Li Wei, Hou Ting, Wu Min, Li Feng
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, China.
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, China.
Talanta. 2016;148:116-21. doi: 10.1016/j.talanta.2015.10.078. Epub 2015 Oct 27.
MicroRNAs (miRNAs) play an important role in many biological processes, and have been regarded as potential targets and biomarkers in cancer diagnosis and therapy. Also, to meet the big challenge imposed by the characteristics of miRNAs, such as small size and vulnerability to enzymatic digestion, it is of great importance to develop accurate, sensitive and simple miRNA assays. Herein, we developed a label-free fluorescence strategy for sensitive miRNA detection by combining isothermal exponential amplification and the unique features of SYBR Green I (SG) and graphene oxide (GO), in which SG gives significantly enhanced fluorescence upon intercalation into double-stranded DNAs (dsDNAs), and GO selectively adsorbs miRNA, single-stranded DNA and SG, to protect miRNA from enzymatic digestion, and to quench the fluorescence of the adsorbed SG. In the presence of the target miRNA, the ingeniously designed hairpin probe (HP) is unfolded and the subsequent polymerization and strand displacement reaction takes place to initiate the target recycling process. The newly formed dsDNAs are then recognized and cleaved by the nicking enzyme, generating new DNA triggers with the same sequence as the target miRNA, which hybridize with intact HPs to initiate new extension reactions. As a result, the circular exponential amplification for target miRNA is achieved and large amount of dsDNAs are formed to generate significantly enhanced fluorescence upon the intercalation of SG. Thus sensitive and selective fluorescence miRNA detection is realized, and the detection limit of 3 fM is obtained. Besides, this method exhibits additional advantages of simplicity and low cost, since expensive and tedious labeling process is avoided. Therefore, the as-proposed label-free fluorescence strategy has great potential in the applications in miRNA-related clinical practices and biochemical researches.
微小RNA(miRNA)在许多生物学过程中发挥着重要作用,并且已被视为癌症诊断和治疗中的潜在靶点及生物标志物。此外,鉴于miRNA具有诸如体积小和易受酶消化等特点带来的巨大挑战,开发准确、灵敏且简便的miRNA检测方法至关重要。在此,我们通过结合等温指数扩增以及SYBR Green I(SG)和氧化石墨烯(GO)的独特特性,开发了一种用于灵敏检测miRNA的无标记荧光策略。其中,SG嵌入双链DNA(dsDNA)时荧光会显著增强,而GO可选择性吸附miRNA、单链DNA和SG,以保护miRNA不被酶消化,并淬灭吸附的SG的荧光。在存在靶标miRNA的情况下,精心设计的发夹探针(HP)展开,随后发生聚合和链置换反应以启动靶标循环过程。新形成的dsDNA随后被切口酶识别并切割,产生与靶标miRNA序列相同的新DNA触发物,其与完整的HP杂交以启动新的延伸反应。结果,实现了靶标miRNA的循环指数扩增,并形成大量dsDNA,在SG嵌入时产生显著增强的荧光。从而实现了灵敏且选择性的荧光miRNA检测,并获得了3 fM的检测限。此外,该方法具有简单和低成本的额外优势,因为避免了昂贵且繁琐的标记过程。因此,所提出的无标记荧光策略在与miRNA相关的临床实践和生化研究应用中具有巨大潜力。