金纳米平台上的可编程DNAzyme行走器:从理性设计到生物成像/生物传感突破。

IF 9.6
Keqing Wang, Wenjing Zhu, Xin Li, Guixia Ling, Peng Zhang
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引用次数: 0

摘要

DNA行步器在单细胞分析和肿瘤微环境调节等精准医学应用中发挥着重要作用,但在稳定性、效率和生理适应性等方面仍面临瓶颈。DNA助行器主要包括助行链、轨迹和驱动力。dnazyme驱动的步行器通过酶催化实现自主运动,消除了对外部能量的依赖。AuNP-DNAzyme协同作用通过表面等离子体共振、硫醇化学和纳米限制来克服信号增强、密集DNA修饰和酶稳定的瓶颈。与DNA燃料或蛋白酶驱动的行走器相比,这种策略在降低成本的同时提高了处理效率和稳定性。本文围绕“结构-性能-应用”进行综述:首先概述了DNA助行器的组成和AuNPs的结构作用,然后讨论了通过3D轨道和DNAzyme调谐进行性能优化,最后总结了在分子成像和生物传感方面的应用。本文深入探讨了DNA助行器的未来发展趋势,并对其研究前景进行了展望,重点从治疗整合和体内动态成像两方面进行了探讨,将DNA助行器定位为精准诊断和靶向治疗的智能平台。本综述强调了dnazyme驱动的DNA行走器的变革潜力,它利用DNAzymes的自主催化活性,与传统的燃料链或蛋白酶驱动系统相比,实现了无与伦比的操作效率、稳定性、成本效益和可编程性。其进步的核心是金纳米颗粒(AuNPs)的集成,其卓越的生物相容性,大表面积和多功能表面功能化能力使DNA助行器平台的构建和性能得到增强。通过系统地概述DNAzyme助行体和aunp之间的协同作用,这项工作强调了它们在生物传感和分子成像方面的突破性应用,为生物医学研究提供了超灵敏的检测和精确的空间分辨率。此外,对未来趋势的讨论将DNA行走器定位为驱动纳米技术、诊断和靶向治疗创新的关键工具,将基础科学与现实世界的临床和分析挑战联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Programmable DNAzyme walkers on gold nanoplatforms: From rational design to bioimaging/biosensing breakthroughs.

DNA walkers play a strategic role in precision medicine for applications such as single-cell analysis and tumor microenvironment modulation, yet face bottlenecks in stability, efficiency, and physiological adaptability. A DNA walker primarily comprises a walking strand, track, and driving force. DNAzyme-driven walkers achieve autonomous movement via enzymatic catalysis, eliminating reliance on external energy. The AuNP-DNAzyme synergy overcomes bottlenecks via surface plasmon resonance, thiol chemistry, and nanoconfinement for signal enhancement, dense DNA modification, and enzyme stabilization. Compared to DNA fuel or protease-powered walkers, this strategy enhances processivity and stability while reducing costs. This review is structured around "structure-performance-application": it first outlines the components of DNA walkers and the structural roles of AuNPs, then discusses performance optimization through 3D tracks and DNAzyme tuning, and finally summarizes applications in molecular imaging and biosensing. Future development trends of DNA walkers have been delved into, and their research prospects have been presented in this article, with a focus on theranostic integration and in vivo dynamic imaging, positioning DNA walkers as intelligent platforms for precision diagnostics and targeted therapy. STATEMENT OF SIGNIFICANCE: This review highlights the transformative potential of DNAzyme-driven DNA walkers, which leverage the autonomous catalytic activity of DNAzymes to achieve unparalleled operational efficiency, stability, cost-effectiveness, and programmability compared to conventional fuel strand- or protease-powered systems. Central to their advancement is the integration of gold nanoparticles (AuNPs), whose exceptional biocompatibility, large surface area, and versatile surface functionalization capabilities enable robust construction and enhanced performance of DNA walker platforms. By systematically outlining the synergy between DNAzyme walkers and AuNPs, this work underscores their groundbreaking applications in biosensing and molecular imaging, offering ultrasensitive detection and precise spatial resolution for biomedical research. Furthermore, the discussion on future trends positions DNA walkers as pivotal tools poised to drive innovation in nanotechnology, diagnostics, and targeted therapeutics, bridging fundamental science with real-world clinical and analytical challenges.

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