Chang Yong, Xia Ning, Huang Yaliang, Sun Zhifang, Liu Lin
College of Chemistry and Chemical Engineering, Anyang Normal University, Anyang 455000, China.
Nanomaterials (Basel). 2021 Dec 6;11(12):3307. doi: 10.3390/nano11123307.
The physiochemical properties of nanomaterials have a close relationship with their status in solution. As a result of its better simplicity than that of pre-assembled aggregates, the in situ assembly of nanomaterials has been integrated into the design of electrochemical biosensors for the signal output and amplification. In this review, we highlight the significant progress in the in situ assembly of nanomaterials as the nanolabels for enhancing the performances of electrochemical biosensors. The works are discussed based on the difference in the interactions for the assembly of nanomaterials, including DNA hybridization, metal ion-ligand coordination, metal-thiol and boronate ester interactions, aptamer-target binding, electrostatic attraction, and streptavidin (SA)-biotin conjugate. We further expand the range of the assembly units from nanomaterials to small organic molecules and biomolecules, which endow the signal-amplified strategies with more potential applications.
纳米材料的物理化学性质与其在溶液中的状态密切相关。由于原位组装比预组装聚集体更简便,因此纳米材料的原位组装已被应用于电化学生物传感器的设计中,用于信号输出和放大。在本综述中,我们重点介绍了纳米材料原位组装作为纳米标记物在提高电化学生物传感器性能方面取得的重大进展。基于纳米材料组装相互作用的差异对相关工作进行了讨论,包括DNA杂交、金属离子-配体配位、金属-硫醇和硼酸酯相互作用、适体-靶标结合、静电吸引以及链霉亲和素(SA)-生物素共轭。我们进一步将组装单元的范围从纳米材料扩展到小分子和生物分子,这为信号放大策略带来了更多潜在应用。