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DALIAN UNIVERSITY OF TECHNOLOGY Login 中文
常洋洋

Associate Professor
Supervisor of Master's Candidates


Gender:Female
Alma Mater:中国科学院生态环境研究中心
Degree:Doctoral Degree
School/Department:环境学院
Discipline:Environmental Science. Environmental Engineering
Business Address:环境楼B507
E-Mail:yychang@dlut.edu.cn
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Current position: Home >> Scientific Research >> Paper Publications

Probing Local Folding Allows Robust Metal Sensing Based on a Na+-Specific DNAzyme

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Indexed by:Journal Papers

Date of Publication:2019-09-02

Journal:CHEMBIOCHEM

Included Journals:SCIE

Volume:20

Issue:17

Page Number:2241-2247

ISSN No.:1439-4227

Key Words:aptamers; biosensors; DNA; fluorescence; sodium

Abstract:Fluorescent metal sensors based on DNA often rely on changes in end-to-end distance or local environmental near fluorophore labels. Because metal ions can also nonspecifically interact with DNA through various mechanisms, such as charge screening, base binding, and increase or decrease in duplex stability, robust and specific sensing of metal ions has been quite challenging. In this work, a side-by-side comparison of two signaling strategies on a Na+-specific DNAzyme that contained a Na+-binding aptamer was performed. The duplex regions of the DNAzyme was systematically shortened and its effect was studied by using a 2-aminopurine (2AP)-labeled substrate strand. Na+ binding affected the local environmental of the 2AP label and increased its fluorescence. A synergistic process of Na+ binding and forming the duplex on the 5 '-end of the enzyme strand was observed, and this end was close to the aptamer loop. Effective Na+ binding was achieved with a five base-pair stem. The effect on the 3 '-end is more continuous, and the stem needs to form first before Na+ can bind. With an optimized substrate binding arm, a FRET-based sensor has been designed by labeling the two ends of a cis form of the DNAzyme with two fluorophores. In this case, Na+ failed to show a distinct difference from that of Li+ or K+; thus indicating that probing changes to the local environment allows more robust sensing of metal ions.