TY - JOUR
T1 - Branched DNA Junction-Enhanced Isothermal Circular Strand Displacement Polymerization for Intracellular Imaging of MicroRNAs
AU - Yang, Zhe
AU - Zhang, Songbai
AU - Zhao, Hui
AU - Niu, Huimin
AU - Wu, Zai Sheng
AU - Chang, Huan Tsung
N1 - Publisher Copyright:
Copyright © 2018 American Chemical Society.
PY - 2018/12/4
Y1 - 2018/12/4
N2 - The microRNA profiles within living cells are informative for diagnosis and prognosis of human cancers. In the present work, we developed a new sensing strategy based on branched DNA junction-enhanced isothermal circular strand displacement polymerization (B-ICSDP) for the detection and intracellular imaging of microRNAs in living cells of interest. A circular DNA template consisting of three repetitive fragments serves as the scaffold for the self-assembly of sophisticated signaling probes, resulting a shrunk branched DNA junction. Target microRNA triggers the opening of molecular beacon, not only restoring the quenched fluorescence but also activating a circular polymerization-based strand displacement reaction. Thus, patulous branched DNA junction is abundantly formed, generating the amplified signal. It is noteworthy that great heaps of branched product assemblies can be also achieved in living cells, and the intracellular enzymatic assembly based strategy is able to be used to recognize specific microRNA-expressed cancer cells. Moreover, different microRNAs coexisting in the same living cells can be simultaneously screened without any interference from each other by confocal laser scanning microscopy. The measured data from confocal fluorescence imaging of different cancer cells demonstrates that the B-ICSDP-based system is a promising alternative for in vivo analysis of microRNAs in complicated biological samples.
AB - The microRNA profiles within living cells are informative for diagnosis and prognosis of human cancers. In the present work, we developed a new sensing strategy based on branched DNA junction-enhanced isothermal circular strand displacement polymerization (B-ICSDP) for the detection and intracellular imaging of microRNAs in living cells of interest. A circular DNA template consisting of three repetitive fragments serves as the scaffold for the self-assembly of sophisticated signaling probes, resulting a shrunk branched DNA junction. Target microRNA triggers the opening of molecular beacon, not only restoring the quenched fluorescence but also activating a circular polymerization-based strand displacement reaction. Thus, patulous branched DNA junction is abundantly formed, generating the amplified signal. It is noteworthy that great heaps of branched product assemblies can be also achieved in living cells, and the intracellular enzymatic assembly based strategy is able to be used to recognize specific microRNA-expressed cancer cells. Moreover, different microRNAs coexisting in the same living cells can be simultaneously screened without any interference from each other by confocal laser scanning microscopy. The measured data from confocal fluorescence imaging of different cancer cells demonstrates that the B-ICSDP-based system is a promising alternative for in vivo analysis of microRNAs in complicated biological samples.
UR - https://www.scopus.com/pages/publications/85057071817
U2 - 10.1021/acs.analchem.8b03063
DO - 10.1021/acs.analchem.8b03063
M3 - 文章
C2 - 30379061
AN - SCOPUS:85057071817
SN - 0003-2700
VL - 90
SP - 13891
EP - 13899
JO - Analytical Chemistry
JF - Analytical Chemistry
IS - 23
ER -