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Initiator-catalyzed self-assembly of duplex-looped DNA hairpin motif based on strand displacement reaction for logic operations and amplified biosensing

文献类型: 外文期刊

作者: Bi, Sai 1 ; Yue, Shuzhen 1 ; Wu, Qiang 2 ; Ye, Jiayan 3 ;

作者机构: 1.Qingdao Univ, Collaborat Innovat Ctr Marine Biomass Fiber Mat &, Shandong Sino Japanese Ctr Collaborat Res Carbon, Lab Fiber Mat & Modern Text,Growing Base State Ke, Qingdao 266071, Peoples R China

2.Chinese Acad Fishery Sci, Shandong Prov Key Lab Fishery Resources & Ecoenvi, Key Lab Sustainable Dev Marine Fisheries, Minist Agr,Yellow Sea Fisheries Res Inst, Qingdao 266071, Peoples R China

3.Qingdao Univ Sci & Technol, Coll Chem & Mol Engn, Minist Educ, Key Lab Sensor Anal Tumor Marker, Qingdao 266042, Peoples R China

关键词: Biosensor; Catalytic self-assembly; Keypad lock; Logic gates; Strand displacement

期刊名称:BIOSENSORS & BIOELECTRONICS ( 影响因子:10.618; 五年影响因子:9.323 )

ISSN: 0956-5663

年卷期: 2016 年 83 卷

页码:

收录情况: SCI

摘要: Here we program an initiator-catalyzed self-assembly of duplex-looped DNA hairpin motif based on strand displacement reaction. Due to the recycling of initiator and performance in a cascade manner, this system is versatilely extended to logic operations, including the construction of concatenated logic circuits with a feedback function and a biocomputing keypad-lock security system. Compared with previously reported molecular security systems, the prominent feature of our keypad lock is that it can be spontaneously reset and recycled with no need of any external stimulus and human intervention. Moreover, through integrating with an isothermal amplification technique of rolling circle amplification (RCA), this programming catalytic DNA self-assembly strategy readily achieves sensitive and selective biosensing of initiator. Importantly, a magnetic graphene oxide (MGO) is introduced to remarkably reduced background, which plays an important role in enhancing the signal-to-noise ratio and improving the detection sensitivity. Therefore, the proposed sophisticated DNA strand displacement-based methodology with engineering dynamic functions may find broad applications in the construction of programming DNA nanostructures, amplification biosensing platform, and large-scale DNA circuits. (C) 2016 Elsevier B.V. All rights reserved.

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