strand displacement reaction
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RSC Advances ◽  
2022 ◽  
Vol 12 (1) ◽  
pp. 338-345
Author(s):  
Cuicui Xing ◽  
Xuedong Zheng ◽  
Qiang Zhang

Preemptor blocks the strand displacement reaction by acting on DNA complex, not by directly hybridizing with the worker.


2022 ◽  
Author(s):  
Yan Zhang ◽  
Xue-Ke Du ◽  
Xianwei Su ◽  
Xiaoran Zou ◽  
Chun-Yang Zhang

We design a mismatched fluorescent probe to directly monitor the long noncoding RNA (lncRNA) in living cells. The introduction of mismatched bases in the fluorescent probe greatly enhances the strand...


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Qiu-Long Zhang ◽  
Liang-Liang Wang ◽  
Yan Liu ◽  
Jiao Lin ◽  
Liang Xu

AbstractLigand-oligonucleotide transduction provides the critical pathway to integrate non-nucleic acid molecules into nucleic acid circuits and nanomachines for a variety of strand-displacement related applications. Herein, a general platform is constructed to convert the signals of ligands into desired oligonucleotides through a precise kinetic control. In this design, the ligand-aptamer binding sequence with an engineered duplex stem is introduced between the toehold and displacement domains of the invading strand to regulate the strand-displacement reaction. Employing this platform, we achieve efficient transduction of both small molecules and proteins orthogonally, and more importantly, establish logical and cascading operations between different ligands for versatile transduction. Besides, this platform is capable of being directly coupled with the signal amplification systems to further enhance the transduction performance. This kinetically controlled platform presents unique features with designing simplicity and flexibility, expandable complexity and system compatibility, which may pave a broad road towards nucleic acid-based developments of sophisticated transduction networks.


2021 ◽  
pp. 338927
Author(s):  
Hanxiao Wang ◽  
Chi Zhang ◽  
Xinan An ◽  
Gaiping Li ◽  
Baoxian Ye ◽  
...  

2021 ◽  
Vol 16 (6) ◽  
pp. 974-977
Author(s):  
Jingjing Ma

In this paper, I construct an XOR logic gate based on DNA strand displacement reaction, and verify our design through corresponding biochemical experiment. I designed several different DNA strands. Based on two basic DNA strand displacement reaction mechanisms, by adding different input strands and taking the signal of FAM fluorescent group as the output, the XOR logic gate is realized. The result shows that DNA strand displacement technology has important application value in DNA computing, especially in the construction of DNA molecular logic gates.


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