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用于诊断和治疗应用的光子纳米材料的DNA定向组装

DNA‑Directed Assembly of Photonic Nanomaterials for Diagnostic and Therapeutic Applications.

作者信息

Ding Longjiang, Liu Bing, Peil Andreas, Fan Sisi, Chao Jie, Liu Na

机构信息

2nd Physics Institute, University of Stuttgart, Pfaffenwaldring 57, 70569, Stuttgart, Germany.

Max Planck Institute for Solid State Research, Heisenbergstraße 1, 70569, Stuttgart, Germany.

出版信息

Adv Mater. 2025 Mar 19:e2500086. doi: 10.1002/adma.202500086.

Abstract

DNA-directed assembly has emerged as a versatile and powerful approach for constructing complex structured materials. By leveraging the programmability of DNA nanotechnology, highly organized photonic systems can be developed to optimize light-matter interactions for improved diagnostics and therapeutic outcomes. These systems enable precise spatial arrangement of photonic components, minimizing material usage, and simplifying fabrication processes. DNA nanostructures, such as DNA origami, provide a robust platform for building multifunctional photonic devices with tailored optical properties. This review highlights recent progress in DNA-directed assembly of photonic nanomaterials, focusing on their applications in diagnostics and therapeutics. It provides an overview of the latest advancements in the field, discussing the principles of DNA-directed assembly, strategies for functionalizing photonic building blocks, innovations in assembly design, and the resulting optical effects that drive these developments. The review also explores how these photonic architectures contribute to diagnostic and therapeutic applications, emphasizing their potential to create efficient and effective photonic systems tailored to specific healthcare needs.

摘要

DNA 定向组装已成为构建复杂结构材料的一种通用且强大的方法。通过利用 DNA 纳米技术的可编程性,可以开发出高度有序的光子系统,以优化光与物质的相互作用,从而改善诊断和治疗效果。这些系统能够实现光子组件的精确空间排列,减少材料使用,并简化制造过程。DNA 纳米结构,如 DNA 折纸术,为构建具有定制光学特性的多功能光子器件提供了一个强大的平台。本综述重点介绍了 DNA 定向组装光子纳米材料的最新进展,着重阐述了它们在诊断和治疗中的应用。它概述了该领域的最新进展,讨论了 DNA 定向组装的原理、光子构建模块功能化的策略、组装设计的创新以及推动这些发展的光学效应。该综述还探讨了这些光子结构如何促进诊断和治疗应用,强调了它们为满足特定医疗需求而创建高效光子系统的潜力。

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