Nucleic Acid Framework-Enabled Spatial Organization for Biological Applications.

Chem & Bio Engineering Pub Date : 2024-12-30 eCollection Date: 2025-02-27 DOI:10.1021/cbe.4c00164
Rui Zhang, Xiaolei Zuo, Fangfei Yin
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Abstract

Nucleic acid frameworks (NAFs) are artificially prepared from natural nucleic acids with a precise size and structure. DNA origami exhibits controllable 2D lamellar structure and thus is easily used to construct 3D structures with different morphologies. Tetrahedral DNA nanostructures (TDNs) are prepared with four DNA strands that hybridize to each other with a tetrahedral structure. Here we summarize molecular spatial organization with DNA origami and TDNs as models for 2D- and 3D-recombinations, discuss NAF-based biomimicking of proteins and biomembranes, and introduce the identification probes, functional groups, and intercalators for biosensing, bioimaging, and nanomedicine therapy. NAFs are also extended to applications to guide the formation of inorganic nanoparticles with precise size and structure. Thus, the NAFs exhibit special organization, are easy to functionalize, and are becoming an important platform for interdisciplinary study and applications, such as nanotechnology, biochemistry, synthetic biology, and nanomedicine.

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用于生物应用的核酸框架空间组织。
核酸框架(NAFs)是由具有精确大小和结构的天然核酸人工合成的。DNA折纸具有可控制的二维层状结构,因此易于构建具有不同形态的三维结构。四面体DNA纳米结构(tdn)是由四条DNA链以四面体结构相互杂交而成的。本文总结了以DNA折纸和tdn作为二维和三维重组模型的分子空间组织,讨论了基于naff的蛋白质和生物膜的仿生,并介绍了用于生物传感、生物成像和纳米医学治疗的鉴定探针、官能团和插层器。naf也被扩展到引导形成具有精确尺寸和结构的无机纳米颗粒的应用中。因此,NAFs具有特殊的组织结构,易于功能化,正在成为纳米技术、生物化学、合成生物学和纳米医学等跨学科研究和应用的重要平台。
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