Label‐Free Detection and Translocation Dynamics Study of Single‐Molecule Herceptin Using Solid‐State Nanopores

Ruisheng Hu, Wenlong Lu, Guanghao Wei, Hexin Nan, Juan Li, Qing Zhao
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引用次数: 1

Abstract

Herceptin (or trastuzumab) is an important therapeutic monoclonal antibody (mAb) used in the treatment of HER2‐positive breast cancer. Real‐time counting and characterization of Herceptin is a fundamental step in the field of disease‐related diagnosis and therapy. Solid‐state nanopore‐based biosensors have been proved to hold great potential in characterizing the properties of proteins at the single‐molecule level for in vitro diagnosis. Here, the label‐free detection and detailed translocation dynamics study of Herceptin using solid‐state nanopores are demonstrated. By constricting nanopore size close to the size of Herceptin, the detection sensitivity and temporal resolution have been significantly improved, allowing the delicate probing of the structural information of single‐molecule Herceptin. Therefore, three types of Herceptin translocation events are identified through nanopores, single‐level, multi‐level and spike‐like events, emerged at different voltages regimes, indicating the unfolding kinetics of Herceptin under electric field. The potential influence of a high electric field on complex biomolecules is highlighted and a novel prospective platform is provided for label‐free detection of single‐molecule therapeutic monoclonal antibodies via solid‐state nanopores as a miniaturized biomedical device.
使用固态纳米孔的单分子赫赛汀无标签检测和易位动力学研究
赫赛汀(或曲妥珠单抗)是一种重要的治疗性单克隆抗体(mAb),用于治疗HER2阳性乳腺癌。赫赛汀的实时计数和表征是疾病相关诊断和治疗领域的基本步骤。基于固体纳米孔的生物传感器已被证明在体外诊断的单分子水平上具有表征蛋白质特性的巨大潜力。本文展示了利用固态纳米孔对赫赛汀进行无标签检测和详细的易位动力学研究。通过将纳米孔缩小到接近赫赛汀的大小,检测灵敏度和时间分辨率得到了显着提高,从而可以对单分子赫赛汀的结构信息进行精细探测。因此,通过纳米孔确定了三种类型的赫赛汀易位事件,单级,多级和峰状事件,在不同的电压下出现,表明赫赛汀在电场下的展开动力学。强调了高电场对复杂生物分子的潜在影响,并为通过固态纳米孔作为小型生物医学设备进行单分子治疗性单克隆抗体的无标签检测提供了一个新的前瞻性平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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