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在生理 pH 值下通过巯基化 DNA 快速、无表面活性剂、定量功能化金纳米粒子及其在分子信标生物传感器中的应用。

Rapid, Surfactant-Free, and Quantitative Functionalization of Gold Nanoparticles with Thiolated DNA under Physiological pH and Its Application in Molecular Beacon-Based Biosensor.

机构信息

Department of Chemistry, Capital Normal University , Xisanhuan North Road 105, Beijing 100048, China.

Department of Chemistry and Biochemistry, Florida International University , Miami, Florida 33199, United States.

出版信息

ACS Appl Mater Interfaces. 2016 Oct 12;8(40):27298-27304. doi: 10.1021/acsami.6b08350. Epub 2016 Sep 30.

Abstract

The controlled attachment of thiolated DNA to gold nanoparticles (AuNPs) dictates many applications. This is typically achieved by either "aging-salting" processes or low-pH method, where either Na or H is used to minimize charge repulsion and facilitate attachment of thiolated DNA onto AuNPs. However, the "aging-salting" process takes a long time, and is prone to aggregation when used with larger AuNPs. Surfactants are needed to precoat and thereby enhance the stability of AuNPs. The low-pH method can disrupt the structural integrity of DNAs. We report here an oligoethylene glycol (OEG) spacer-assisted method that enables quantitative and instantaneous attachment at physiological pH without the need for surfactants. The method is based on our finding that an uncharged OEG spacer as short as six EG units can effectively shield against repulsion between AuNPs and DNAs, substantially enhancing both the adsorption kinetics and thermodynamics of thiolated DNAs. We applied this to thiolated DNAs of various lengths and thiol modification positions and to large AuNPs. Importantly, our method also allows for the direct immobilization of thiolated molecular beacons (MB), and avoids particle aggregation due to intermolecular hydrogen bonding. The prepared MB-AuNPs were successfully used for the fluorescent detection of target DNA at nanomolar concentrations. The OEG spacer appears to offer a highly effective parameter for tuning DNA adsorption kinetics and thermodynamics besides pH and salt, providing a novel means for highly controllable and versatile functionalization of AuNPs.

摘要

巯基化 DNA 可控地附着在金纳米粒子(AuNPs)上决定了许多应用。这通常可以通过“老化加盐”过程或低 pH 值方法来实现,其中 Na 或 H 用于最小化电荷排斥并促进巯基化 DNA 附着在 AuNPs 上。然而,“老化加盐”过程需要很长时间,并且当与较大的 AuNPs 一起使用时容易聚集。需要表面活性剂来预先涂覆并从而增强 AuNPs 的稳定性。低 pH 值方法会破坏 DNA 的结构完整性。我们在这里报告了一种寡乙二醇(OEG)间隔基辅助方法,该方法可以在生理 pH 值下实现定量和瞬时附着,而无需使用表面活性剂。该方法基于我们的发现,短至六个 EG 单元的不带电 OEG 间隔基可以有效地屏蔽 AuNPs 和 DNA 之间的排斥,从而大大增强了巯基化 DNA 的吸附动力学和热力学。我们将该方法应用于各种长度和巯基修饰位置的巯基化 DNA 以及大的 AuNPs。重要的是,我们的方法还允许直接固定巯基化分子信标(MB),并避免由于分子间氢键而导致的颗粒聚集。制备的 MB-AuNPs 成功地用于在纳摩尔浓度下检测靶 DNA 的荧光。OEG 间隔基除了 pH 值和盐以外,似乎还为调节 DNA 吸附动力学和热力学提供了一种非常有效的参数,为 AuNPs 的高度可控和多功能化提供了一种新的手段。

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