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DNA nanostructure-based nucleic acid probes: construction and biological applications

机译:基于DNA纳米结构的核酸探针:建筑和生物应用

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摘要

In recent years, DNA has been widely noted as a kind of material that can be used to construct building blocks for biosensing, in vivo imaging, drug development, and disease therapy because of its advantages of good biocompatibility and programmable properties. However, traditional DNA-based sensing processes are mostly achieved by random diffusion of free DNA probes, which were restricted by limited dynamics and relatively low efficiency. Moreover, in the application of biosystems, single-stranded DNA probes face challenges such as being difficult to internalize into cells and being easily decomposed in the cellular microenvironment. To overcome the above limitations, DNA nanostructure-based probes have attracted intense attention. This kind of probe showed a series of advantages compared to the conventional ones, including increased biostability, enhanced cell internalization efficiency, accelerated reaction rate, and amplified signal output, and thus improved in vitro and in vivo applications. Therefore, reviewing and summarizing the important roles of DNA nanostructures in improving biosensor design is very necessary for the development of DNA nanotechnology and its applications in biology and pharmacology. In this perspective, DNA nanostructure-based probes are reviewed and summarized from several aspects: probe classification according to the dimensions of DNA nanostructures (one, two, and three-dimensional nanostructures), the common connection modes between nucleic acid probes and DNA nanostructures, and the most important advantages of DNA self-assembled nanostructures in the applications of biosensing, imaging analysis, cell assembly, cell capture, and theranostics. Finally, the challenges and prospects for the future development of DNA nanostructure-based nucleic acid probes are also discussed.
机译:近年来,DNA已被广泛作为一种材料可用于构建积木生物传感,体内成像,药物开发和治疗疾病的,因为良好的生物相容性和可编程特性及其优点指出。然而,传统的基于DNA的检测方法大多通过游离DNA探针,这是由有限的动态和相对低的效率受限随机扩散来实现的。此外,在生物系统中的应用,单链DNA探针面如难于内化到细胞中,并在细胞微环境被容易分解的挑战。为了克服上述限制,DNA纳米结构体探针已经引起强烈关注。这种探针的显示相比于常规的,包括增加的生物稳定性,增强的细胞内化的效率,加快反应速率,和放大的信号输出的一系列的优点,因此在体外和体内应用的改善。因此,回顾和总结提高生物传感器的设计DNA纳米结构的重要作用是DNA纳米技术及其在生物学和药理学应用的发展十分必要。从这个角度来看,DNA基于纳米结构的探针被回顾和总结从几个方面:根据DNA的纳米结构的尺寸(一,二,和三维纳米结构)探针分类,核酸探针和DNA纳米结构之间的公共连接的模式,和在生物感测的应用中成像分析DNA自组装纳米结构,电池组件,细胞捕获,和治疗诊断学中最重要的优点。最后,对于DNA基于纳米结构的核酸探针的未来发展的挑战和前景进行了讨论。

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