Novel fluorescence nano-orbital biosensor for highly sensitive microRNA detection

被引:5
作者
Fan, Cong [1 ]
Xie, Longjie [1 ]
Zhao, Feng [1 ,2 ,3 ]
Wang, Jingjing [1 ]
Lin, Xiandong [2 ,3 ]
Chen, Xian [1 ]
机构
[1] Fuzhou Univ, Coll Chem, 2 Xueyuan Rd, Fuzhou 350116, Peoples R China
[2] Fujian Canc Hosp, Fuzhou 350014, Peoples R China
[3] Fujian Med Univ Canc Hosp, Fuzhou 350014, Peoples R China
关键词
Exponential amplification reaction; Deoxyribozyme; Hybridization chain reaction; Nano-orbital fluorescence; Fluorescence resonance energy transfer; CHAIN-REACTION; ENZYME-FREE; IN-SITU; GENE; FABRICATION; RNA; QUANTIFICATION; AMPLIFICATION; SIGNAL;
D O I
10.1016/j.aca.2023.342172
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Background: MicroRNAs play an important role in regulating cell function and gene expression. Early prevention and clinical diagnosis of diseases have high requirements for high-sensitivity detection of microRNAs. Due to the limitations of tedious operation and large sample size, miRNA with small molecular weight and low expression abundance cannot be accurately detected in traditional miRNA detection. To improve the sensitivity and accuracy of detection, we established a novel biosensor based on nucleic acid circuit of signal amplification, which converted miRNA recognition into a fluorescence signal for amplification.Results: We designed a biosensor based on an exponential amplification reaction with cascaded HCR and DNAzyme nucleic acid circuit (named E-NOF biosensor) by amplicon sub-fragments to trigger the construction of fluorescence nano-orbitals (NOF), which could be used to detect miRNA ultrasensitively. By modifying two fluorophores (Cy3 and Cy5) on the chain of constructing nano-orbitals, when the amplicon triggered the construction of nano-orbitals, fluorescence resonance energy transfer (FRET) occurred between Cy3 and Cy5, and then two fluorescence signals with different trends could be observed. Therefore, through the ratio of the two signals, we could quantitatively and quickly detect the miRNA from 1 fM to 100 nM, and the E-NOF biosensor detection limit was as low as 0.129 fM. Furthermore, the HCR nucleic acid circuit cascaded with DNAzyme could enrich the fluorophores on the nano-orbitals and significantly enhance the fluorescence signal by accelerating the reaction rate.Significance: According to our understanding, the E-NOF biosensor is the first strategy to cascade EXPAR with HCR and DNAzyme nucleic acid circuit for miRNA-1246 detection. Accurate results can be obtained in only 120 min. Compared with the traditional HCR system, the sensitivity of the new E-NOF biosensor is increased by 1 x 109 times. Furthermore, the biosensor can also detect biomarkers in human serum samples. It has great potential in miRNA detection and identification.
引用
收藏
页数:9
相关论文
共 52 条
[1]   miRNAs: Micro managers of programmed cell death [J].
Baehrecke, EH .
CURRENT BIOLOGY, 2003, 13 (12) :R473-R475
[2]   Accurate Clinical Diagnosis of Liver Cancer Based on Simultaneous Detection of Ternary Specific Antigens by Magnetic Induced Mixing Surface-Enhanced Raman Scattering Emissions [J].
Bai, Xiang-Ru ;
Wang, Li-Hua ;
Ren, Jia-Qiang ;
Bai, Xiang-Wei ;
Zeng, Ling-Wen ;
Shen, Ai-Guo ;
Hu, Ji-Ming .
ANALYTICAL CHEMISTRY, 2019, 91 (04) :2955-2963
[3]   bantam encodes a developmentally regulated microRNA that controls cell proliferation and regulates the proapoptotic gene hid in Drosophila [J].
Brennecke, J ;
Hipfner, DR ;
Stark, A ;
Russell, RB ;
Cohen, SM .
CELL, 2003, 113 (01) :25-36
[4]   Enzyme-free, signal-amplified nucleic acid circuits for biosensing and bioimaging analysis [J].
Chen, Jiyun ;
Tang, Lijuan ;
Chu, Xia ;
Jiang, Jianhui .
ANALYST, 2017, 142 (17) :3048-3061
[5]   Switch-conversional ratiometric fluorescence biosensor for miRNA detection [J].
Chen, Xian ;
Xu, Ke ;
Li, Jing ;
Yang, Ming ;
Li, Xing ;
Chen, Qin ;
Lu, Chunhua ;
Yang, Huanghao .
BIOSENSORS & BIOELECTRONICS, 2020, 155
[6]   Construction of a Stimuli-Responsive DNAzyme-Braked DNA Nanomachine for the Amplified Imaging of miRNAs in Living Cells and Mice [J].
Chen, Yingying ;
Yan, Mingzhu ;
Wang, Yushi ;
Shang, Jinhua ;
He, Shizhen ;
Gao, Yuhui ;
Hong, Chen ;
Liu, Xiaoqing ;
Wang, Fuan .
CCS CHEMISTRY, 2023, 5 (07) :1697-1708
[7]   TRBP recruits the Dicer complex to Ago2 for microRNA processing and gene silencing [J].
Chendrimada, TP ;
Gregory, RI ;
Kumaraswamy, E ;
Norman, J ;
Cooch, N ;
Nishikura, K ;
Shiekhattar, R .
NATURE, 2005, 436 (7051) :740-744
[8]   Toehold-initiated Rolling Circle Amplification for Visualizing Individual MicroRNAs In Situ in Single Cells [J].
Deng, Ruijie ;
Tang, Longhua ;
Tian, Qianqian ;
Wang, Ying ;
Lin, Lei ;
Li, Jinghong .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2014, 53 (09) :2389-2393
[9]   The compact integration of a cascaded HCR circuit for highly reliable cancer cell discrimination [J].
Dong, Pei ;
Li, Ruomeng ;
He, Shizhen ;
Zhang, Qingqing ;
Shang, Jinhua ;
Jiang, Yuqian ;
Liu, Xiaoqing ;
Wang, Fuan .
CHEMICAL SCIENCE, 2023, 14 (08) :2159-2167
[10]   Rapid microRNA (miRNA) detection and classification via surface-enhanced Raman spectroscopy (SERS) [J].
Driskell, J. D. ;
Seto, A. G. ;
Jones, L. P. ;
Jokela, S. ;
Dluhy, R. A. ;
Zhao, Y. -P. ;
Tripp, R. A. .
BIOSENSORS & BIOELECTRONICS, 2008, 24 (04) :917-922