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基于钼二硫化物场效应晶体管生物传感器,通过采用吗啉代寡核苷酸作为探针,实现了对 DNA 的超灵敏检测。

Molybdenum disulfide field-effect transistor biosensor for ultrasensitive detection of DNA by employing morpholino as probe.

机构信息

School of Laboratory Medicine, Hubei University of Chinese Medicine, 1 Huangjia Lake West Road, Wuhan 430065, PR China.

Teaching and Research Office of Forensic Medicine, Hubei University of Chinese Medicine, 1 Huangjia Lake West Road, Wuhan 430065, PR China.

出版信息

Biosens Bioelectron. 2018 Jul 1;110:71-77. doi: 10.1016/j.bios.2018.03.043. Epub 2018 Mar 20.

Abstract

This work reports on a molybdenum disulfide (MoS) based field-effect transistor (FET) biosensor for ultrasensitive label-free detection of DNA via phosphorodiamidate morpholino oligos (PMO)-DNA hybridization. After the chip was fabricated and the sensing channel was modified with positive charges, the negatively charged MoS nanosheet was drop-casted onto the channel, enabling MoS to tightly bind to the sensing surface via electrostatic interactions. Meanwhile, DNA analogue, PMO, was immobilized on the MoS surface, and detection of PMO-DNA hybridization was conducted by the fabricated MoS FET biosensor. Due to the neutral character and high affinity of PMO, a limit of detection (LOD) down to 6 fM was obtained, which is lower than that of the previously reported MoS FET DNA biosensor based on DNA-DNA hybridization. In addition, the MoS FET biosensor also showed high sequence specificity capable of distinguishing the complementary DNA from one-base mismatched DNA, three-base mismatched DNA and noncomplementary DNA. Moreover, the unique FET biosensor was able to detect DNA in complex sample like serum, making the method potential in disease diagnostics.

摘要

这项工作报道了一种基于二硫化钼 (MoS) 的场效应晶体管 (FET) 生物传感器,用于通过磷酰二氨基甲酯吗啉寡核苷酸 (PMO)-DNA 杂交超灵敏、无标记检测 DNA。在芯片制造完成并对传感通道进行正电荷修饰后,将带负电荷的 MoS 纳米片滴铸到通道上,使 MoS 通过静电相互作用紧密结合到传感表面上。同时,将 DNA 类似物 PMO 固定在 MoS 表面上,并通过所制造的 MoS FET 生物传感器进行 PMO-DNA 杂交检测。由于 PMO 的中性特征和高亲和力,获得了低至 6 fM 的检测限 (LOD),低于先前报道的基于 DNA-DNA 杂交的 MoS FET DNA 生物传感器的检测限。此外,MoS FET 生物传感器还表现出高序列特异性,能够区分互补 DNA、单碱基错配 DNA、三碱基错配 DNA和非互补 DNA。此外,这种独特的 FET 生物传感器能够检测血清等复杂样本中的 DNA,使得该方法在疾病诊断中有很大的应用潜力。

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