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Detection of MicroRNA by Fluorescence Amplification Based on Cation-Exchange in Nanocrystals

机译:基于阳离子交换的纳米晶体荧光扩增检测微小RNA

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Small RNA molecules are effective regulators of gene expression, and the expression signature of one subgroup of small RNA, the microRNA (miRNA), has been linked to disease development and progression. Therefore, detection of small RNA in biological samples will greatly improve the understanding of their functions and render effective tools to researchers for cellular process control and disease prevention. To solve the challenges in detecting the low-abundance and short strand-length of small RNA molecules, we designed a ligation-assisted binding assay and applied the cation exchange-based fluorescence amplification (CXFluoAmp) method developed in our group for detection. Nonfluorescent, ionic nanocrystals (NCs) of CdSe were conjugated to detection probes and immobilized onto the array surface via ligation with the target small RNA, miR21, which bound to the capture probe complimentarily. Each binding event induced by one target miR21 molecule was then amplified by the release of thousands of Cd~(2+) from one NC. The free Cd~(2+) immediately turned on the fluorescence of thousands of fluorogenic Rhod-5N molecules. With such a powerful signal amplification strategy, our assay achieved a limit of detection (LOD) of 35 fM and signals were detectible with analyte concentrations spanning over 7 orders of magnitude. We also identified the differential expression of miR21 in total RNA extracts from healthy breast tissue and diseased cells. Furthermore, our detection scheme demonstrated good specificity in small RNA detection, because significant signal intensity could be observed from small RNAs with one or two nucleotides difference in sequences. Thus, our assay has great application potential for disease diagnosis relying on miRNA biomarkers, or in small RNA expression profiling for new target discovery and functional study.
机译:小RNA分子是基因表达的有效调节剂,小RNA的一个亚组microRNA(miRNA)的表达特征与疾病的发展和进展有关。因此,检测生物样品中的小RNA将大大提高对它们功能的了解,并为研究人员提供有效的工具进行细胞过程控制和疾病预防。为解决检测小RNA分子的低丰度和短链长度的挑战,我们设计了连接辅助结合测定,并应用了我们小组开发的基于阳离子交换的荧光扩增(CXFluoAmp)方法进行检测。将CdSe的非荧光离子纳米晶体(NCs)与检测探针偶联,并通过与与捕获探针互补结合的目标小RNA miR21的连接固定在阵列表面上。然后,通过从一个NC释放数千个Cd〜(2+)来扩增由一个靶标miR21分子诱导的每个结合事件。游离的Cd〜(2+)立即打开数千个荧光Rhod-5N分子的荧光。借助这种强大的信号放大策略,我们的测定达到了35 fM的检出限(LOD),并且分析物浓度超过7个数量级时可检测到信号。我们还确定了miR21在健康乳腺组织和患病细胞的总RNA提取物中的差异表达。此外,我们的检测方案在小RNA检测中显示出良好的特异性,因为可以从具有一或两个核苷酸序列差异的小RNA中观察到明显的信号强度。因此,我们的测定法依赖miRNA生物标记物或用于新靶标发现和功能研究的小RNA表达图谱在疾病诊断中具有巨大的应用潜力。

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