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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Discrimination of single nucleotide mismatches using a scalable, flexible, and transparent three-dimensional nanostructure-based plasmonic miRNA sensor with high sensitivity
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Discrimination of single nucleotide mismatches using a scalable, flexible, and transparent three-dimensional nanostructure-based plasmonic miRNA sensor with high sensitivity

机译:使用具有高灵敏度的可伸缩,柔性和透明的三维纳米结构基质MiRNA MiRNA传感器辨别单核苷酸不匹配。具有高灵敏度的

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Localized surface plasmon resonance (LSPR) biosensors have attracted much interest due to their capacity for multiplexing, miniaturization, and high performance, which offers the potential for their integration into lab-on a-chip platforms for point-of-care (POC) diagnostics. The need for microRNA (miRNA)-sensing platforms is particularly urgent because miRNAs are key regulators and biomarkers in numerous pathological processes and diseases. Unfortunately, however, development of such miRNA-sensing platforms has not yet been achieved. In order to realize the detection of these important biomarkers, there has been an increasing demand for POC-sensing platforms that enable label-free quantification with low sample consumption, good sensitivity, real-time responsiveness, and high throughput. Here, we developed a highly specific, sensitive LSPR miRNA-sensing platform on a flexible, scalable plasmonic nanostructure to enable single-base mismatch discrimination and attomole detection of miRNAs in clinically relevant samples. The hairpin probe contained a locked nucleic acid (LNA) that enabled the discrimination of single base mismatches based on differences in melting temperatures of perfectly matched or single base mismatched miRNAs when they formed base pairs with probes. In addition, through hybridization induced signal amplification based on precipitate formation on the gold surface through the enzyme reaction, we observed a dramatic LSPR peak shift, which enabled attomole detection. Additionally, our LSPR miRNA sensor enabled the detection of miR-200a-3p in total RNA extracts from primary cancer cell lines without purification or labeling of the miRNA. This label-free and highly specific miRNA sensing platform may have applications in POC cancer diagnostics without the need for gene amplification.
机译:局部表面等离子体共振(LSPR)生物传感器由于它们的复用,小型化和高性能的能力而引起了很多兴趣,这提供了它们集成到实验室的实验室平台(POC)诊断的潜力。对于MicroRNA(miRNA)-Sensing平台的需求特别紧迫,因为MiRNA是许多病理过程和疾病中的关键调节因子和生物标志物。然而,不幸的是,尚未实现这种miRNA传感平台的发展。为了实现这些重要的生物标志物的检测,对PoC传感平台的需求越来越大,可实现无标签量化,具有低样品消耗,良好的灵敏度,实时响应性和高吞吐量。在这里,我们在柔性可伸缩的等离子体纳米结构上开发了一种高度特异性,敏感的LSPR miRNA感测平台,以实现临床相关样品中MiRNA的单碱基错配鉴别和敏感术检测。发夹探针含有锁定的核酸(LNA),其基于在用探针形成碱基对时,基于完全匹​​配或单个基础错配miRNA的熔化温度的差异来实现单个基础错配。另外,通过基于通过酶反应的金表面上的沉淀形成的杂交诱导的信号扩增,我们观察到了一种巨大的LSPR峰值偏移,使能斜面检测能够。此外,我们的LSPR miRNA传感器使得在没有纯化或标记miRNA的情况下,能够检测来自原发性癌细胞系的总RNA提取物中的miR-200a-3p。这种无标记和高度特异性的miRNA传感平台可在PoC癌症诊断中具有应用,而无需基因扩增。

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