15NH4(+)离子在d(G(3)T(4)G(4))(2)(一种由三个G-四重体和两个T(4)环组成的二聚体G-四链体)内移动的溶液态核磁共振研究,相当出乎意料地表明,沿着G-四链体的中心轴,15NH4(+)离子在结合位点U和L之间没有移动。在15N-1H NzExHSQC谱中观察到了U和L结合位点自相关信号的明显温度依赖性,这与G-四链体的局部刚性相关。作为15NH4(+)离子移动结果的交叉峰体积,已根据速率常数、T(1)弛豫和质子交换进行了解释。15NH4(+)离子从结合位点U和L移动到本体溶液中的特征在于,在298 K时的寿命分别为139毫秒和1.7秒。从结合位点U移动速度快12倍表明,15NH4(+)离子的移动受T4环残基结构的控制,T4环残基通过对角型与边缘型取向对阳离子离开或进入G-四链体施加了不同的空间位阻。阿仑尼乌斯型分析得出UB过程的活化能为66 kJ mol(-)1,而由于在低于298 K的温度下速率较慢,LB过程的活化能无法确定。我们进一步利用15NH4(+)离子作为核磁共振探针,以深入了解阳离子对结合位点的占据情况以及离子移动动力学,这些与DNA结构的结构细节、动态波动和局部灵活性本质上相关。

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