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DNA hybridization measurement by self-sensing piezoresistive microcantilevers in CMOS biosensor

机译:CMOS生物传感器中通过自感应压阻微悬臂梁进行DNA杂交测量

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Understanding the mechanism of how biological reactions produce mechanical loadings is fundamental to biomedical developments. A CMOS biosensor chip is developed to measure in situ the induced surface stress change by DNA hybridization. For 20-mer thiol-modified single stranded DNA (ssDNA), the mechanism of ssDNA attached to gold surface via a sulfur-gold linkage can be investigated by using the Langmuir adsorption model. Experimental results indicate that the immobilization response is less than 1 s, the total number of ssDNA molecules on the cantilever is about 3 × 10~(11), and the induced surface stress is 0.15 N/m. The surface stress sensitivity of the sensor is about 3.5 × 10~(-5) m/N. The estimated adsorption rate of the ssDNA is 0.005 s~(-1). The biosensor is capable of discriminating complimentary molecular targets and thus may provide a powerful platform for high throughput real-time analysis of DNA.
机译:了解生物反应如何产生机械负荷的机理是生物医学发展的基础。开发了CMOS生物传感器芯片以通过DNA杂交原位测量诱导的表面应力变化。对于20-mer巯基修饰的单链DNA(ssDNA),可以使用Langmuir吸附模型研究ssDNA通过硫-金键连接到金表面的机理。实验结果表明,固定化反应小于1 s,悬臂上的ssDNA分子总数约为3×10〜(11),诱导表面应力为0.15 N / m。传感器的表面应力灵敏度约为3.5×10〜(-5)m / N。估计的ssDNA吸附率为0.005 s〜(-1)。生物传感器能够区分互补的分子靶标,因此可以为DNA的高通量实时分析提供强大的平台。

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