Bo Shen, Li Li, Minghui Guo, Xinyu Li, Yunpeng Fan, Xinmin Li, Rui Chen, Shijia Ding, Wei Cheng
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引用次数: 0
Abstract
The field of DNA nanotechnology has evolved beyond the realm of controllable movements and randomly shaped nanostructures, now encompassing a diverse array of nanomachines, each with unique nanostructures and biofunctional attributes. These DNA nanostructures boast exceptional characteristics such as programmability, integrability, biocompatibility, and universality. Among this variety, DNA walking nanomachines have emerged as one of the most prominent nanomotors, distinguished by their ingenious design and comprehensive functionality. In recent times, these DNA walkers have witnessed remarkable advancements in areas ranging from nanostructural designs to biological applications, including the creation of sophisticated biosensors capable of efficiently detecting tumor-related biomarkers and bioactive substances. This review delves into the operational mechanisms of DNA walking nanomachines, which are driven by processes such as protease and DNAzyme action as well as strand displacement and photoactivated reactions. It further provides a comprehensive overview of DNA walking nanomachines with different dimensional (1D, 2D, and 3D) walking tracks. A subsequent section introduces the biosensing applications of DNA walking nanomachines including electrochemical, optical, and other biosensors. The review concludes with a forward-looking perspective on the novel advancements and challenges in developing DNA walking nanomachine-based biosensors.
DNA 纳米技术领域的发展已经超越了可控运动和随机形状纳米结构的范畴,现在涵盖了各种纳米机械,每种机械都具有独特的纳米结构和生物功能属性。这些 DNA 纳米结构具有可编程性、可集成性、生物兼容性和通用性等优异特性。其中,DNA行走纳米机械以其巧妙的设计和全面的功能成为最突出的纳米动力之一。近来,这些 DNA 步行器在从纳米结构设计到生物应用的各个领域都取得了显著进展,包括创造出能够有效检测肿瘤相关生物标志物和生物活性物质的精密生物传感器。本综述深入探讨了 DNA 走纳米机械的运行机制,其驱动过程包括蛋白酶和 DNA 酶作用以及链置换和光激活反应。此外,它还全面概述了具有不同维度(一维、二维和三维)行走轨道的 DNA 步行纳米机械。随后的章节介绍了 DNA 步行纳米机械的生物传感应用,包括电化学、光学和其他生物传感器。综述最后以前瞻性的视角探讨了在开发基于 DNA 步行纳米机械的生物传感器方面取得的新进展和面临的挑战。