Self-assembling biomolecules for biosensor applications.

IF 8.1 Q1 ENGINEERING, BIOMEDICAL
Ji-Eun Kim, Jeon Hyeong Kang, Woo Hyun Kwon, Inseo Lee, Sang Jun Park, Chun-Ho Kim, Woo-Jin Jeong, Jun Shik Choi, Kyobum Kim
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Abstract

Molecular self-assembly has received considerable attention in biomedical fields as a simple and effective method for developing biomolecular nanostructures. Self-assembled nanostructures can exhibit high binding affinity and selectivity by displaying multiple ligands/receptors on their surface. In addition, the use of supramolecular structure change upon binding is an intriguing approach to generate binding signal. Therefore, many self-assembled nanostructure-based biosensors have been developed over the past decades, using various biomolecules (e.g., peptides, DNA, RNA, lipids) and their combinations with non-biological substances. In this review, we provide an overview of recent developments in the design and fabrication of self-assembling biomolecules for biosensing. Furthermore, we discuss representative electrochemical biosensing platforms which convert the biochemical reactions of those biomolecules into electrical signals (e.g., voltage, ampere, potential difference, impedance) to contribute to detect targets. This paper also highlights the successful outcomes of self-assembling biomolecules in biosensor applications and discusses the challenges that this promising technology needs to overcome for more widespread use.

用于生物传感器的自组装生物分子。
分子自组装作为开发生物分子纳米结构的一种简单而有效的方法,在生物医学领域受到了广泛关注。自组装纳米结构通过在其表面显示多种配体/受体,可表现出高结合亲和力和选择性。此外,利用结合时超分子结构的变化来产生结合信号也是一种有趣的方法。因此,在过去几十年里,人们利用各种生物大分子(如肽、DNA、RNA、脂质)及其与非生物物质的组合,开发出了许多基于自组装纳米结构的生物传感器。在本综述中,我们将概述用于生物传感的自组装生物分子的设计和制造方面的最新进展。此外,我们还讨论了具有代表性的电化学生物传感平台,这些平台可将这些生物分子的生化反应转化为电信号(如电压、安培、电位差、阻抗),从而有助于检测目标。本文还重点介绍了自组装生物分子在生物传感器应用方面的成功成果,并讨论了这一前景广阔的技术要得到更广泛的应用所需要克服的挑战。
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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