Romano Flavio, Sciortino Francesco
Physical and Theoretical Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford OX1 3QZ, United Kingdom.
Sapienza-Università di Roma, Piazzale A. Moro 5, 00185 Roma, Italy.
Phys Rev Lett. 2015 Feb 20;114(7):078104. doi: 10.1103/PhysRevLett.114.078104. Epub 2015 Feb 19.
We design an all-DNA system that behaves like vitrimers, innovative plastics with self-healing and stress-releasing properties. The DNA sequences are engineered to self-assemble first into tetra- and bifunctional units which, upon further cooling, bind to each other forming a fully bonded network gel. An innovative design of the binding regions of the DNA sequences, exploiting a double toehold-mediated strand displacement, generates a network gel which is able to reshuffle its bonds, retaining at all times full bonding. As in vitrimers, the rate of bond switching can be controlled via a thermally activated catalyst, which in the present design is very short DNA strands.
我们设计了一种全DNA系统,其行为类似于热致液晶聚合物,即具有自我修复和应力释放特性的新型塑料。DNA序列经过工程设计,首先自组装成四功能和双功能单元,在进一步冷却时,这些单元相互结合形成一个完全键合的网络凝胶。DNA序列结合区域的创新设计利用双toehold介导的链置换,生成了一种能够重新排列其键的网络凝胶,始终保持完全键合。与热致液晶聚合物一样,键切换速率可以通过热活化催化剂来控制,在本设计中,热活化催化剂是非常短的DNA链。