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Femtomole Detection of Proteins Using a Label-Free Nanostructured Porous Silicon Interferometer for Perspective Ultrasensitive Biosensing

机译:使用无标记纳米结构多孔硅干涉仪对蛋白质进行飞沫检测,用于透视超灵敏生物传感

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Nanostructured porous silicon (PS) is a promising material for label-free optical detection of biomolecules, though it currently suffers of limited clinical diagnostic applications due to insufficient sensitivity. In this regard, here we introduce an ultrasensitive and robust signal processing strategy for PS biosensors that relies on the calculation of the average value over wavelength of spectral interferograms, namely IAW, obtained on PS interferometer by subtraction (wavelength by wavelength) of reflection spectra acquired after adsorption of biomolecules inside the nanopores from a reference reflection spectrum recorded in acetate buffer. As a case study, we choose to monitor bovine serum albumin (BSA) unspecific adsorption, which has been often employed in the literature as a model for proof-of-concept studies of perspective biosensing applications. The proposed IAW signal processing strategy enables reliable detection of BSA at concentrations in the range from 150 pM to 15 mu M (down to 3 orders of magnitude lower than those targeted in the current literature) using a PS interferometer operating in label-free mode without any amplification strategies, with good sample-to-sample reproducibility over the whole range of tested concentrations (%CV = 16% over 5 replicates) and good signal-to-noise ratio also at the lowest tested concentration (S/N approximate to 4.6 at 150 pM). A detection limit (DL) of 20 pM (20 femtomoles, 1 mL) is estimated from the sigmoidal function best fitting (R-2 = 0.989) JAW experimental data over the whole range of tested concentrations. This is the lowest DL that has been reported in the literature since the seminal paper of Sailor and co-workers (1997) on the use of PS interferometer for biosensing, and lowers of 4 orders of magnitude DL attained with label-free PS interferometers using conventional effective optical thickness (EOT) calculation through reflective interferometric Fourier transform spectroscopy. Accordingly, the IAW signal processing strategy envisage bringing PS optical transduction at the forefront of ultrasensitive label-free biosensing techniques, especially for point-of-care clinical analysis where low analyte concentrations have to be detected in a small amount of biological samples.
机译:纳米结构多孔硅(PS)是一种用于生物分子的无标记光学检测的有前途的材料,尽管由于灵敏度不足,目前它在临床诊断中的应用受到限制。在这方面,我们在此介绍一种用于PS生物传感器的超灵敏,鲁棒的信号处理策略,该策略依赖于对PS干涉仪上所获得的反射光谱进行减法运算(波长逐波长)而获得的光谱干涉图的整个波长(即IAW)的平均值的计算。根据乙酸盐缓冲液中记录的参考反射光谱,将生物分子吸附到纳米孔内。作为案例研究,我们选择监测牛血清白蛋白(BSA)的非特异性吸附,这种吸附在文献中经常被用作透视生物传感应用概念验证研究的模型。拟议的IAW信号处理策略能够使用无标签模式下运行的PS干涉仪可靠地检测浓度范围为150 pM至15μM(比当前文献中的目标值低3个数量级)的BSA。任何扩增策略,在整个测试浓度范围内均具有良好的样品间重现性(5次重复中%CV = 16%),并且在最低测试浓度下(S / N约4.6,也具有良好的信噪比) 150 pM)。根据S形函数最佳拟合(R-2 = 0.989)JAW实验数据,在整个测试浓度范围内,估计检出限(DL)为20 pM(20飞摩尔,1 mL)。这是自Sailor和同事(1997年)发表关于使用PS干涉仪进行生物传感的开创性文献以来文献报道的最低DL,而使用无标记PS干涉仪使用时,DL降低了4个数量级DL传统的有效光学厚度(EOT)通过反射干涉傅里叶变换光谱法进行计算。因此,IAW信号处理策略设想将PS光学转导带到超灵敏的无标记生物传感技术的最前沿,尤其是对于在少量生物样品中必须检测到低分析物浓度的即时护理临床分析而言。

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