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Molecular architectonics of DNA for functional nanoarchitectures

机译:用于功能纳米体系结构的DNA分子建筑学

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摘要

DNA is the key biomolecule central to almost all processes in living organisms. The eccentric idea of utilizing DNA as a material building block in molecular and structural engineering led to the creation of numerous molecular-assembly systems and materials at the nanoscale. The molecular structure of DNA is believed to have evolved over billions of years, with structure and stability optimizations that allow life forms to sustain through the storage and transmission of genetic information with fidelity. The nanoscale structural characteristics of DNA (2 nm thickness and ca. 40–50 nm persistence length) have inspired the creation of numerous functional patterns and architectures through noncovalent conventional and unconventional base pairings as well as through mutual templating-interactions with small organic molecules and metal ions. The recent advancements in structural DNA nanotechnology allowed researchers to design new DNA-based functional materials with chemical and biological properties distinct from their parent components. The modulation of structural and functional properties of hybrid DNA ensembles of small functional molecules (SFMs) and short oligonucleotides by adapting the principles of molecular architectonics enabled the creation of novel DNA nanoarchitectures with potential applications, which has been termed as templated DNA nanotechnology or functional DNA nanoarchitectonics. This review highlights the molecular architectonics-guided design principles and applications of the derived DNA nanoarchitectures. The advantages and ability of functional DNA nanoarchitectonics to overcome the trivial drawbacks of classical DNA nanotechnology to fulfill realistic and practical applications are highlighted, and an outlook on future developments is presented.
机译:DNA是生物体内几乎所有过程的关键生物分子。利用DNA作为分子和结构工程中的材料构建块的古怪想法导致在纳米级创建了许多分子组装系统和材料。人们相信DNA的分子结构已经发展了数十亿年,其结构和稳定性的优化使生命形式能够通过保真地保存和传递遗传信息而得以维持。 DNA的纳米级结构特征(2 nm厚度和约40–50 nm持久长度)通过非共价的常规和非常规碱基配对以及与小有机分子的相互模板相互作用,激发了许多功能模式和体系结构的创建。金属离子。结构DNA纳米技术的最新进展使研究人员能够设计新的基于DNA的功能材料,其化学和生物学特性不同于其母体成分。通过适应分子建筑学原理,对小功能分子(SFM)和短寡核苷酸的杂交DNA集合体的结构和功能特性的调节,使得具有潜在应用的新型DNA纳米体系结构的创建成为可能,被称为模板化DNA纳米技术或功能性DNA纳米建筑学。这篇综述重点介绍了分子建筑学指导的设计原理和衍生DNA纳米架构的应用。着重介绍了功能性DNA纳米建筑技术克服传统DNA纳米技术的琐碎缺点以实现现实和实际应用的优势和能力,并提出了未来的发展前景。

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