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PolyA-Mediated DNA Assembly on Gold Nanoparticles for Thermodynamically Favorable and Rapid Hybridization Analysis

机译:PolyA介导的金纳米颗粒上的DNA组装用于热力学有利和快速杂交分析

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摘要

Understanding the behavior of biomolecules on nanointerface is critical in bioanalysis, which is great challenge due to the instability and the difficulty to control the orientation and loading density of biomolecules. Here, we investigated the thermodynamics and kinetics of DNA hybridization on gold nanoparticle, with the aim to improve the efficiency and speed of DNA analysis. We achieved precise and quantitative surface control by applying a recently developed poly adenines (polyA)-based assembly strategy on gold nanopartides (DNA-AuNPs). PolyA served as an effective anchoring block based on the preferential binding with the AuNP surface and the appended recognition block adopted an upright conformation that favors DNA hybridization. The lateral spacing and surface density of DNA on AuNPs can be systematically modulated by adjusting the length of polyA block. We found the stability of duplex on AuNP was enhanced with the increasing length of polyA block. When the length of polyA block reached to 40 bases, the thermodynamic properties were more similar to that of duplex in solution. Fast hybridization rate was observed on the cliblock DNA-AuNPs and was increased along with the length of polyA block. We consider the high stability and excellent hybridization performance come from the minimization of the DNA DNA and DNA-AuNP interactions with the use of polyA block. This study provides better understanding of the behavior of biomolecules on the nanointerface and opens new opportunities to construct high-efficiency and high-speed biosensors for DNA analysis.
机译:在生物分析中,了解生物分子在纳米界面上的行为至关重要,由于其不稳定性以及难以控制生物分子的方向和负载密度,这是一个巨大的挑战。在这里,我们研究了金纳米粒子上DNA杂交的热力学和动力学,旨在提高DNA分析的效率和速度。通过在金纳米粒子(DNA-AuNPs)上应用最近开发的基于聚腺嘌呤(polyA)的组装策略,我们实现了精确和定量的表面控制。 PolyA作为与AuNP表面的优先结合的有效锚定区,并且附加的识别区采用了有利于DNA杂交的直立构象。可以通过调节polyA嵌段的长度来系统地调节AuNPs上DNA的横向间距和表面密度。我们发现,随着polyA嵌段长度的增加,双链体在AuNP上的稳定性得到增强。当polyA嵌段的长度达到40个碱基时,热力学性质与溶液中的双链体更相似。在cliblock DNA-AuNPs上观察到快速杂交速率,并且随着polyA嵌段长度的增加而增加。我们认为高稳定性和出色的杂交性能来自使用polyA嵌段使DNA DNA和DNA-AuNP相互作用最小化。这项研究提供了对生物分子在纳米界面上行为的更好理解,并为构建用于DNA分析的高效,高速生物传感器提供了新的机会。

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