微尺度化学
纳米技术
DNA
背景(考古学)
微流控
凝聚
DNA纳米技术
自愈水凝胶
材料科学
计算机科学
生物系统
化学
生物
古生物学
高分子化学
数学教育
生物化学
数学
作者
Hirotake Udono,Jing Gong,Yusuke Sato,Masahiro Takinoue
标识
DOI:10.1002/adbi.202200180
摘要
Abstract Breathtaking advances in DNA nanotechnology have established DNA as a promising biomaterial for the fabrication of programmable higher‐order nano/microstructures. In the context of developing artificial cells and tissues, DNA droplets have emerged as a powerful platform for creating intelligent, dynamic cell‐like machinery. DNA droplets are a microscale membrane‐free coacervate of DNA formed through phase separation. This new type of DNA system couples dynamic fluid‐like property with long‐established DNA programmability. This hybrid nature offers an advantageous route to facile and robust control over the structures, functions, and behaviors of DNA droplets. This review begins by describing programmable DNA condensation, commenting on the physical properties and fabrication strategies of DNA hydrogels and droplets. By presenting an overview of the development pathways leading to DNA droplets, it is shown that DNA technology has evolved from static, rigid systems to soft, dynamic systems. Next, the basic characteristics of DNA droplets are described as intelligent, dynamic fluid by showcasing the latest examples highlighting their distinctive features related to sequence‐specific interactions and programmable mechanical properties. Finally, this review discusses the potential and challenges of numerical modeling able to connect a robust link between individual sequences and macroscopic mechanical properties of DNA droplets.
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