纳米技术
DNA纳米技术
合成生物学
生物材料
聚合物
超分子化学
材料科学
计算机科学
DNA
生化工程
化学
工程类
计算生物学
分子
生物
复合材料
生物化学
有机化学
作者
Sarah K. Speed,Krishna Gupta,Yu‐Hsuan Peng,Syuan‐Ku Hsiao,Elisha Krieg
摘要
Abstract Over the past century, synthetic polymers have had a transformative impact on human life, replacing nature‐derived materials in many areas. Yet, despite their many advantages, the structure and function of synthetic polymers still appear rudimentary compared to biological matter: cells use dynamic self‐assembly to construct complex materials and operate sophisticated macromolecular devices. The field of DNA nanotechnology has demonstrated that synthetic DNA molecules can be programmed to undergo predictable self‐assembly, offering unparalleled control over the formation and dynamic properties of artificial nanostructures. Intriguingly, the principles of DNA nanotechnology can be applied to the engineering of soft programmable materials, bringing the abilities of synthetic polymers closer to their biological counterparts. In this perspective, we discuss the unique features of DNA‐functionalized polymer materials. We describe design principles that allow researchers to build complex supramolecular architectures with predictable and dynamically adjustable material properties. Finally, we highlight two key application areas where this biologically inspired material class offers particularly promising opportunities: (1) as dynamic matrices for 3D cell and organoid culture and (2) as smart materials for nucleic acid sequencing and pathogen detection.
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