Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education, Key Laboratory of Analytical Chemistry for Life Science of Shaanxi Province, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an 710062, Shaanxi Province, P. R. China.
Analyst. 2017 Aug 7;142(16):2967-2973. doi: 10.1039/c7an00989e.
A versatile flow cytometric bead assay (FCBA) coupled with a completely enzyme-free signal amplification mechanism is developed for the sensitive detection of microRNAs (miRNAs). This new strategy integrates click chemistry-mediated ligation chain reaction (CLCR) with hybridization chain reaction (HCR) for enzyme-free signal amplification on magnetic beads (MBs), and a flow cytometer for the robust fluorescence readout of the MBs. Firstly, target miRNA can initiate CLCR on the surface of MBs based on the click chemical ligation between dibenzocyclooctyne (DBCO)- and azide-modified single-stranded DNA (ssDNA) probes, and the amount of ligated ssDNA sequences on the MBs will be proportional to the dosage of target miRNA. Afterward, each of the ligated ssDNA products can trigger a cascade chain reaction of hybridization events between two alternating fluorophore-tagged hairpin probes, resulting in another signal amplification pathway with an amplified accumulation of fluorophores on the MBs. Finally, the fluorophore-anchored MBs are directly and rapidly analyzed by using a flow cytometer without any separation or elution processes. Herein, the click nucleic acid ligation only occurs on the surface of MBs, so the nonspecific ligations are greatly inhibited compared with that of ligation reaction performed in homogeneous solution. Furthermore, the signal amplification by CLCR-HCR is highly efficient but totally enzyme-free, which may overcome the potential drawbacks of conventional enzyme-catalyzed signal amplification protocols and lead to a high sensitivity. The CLCR-HCR-based FCBA has pushed the detection limit of let-7a miRNA down to the femtomolar (fM) level, showing great potential in miRNA-related biological studies and disease diagnosis.
一种多功能的流式细胞术磁珠分析(FCBA)与完全无酶的信号放大机制相结合,用于灵敏检测 microRNA(miRNA)。该新策略将点击化学介导的连接链反应(CLCR)与杂交链式反应(HCR)集成在磁珠(MB)上进行无酶信号放大,并使用流式细胞仪对 MB 的荧光进行稳健读取。首先,目标 miRNA 可以在 MB 表面基于 DBCO-和叠氮化物修饰的单链 DNA(ssDNA)探针之间的点击化学连接启动 CLCR,并且 MB 上连接的 ssDNA 序列的数量与目标 miRNA 的剂量成正比。之后,每个连接的 ssDNA 产物都可以触发两个交替荧光标记发夹探针之间的杂交事件级联反应,从而在 MB 上实现另一种信号放大途径,荧光的累积得到放大。最后,无需任何分离或洗脱过程,将荧光标记的 MBs 直接且快速地用流式细胞仪进行分析。在此,点击核酸连接仅发生在 MB 的表面,因此与均相溶液中进行的连接反应相比,非特异性连接大大受到抑制。此外,CLCR-HCR 的信号放大非常高效,但完全无酶,这可能克服传统酶催化信号放大方案的潜在缺点,并实现高灵敏度。基于 CLCR-HCR 的 FCBA 将 let-7a miRNA 的检测限推至飞摩尔(fM)水平,在 miRNA 相关的生物学研究和疾病诊断中具有巨大潜力。