Lee Hyewon, Shapiro Sarah J, Chapin Stephen C, Doyle Patrick S
Department of Chemical Engineering, Massachusetts Institute of Technology , Cambridge, Massachusetts 02139, United States.
Synthetic Biology & Bioengineering Research Center, Korea Research Institute of Bioscience & Biotechnology (KRIBB) , Daejeon 34141, South Korea.
Anal Chem. 2016 Mar 15;88(6):3075-81. doi: 10.1021/acs.analchem.5b03902. Epub 2016 Feb 22.
In recent years, microRNAs (miRNAs) have emerged as promising diagnostic markers because of their unique dysregulation patterns under various disease conditions and high stability in biological fluids. However, current methods of analyzing miRNA levels typically require RNA isolation, which is cumbersome and time-consuming. To achieve high-throughput and accurate miRNA profiling, this study eliminates the need for purification steps by detecting miRNA directly from raw cellular lysate using nonfouling polyethylene glycol microparticles. In contrast to recent studies on direct miRNA measurements from cell lysate, our hydrogel-based system provides high-confidence quantification with robust performance. The lysis buffer for the assay was optimized to maximize reaction and labeling efficiency, and this assay has a low limit of detection (<1000 cells) without target amplification. Additionally, the capability for multiplexing was demonstrated through analyzing the levels of three endogenous miRNAs in 3T3 cell lysate. This versatile platform holds great potential for rapid and reliable direct miRNA quantification in complex media, and can be further extended to single-cell analysis by exploiting the flexibility and scalability of our system.
近年来,微小RNA(miRNA)因其在各种疾病状态下独特的失调模式以及在生物体液中的高稳定性,已成为颇具前景的诊断标志物。然而,当前分析miRNA水平的方法通常需要进行RNA分离,这既繁琐又耗时。为了实现高通量且准确的miRNA分析,本研究通过使用防污聚乙二醇微粒直接从原始细胞裂解物中检测miRNA,从而无需进行纯化步骤。与近期关于直接从细胞裂解物中测量miRNA的研究不同,我们基于水凝胶的系统具有强大的性能,能提供高可信度的定量分析。用于该检测的裂解缓冲液经过优化,以最大化反应和标记效率,并且该检测方法在无需靶标扩增的情况下具有较低的检测限(<1000个细胞)。此外,通过分析3T3细胞裂解物中三种内源性miRNA的水平,证明了该方法的多重检测能力。这个多功能平台在复杂介质中快速、可靠地直接定量miRNA方面具有巨大潜力,并且通过利用我们系统的灵活性和可扩展性,还可进一步扩展到单细胞分析。