Dipartimento di Scienze Chimiche, Università degli Studi di Catania, Viale Andrea Doria 6, 95125, Catania, Italy.
Consorzio Interuniversitario "Istituto Nazionale Biostrutture e Biosistemi", c/o Dipartimento di Scienze Chimiche, Università degli Studi di Catania, Viale Andrea Doria 6, 95125, Catania, Italy.
Anal Bioanal Chem. 2021 Oct;413(24):6063-6077. doi: 10.1007/s00216-021-03309-4. Epub 2021 Apr 6.
Nucleic acid nanotechnology designs and develops synthetic nucleic acid strands to fabricate nanosized functional systems. Structural properties and the conformational polymorphism of nucleic acid sequences are inherent characteristics that make nucleic acid nanostructures attractive systems in biosensing. This review critically discusses recent advances in biosensing derived from molecular beacon and DNA origami structures. Molecular beacons belong to a conventional class of nucleic acid structures used in biosensing, whereas DNA origami nanostructures are fabricated by fully exploiting possibilities offered by nucleic acid nanotechnology. We present nucleic acid scaffolds divided into conventional hairpin molecular beacons and DNA origami, and discuss some relevant examples by focusing on peculiar aspects exploited in biosensing applications. We also critically evaluate analytical uses of the synthetic nucleic acid structures in biosensing to point out similarities and differences between traditional hairpin nucleic acid sequences and DNA origami.
核酸纳米技术设计和开发合成核酸链,以制造纳米级功能系统。核酸序列的结构特性和构象多态性是使核酸纳米结构成为生物传感中具有吸引力的系统的固有特性。本综述批判性地讨论了源自分子信标和 DNA 折纸结构的生物传感的最新进展。分子信标属于生物传感中使用的常规核酸结构类别,而 DNA 折纸纳米结构则通过充分利用核酸纳米技术提供的可能性来制造。我们介绍了分为常规发夹分子信标和 DNA 折纸的核酸支架,并通过重点讨论生物传感应用中利用的特殊方面,讨论了一些相关实例。我们还批判性地评估了合成核酸结构在生物传感中的分析用途,以指出传统发夹核酸序列和 DNA 折纸之间的相似之处和不同之处。