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首页> 外文期刊>RSC Advances >Binding to gold nanoclusters alters the hydrogen bonding interactions and electronic properties of canonical and size-expanded DNA base pairs
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Binding to gold nanoclusters alters the hydrogen bonding interactions and electronic properties of canonical and size-expanded DNA base pairs

机译:与金纳米团簇的结合改变了规范和尺寸扩展的DNA碱基对的氢键相互作用和电子性质

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DNA molecules tagged to metal nanoparticles, especially gold nanoparticles (AuNPs), have been shown to have potential applications in the design and fabrication of novel electronic nano-devices, but the binding mechanism between gold nanoparticles and DNA bases and its implications are not completely understood. In this work, a comprehensive study to examine the effect of structural perturbations caused to DNA base pairs in terms of size expansion and adsorption on a gold cluster (Au-3) has been carried out using density functional theory. The geometric and electronic features of these complexes provide evidence for the distortion of certain base pairs depending on the binding site of the cluster. This is further substantiated via normal mode, natural bond orbital (NBO) and atoms in molecules (AIM) analyses. The natural population analysis (NPA) and NBO analysis indicate that complexation greatly affects the charge distribution on the base pairs due to charge transfer between the base pair and gold cluster. This charge redistribution may offer the possibility of higher order interactions. Upon complexation, a marked decrease in the HOMO-LUMO gap is observed, which is more profound in cases where size-expanded bases are involved due to the extended pi-conjugation of the fused benzene rings. This study demonstrates the possibility of combining structural modifications to DNA base pairs and subsequent binding to gold nanoparticles to modulate and achieve molecular systems with desired optoelectronic properties.
机译:已显示出标记有金属纳米颗粒(尤其是金纳米颗粒(AuNPs))的DNA分子在新型电子纳米器件的设计和制造中具有潜在的应用,但金纳米颗粒和DNA碱基之间的结合机理及其含义尚不完全清楚。在这项工作中,已经使用密度泛函理论进行了全面的研究,以研究在大小扩展和吸附金簇(Au-3)方面对DNA碱基对造成的结构扰动的影响。这些配合物的几何和电子特征为某些碱基对的依赖于簇的结合位点提供了证据。这可以通过常规模式,自然键轨道(NBO)和分子中的原子(AIM)分析得到进一步证实。自然种群分析(NPA)和NBO分析表明,由于碱基对与金簇之间的电荷转移,络合极大地影响了碱基对上的电荷分布。这种电荷的重新分配可以提供更高阶交互的可能性。络合后,观察到HOMO-LUMO间隙的显着减少,这在涉及由于扩宽的苯环的ππ缀合而导致尺寸扩大的碱基的情况下更为明显。这项研究证明了结合DNA碱基对的结构修饰和随后与金纳米颗粒结合以调节并获得具有所需光电特性的分子系统的可能性。

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