Na Hee-Kyung, Shon Hyun Kyong, Son Hye Young, Jang Eunji, Joh Sunho, Huh Yong-Min, Castner David G, Lee Tae Geol
Center for Nano-Bio Measurement, Korea Research Institute of Standards and Science (KRISS), Daejeon 34113, Korea.
Department of Radiology, College of Medicine, Yonsei University, Seoul 03722, Korea.
Sens Actuators B Chem. 2021 Apr 1;332. doi: 10.1016/j.snb.2021.129452. Epub 2021 Jan 15.
MicroRNAs (miRNAs) are important post-transcriptional gene regulators and can serve as potential biomarkers for many diseases. Most of the current miRNA detection techniques require purification from biological samples, amplification, labeling, or tagging, which makes quantitative analysis of clinically relevant samples challenging. Here we present a new strategy for the detection of miRNAs with uniformity over a large area based on signal amplification using enzymatic reactions and measurements using time-of-flight secondary ion mass spectrometry (ToF-SIMS), a sensitive surface analysis tool. This technique has high sequence specificity through hybridization with a hairpin DNA probe and allows the identification of single-base mismatches that are difficult to distinguish by conventional mass spectrometry. We successfully detected target miRNAs in biological samples without purification, amplification, or labeling of target molecules. In addition, by adopting a well-known chromogenic enzymatic reaction from the field of biotechnology, we extended the use of enzyme-amplified signal enhancement ToF (EASE-ToF) to protein detection. Our strategy has advantages with respect to scope, quantification, and throughput over the currently available methods, and is amenable to multiplexing based on the outstanding molecular specificity of mass spectrometry (MS). Therefore, our technique not only has the potential for use in clinical diagnosis, but also provides evidence that MS can serve as a useful readout for biosensing to perform multiplexed analysis extending beyond the limitations of existing technology.
微小RNA(miRNA)是重要的转录后基因调节因子,可作为多种疾病的潜在生物标志物。目前大多数miRNA检测技术需要从生物样品中进行纯化、扩增、标记或加标签,这使得对临床相关样品进行定量分析具有挑战性。在此,我们提出了一种基于酶促反应信号放大和飞行时间二次离子质谱(ToF-SIMS,一种灵敏的表面分析工具)测量的大面积均匀检测miRNA的新策略。该技术通过与发夹DNA探针杂交具有高序列特异性,并能够识别传统质谱难以区分的单碱基错配。我们成功地在未对目标分子进行纯化、扩增或标记的生物样品中检测到了目标miRNA。此外,通过采用生物技术领域一种著名的显色酶促反应,我们将酶促放大信号增强ToF(EASE-ToF)扩展到了蛋白质检测。我们的策略在检测范围、定量和通量方面相对于现有方法具有优势,并且基于质谱(MS)出色的分子特异性适用于多重分析。因此,我们的技术不仅具有用于临床诊断的潜力,还提供了证据表明MS可作为生物传感的有用读出方式,以进行超越现有技术局限的多重分析。