Xu Jingyue, Guo Jiajia, Golob-Schwarzl Nicole, Haybaeck Johannes, Qiu Xue, Hildebrandt Niko
Institute for Integrative Biology of the Cell (I2BC), Université Paris-Saclay, CNRS, CEA, 91405 Orsay Cedex, France.
nanofret.com, Laboratoire Chimie Organique, Bioorganique, Réactivité et Analyse (COBRA), Université de Rouen Normandie, CNRS, INSA, 76821 Mont-Saint-Aignan Cedex, France.
ACS Sens. 2020 Jun 26;5(6):1768-1776. doi: 10.1021/acssensors.0c00432. Epub 2020 Jun 9.
Absolute quantification of microRNAs (miRNAs) or other nucleic acid biomarkers is an important requirement for molecular and clinical biosensing. Emerging technologies with beneficial features concerning simplicity and multiplexing present an attractive route for advancing diagnostic tools toward rapid and low-cost bioanalysis. However, the actual translation into the clinic by miRNA quantification in human samples is often missing. Here, we show that implementing time-gated Förster resonance energy transfer (TG-FRET) into a catalytic hairpin assembly (CHA) can be used for the simultaneous quantification of two miRNAs with a single measurement from total RNA extracts of human tissues. A single terbium-dye FRET pair was conjugated at two specific distances within target-specific CHA hairpin probes, such that each miRNA resulted in distinct amplified photoluminescence (PL) decays that could be distinguished and quantified by TG PL intensity detection. Enzyme-free amplification in a separation-free assay format and the absence of autofluorescence background allowed for simple, specific, and sensitive detection of miR-21 and miR-20a with limits of detection down to 1.8 pM (250 amol). Reliable duplexed quantification of both miRNAs at low picomolar concentrations was confirmed by analyzing total RNA extracts from different colon and rectum tissues with single- and dual-target CHA-TG-FRET and reverse transcription-quantitative polymerase chain reaction (RT-qPCR) for comparison. These simple and multiplexed nucleic acid biomarker assays present a capable method for clinical diagnostics and biomolecular research.
对微小RNA(miRNA)或其他核酸生物标志物进行绝对定量是分子和临床生物传感的一项重要要求。具有简单性和多重性等有益特性的新兴技术为推动诊断工具朝着快速、低成本生物分析方向发展提供了一条有吸引力的途径。然而,通过对人类样本中的miRNA进行定量分析来实际转化应用于临床的情况却常常缺失。在此,我们表明,将时间分辨荧光共振能量转移(TG-FRET)应用于催化发夹组装(CHA),可用于从人类组织的总RNA提取物中单次测量同时定量两种miRNA。在靶标特异性CHA发夹探针内的两个特定距离处共轭了一对单一的铽-染料FRET对,这样每种miRNA都会产生独特的放大光致发光(PL)衰减,可通过TG PL强度检测进行区分和定量。无酶扩增且采用无需分离的检测形式,以及不存在自发荧光背景,使得能够简单、特异且灵敏地检测miR-21和miR-20a,检测限低至1.8 pM(250 amol)。通过使用单靶标和双靶标CHA-TG-FRET以及逆转录定量聚合酶链反应(RT-qPCR)分析来自不同结肠和直肠组织的总RNA提取物进行比较,证实了在低皮摩尔浓度下对两种miRNA进行可靠的双工定量。这些简单且多重的核酸生物标志物检测方法为临床诊断和生物分子研究提供了一种可行的方法。