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Hairpin DNA-Assisted Silicon/Silver-Based Surface-Enhanced Raman Scattering Sensing Platform for Ultrahighly Sensitive and Specific Discrimination of Deafness Mutations in a Real System

机译:发夹DNA辅助的基于硅/银的表面增强拉曼散射传感平台,用于在真实系统中对耳聋突变进行超高灵敏度和特异性判别

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摘要

Surface-enhanced Raman scattering (SERS) is well-recognized as a powerful analytical tool for ultrahighly sensitive detection of analytes. In this article, we present a kind of silicon-based SERS sensing platform made of a hairpin DNA-modified silver nanoparticles decorated silicon wafer (AgNPs@Si). In particular, the AgNPs@Si with a high enhancement factor (EF) value of ~4.5 × 10~7 is first achieved under optimum reaction conditions (i.e., pH = 12, reaction time = 20 min) based on systematic investigation. Such resultant AgNPs@Si is then employed for construction of a silicon-based SERS sensing platform through surface modification of hairpin DNA, which is superbly suitable for highly reproducible, multiplexed, and ultrasensitive DNA detection. A detection limit of 1 fM is readily achieved in a very reproducible manner along with high specificity. Most significantly, for the first time, we demonstrate that the silicon-based SERS platform is highly efficacious for discriminating deafness-causing mutations in a real system at the femtomolar level (500 fM), which is about 3-4 orders of magnitude lower than that (~5 nM) ever reported by conventional detection methods. Our results raise the exciting potential of practical SERS applications in biology and biomedicine.
机译:表面增强拉曼散射(SERS)被公认为是用于超高灵敏度分析物检测的强大分析工具。在本文中,我们介绍了一种由发夹式DNA修饰的银纳米颗粒装饰的硅晶片(AgNPs @ Si)构成的基于硅的SERS传感平台。特别地,基于系统研究,首先在最佳反应条件下(pH = 12,反应时间= 20分钟)获得了高增强因子(EF)值为〜4.5×10〜7的AgNPs @ Si。然后,通过对发夹DNA进行表面修饰,将这样得到的AgNPs @ Si用于基于硅的SERS传感平台的构建,这非常适合于高度可重复,多重和超灵敏的DNA检测。 1 fM的检测极限很容易以高度可重复的方式实现,并且具有很高的特异性。最重要的是,我们首次证明了基于硅的SERS平台对于在飞摩尔级(500 fM)的真实系统中辨别失聪引起的突变非常有效,该突变比耳聋的水平低约3-4个数量级。常规检测方法曾报道过(〜5 nM)。我们的结果提高了SERS在生物学和生物医学中的实际应用潜力。

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