Ratiometric Detection of microRNA Using Hybridization Chain Reaction and Fluorogenic Silver Nanoclusters

被引:3
作者
Wong, Zheng Wei [1 ]
Ng, Jeck Fei [2 ]
New, Siu Yee [1 ]
机构
[1] Univ Nottingham Malaysia, Sch Pharm, Fac Sci & Engn, Semenyih 43500, Selangor Darul, Malaysia
[2] Taylors Univ, Sch Pharm, Fac Hlth & Med Sci, 1 Jalan Taylors, Subang Jaya 47500, Selangor Darul, Malaysia
关键词
miRNA; hybridization chain reaction; silver nanoclusters; fluorescence; ratiometric; LABEL-FREE; SIGNAL AMPLIFICATION; POTENTIAL BIOMARKER; SERUM MICRORNA-155; ENZYME-FREE; DNA; FLUORESCENCE; DIAGNOSIS; PROGNOSIS; GRAPHENE;
D O I
10.1002/asia.202101145
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
miRNA (miR)-155 is a potential biomarker for breast cancers. We aimed at developing a nanosensor for miR-155 detection by integrating hybridization chain reaction (HCR) and silver nanoclusters (AgNCs). HCR serves as an enzyme-free and isothermal amplification method, whereas AgNCs provide a built-in fluorogenic detection probe that could simplify the downstream analysis. The two components were integrated by adding a nucleation sequence of AgNCs to the hairpin of HCR. The working principle was based on the influence of microenvironment towards the hosted AgNCs, whereby unfolding of hairpin upon HCR has manipulated the distance between the hosted AgNCs and cytosine-rich toehold region of hairpin. As such, the dominant emission of AgNCs changed from red to yellow in the absence and presence of miR-155, enabling a ratiometric measurement of miR with high sensitivity. The limit of detection (LOD) of our HCR-AgNCs nanosensor is 1.13 fM in buffered solution. We have also tested the assay in diluted serum samples, with comparable LOD of 1.58 fM obtained. This shows the great promise of our HCR-AgNCs nanosensor for clinical application.
引用
收藏
页码:4081 / 4086
页数:6
相关论文
共 77 条
[1]  
[Anonymous], 2011, ANGEW CHEM-GER EDIT, V123, P421
[2]   Optimization of transesterification process parameters of castor oil ethanolysis using response surface methodology-based genetic algorithm [J].
Arumugam, S. ;
Sriram, G. ;
Rajmohan, T. ;
Sivakumar, K. .
ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2016, 38 (02) :300-308
[3]   Chemical and Biological Sensing Using Hybridization Chain Reaction [J].
Augspurger, Erik E. ;
Rana, Muhit ;
Yigit, Mehmet V. .
ACS SENSORS, 2018, 3 (05) :878-902
[4]   Quantitative Analysis of MicroRNA Content by Fluorescence Imaging in Cancer Cells Using Dual-color Fluorescence Nanosensor [J].
Bai, Cuiting ;
Yue, Renye ;
Luo, Liegao ;
Ma, Nan .
CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2020, 41 (06) :1252-1261
[5]   Hybridization chain reaction: a versatile molecular tool for biosensing, bioimaging, and biomedicine [J].
Bi, Sai ;
Yue, Shuzhen ;
Zhang, Shusheng .
CHEMICAL SOCIETY REVIEWS, 2017, 46 (14) :4281-4298
[6]   Serum microRNAs as non-invasive biomarkers for cancer [J].
Brase, Jan C. ;
Wuttig, Daniela ;
Kuner, Ruprecht ;
Sueltmann, Holger .
MOLECULAR CANCER, 2010, 9
[7]  
Brunetti, 2015, PHARM ANAL ACTA, V6
[8]   Coupling a DNA-ligand ensemble with Ag cluster formation for the label-free and ratiometric detection of intracellular biothiols [J].
Cao, Fangfang ;
Ju, Enguo ;
Liu, Chaoqun ;
Pu, Fang ;
Ren, Jinsong ;
Qu, Xiaogang .
CHEMICAL COMMUNICATIONS, 2016, 52 (29) :5167-5170
[9]   Ligation-triggered fluorescent silver nanoclusters system for the detection of nicotinamide adenine dinucleotide [J].
Cao, Zhijuan ;
Wang, Pei ;
Qiu, Xue ;
Lau, Choiwan ;
Lu, Jianzhong .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2014, 406 (07) :1895-1902
[10]   Recent Progress in DNA Hybridization Chain Reaction Strategies for Amplified Biosensing [J].
Chai, Hua ;
Cheng, Wenbo ;
Jin, Dayong ;
Miao, Peng .
ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (33) :38931-38946