TY - JOUR
T1 - An Artificial Intelligent Signal Amplification System for in vivo Detection of miRNA
AU - Ma, Xibo
AU - Chen, Lei
AU - Yang, Yingcheng
AU - Zhang, Weiqi
AU - Wang, Peixia
AU - Zhang, Kun
AU - Zheng, Bo
AU - Zhu, Lin
AU - Sun, Zheng
AU - Zhang, Shuai
AU - Guo, Yingkun
AU - Liang, Minmin
AU - Wang, Hongyang
AU - Tian, Jie
N1 - Publisher Copyright:
© Copyright © 2019 Ma, Chen, Yang, Zhang, Wang, Zhang, Zheng, Zhu, Sun, Zhang, Guo, Liang, Wang and Tian.
PY - 2019/11/21
Y1 - 2019/11/21
N2 - MicroRNAs (miRNA) have been identified as oncogenic drivers and tumor suppressors in every major cancer type. In this work, we design an artificial intelligent signal amplification (AISA) system including double-stranded SQ (S, signal strand; Q, quencher strand) and FP (F, fuel strand; P, protect strand) according to thermodynamics principle for sensitive detection of miRNA in vitro and in vivo. In this AISA system for miRNA detection, strand S carries a quenched imaging marker inside the SQ. Target miRNA is constantly replaced by a reaction intermediate and circulatively participates in the reaction, similar to enzyme. Therefore, abundant fluorescent substances from S and SP are dissociated from excessive SQ for in vitro and in vivo visualization. The versatility and feasibility for disease diagnosis using this system were demonstrated by constructing two types of AISA system to detect Hsa-miR-484 and Hsa-miR-100, respectively. The minimum target concentration detected by the system in vitro (10 min after mixing) was 1/10th that of the control group. The precancerous lesions of liver cancer were diagnosed, and the detection accuracy were larger than 94% both in terms of location and concentration. The ability to establish this design framework for AISA system with high specificity provides a new way to monitor tumor progression and to assess therapeutic responses.
AB - MicroRNAs (miRNA) have been identified as oncogenic drivers and tumor suppressors in every major cancer type. In this work, we design an artificial intelligent signal amplification (AISA) system including double-stranded SQ (S, signal strand; Q, quencher strand) and FP (F, fuel strand; P, protect strand) according to thermodynamics principle for sensitive detection of miRNA in vitro and in vivo. In this AISA system for miRNA detection, strand S carries a quenched imaging marker inside the SQ. Target miRNA is constantly replaced by a reaction intermediate and circulatively participates in the reaction, similar to enzyme. Therefore, abundant fluorescent substances from S and SP are dissociated from excessive SQ for in vitro and in vivo visualization. The versatility and feasibility for disease diagnosis using this system were demonstrated by constructing two types of AISA system to detect Hsa-miR-484 and Hsa-miR-100, respectively. The minimum target concentration detected by the system in vitro (10 min after mixing) was 1/10th that of the control group. The precancerous lesions of liver cancer were diagnosed, and the detection accuracy were larger than 94% both in terms of location and concentration. The ability to establish this design framework for AISA system with high specificity provides a new way to monitor tumor progression and to assess therapeutic responses.
KW - an artificial intelligent signal amplification system
KW - early diagnosis of precancerous lesions
KW - fluorescent molecular tomography
KW - in vivo detection of non-coding RNA
KW - stem cell tracing
UR - http://www.scopus.com/inward/record.url?scp=85076676880&partnerID=8YFLogxK
U2 - 10.3389/fbioe.2019.00330
DO - 10.3389/fbioe.2019.00330
M3 - Article
AN - SCOPUS:85076676880
SN - 2296-4185
VL - 7
JO - Frontiers in Bioengineering and Biotechnology
JF - Frontiers in Bioengineering and Biotechnology
M1 - 330
ER -