单宁酸
材料科学
自愈水凝胶
DNA
共价键
磷酸二酯键
多酚
反平行(数学)
胶粘剂
纳米技术
生物化学
高分子化学
有机化学
图层(电子)
磁场
物理
基因
化学
核糖核酸
量子力学
抗氧化剂
作者
Mikyung Shin,Ji Hyun Ryu,Joseph P. Park,Keumyeon Kim,Jae Wook Yang,Haeshin Lee
标识
DOI:10.1002/adfm.201403992
摘要
DNA has emerged as a novel material in many areas of materials science due to its programmability. Especially, DNA hydrogels have been studied to incorporate new functions into gels. To date, only a few methods have been developed for fabricating DNA hydrogels, such as the use of complementary sequences or covalent bond. Herein, it is demonstrated that one of the most well‐known plant‐derived polyphenols, tannic acid (TA), can form a DNA hydrogel which is named TNA hydrogel ( T A + D NA ). TA plays a role as a “molecular glue” by a new mode of action reversibly connecting between phosphodiester bonds, which is different from the crosslinking utilizing complementary sequences. TA intrinsically degrades due to ester bonds connecting between pyrogallol groups, causing a degradable DNA hydrogel. Furthermore, TNA gel is multifunctional in that the gel is extensible upon pulling and adhesive to tissues because of the rich polyphenol groups in TA (ten phenols per TA). Unexpectedly, TNA gel exhibits superior in vivo hemostatic ability that can be useful for biomedical applications. This new DNA hydrogel preparation method represents a new technique for fabricating a large amount of DNA‐based hemostatic hydrogel without chemically modifying DNA or requiring the crosslinking by complementary sequences.
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