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计算不同拓扑结构的 DNA 四重螺旋的电子圆二色性光谱:基于片段双激化的广义激子模型的关键检验。

Computing the electronic circular dichroism spectrum of DNA quadruple helices of different topology: A critical test for a generalized excitonic model based on a fragment diabatization.

机构信息

Istituto di Biostrutture e Bioimmagini, CNR, Napoli, Italy.

Institut für Physikalische Theoretische Chemie, Goethe-Universität Frankfurt am Main, Frankfurt am Main, Germany.

出版信息

Chirality. 2023 May;35(5):298-310. doi: 10.1002/chir.23540. Epub 2023 Feb 12.

DOI:10.1002/chir.23540
PMID:36775278
Abstract

In this study, we exploit a recently developed fragment diabatization-based excitonic model, FrDEx, to simulate the electronic circular dichroism (ECD) spectra of three guanine-rich DNA sequences arranged in guanine quadruple helices with different topologies: thrombin binding aptamer (antiparallel), c-Myc promoter (parallel), and human telomeric sequence (3+1 hybrid). Starting from time-dependent density functional theory (TD-DFT) calculations with the M052X functional, we apply our protocol to parameterize the FrDEX Hamiltonian, which accounts for electron density overlap and includes both the coupling with charge transfer transitions and the effect of the surrounding bases on the local excitation of each chromophore. The TD-DFT/M052X spectral shapes are in good agreement with the experimental ones, the main source of discrepancy being related to the intrinsic error on the computed transition energies of guanine monomer. FrDEx spectra are fairly close to the reference TD-DFT ones, allowing a significant advance with respect to a more standard excitonic Hamiltonian. We also show that the ECD spectra are sensitive to the inclusion of the inner K cation in the calculation.

摘要

在本研究中,我们利用最近开发的基于片段键合的激子模型 FrDEx,模拟了三种富含鸟嘌呤的 DNA 序列在不同拓扑结构的鸟嘌呤四链体中的电子圆二色性(ECD)光谱:凝血酶结合适体(反平行)、c-Myc 启动子(平行)和人类端粒序列(3+1 杂交)。从基于时间相关密度泛函理论(TD-DFT)的 M052X 函数计算开始,我们应用我们的方案来参数化 FrDEX 哈密顿量,该哈密顿量考虑了电子密度重叠,并包括与电荷转移跃迁的耦合以及周围碱基对每个发色团局部激发的影响。TD-DFT/M052X 光谱形状与实验光谱非常吻合,主要差异源与计算的鸟嘌呤单体跃迁能的固有误差有关。FrDEx 光谱与参考 TD-DFT 光谱非常接近,与更标准的激子哈密顿量相比,这是一个显著的进展。我们还表明,ECD 光谱对计算中包含内部 K+阳离子很敏感。

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