School of Electronic and Electrical Engineering, Sungkyunkwan University, Suwon, Gyeonggi 16419, South Korea.
School of Electronic and Electrical Engineering, Sungkyunkwan University, Suwon, Gyeonggi 16419, South Korea.
Biosens Bioelectron. 2017 Jul 15;93:220-225. doi: 10.1016/j.bios.2016.08.115. Epub 2016 Sep 4.
Rapid and reliable molecular analysis of DNA for disease diagnosis is highly sought-after. FET-based sensors fulfill the demands of future point-of-care devices due to its sensitive charge sensing and possibility of integration with electronic instruments. However, most of the FETs are unstable in aqueous conditions, less sensitive and requires conventional Ag/AgCl electrode for gating. In this work, we propose a solution-gated graphene FET (SG-FET) for real-time monitoring of microscale loop-mediated isothermal amplification of DNA. The SG-FET was fabricated effortlessly with graphene as an active layer, on-chip co-planar electrodes, and polydimethylsiloxane-based microfluidic reservoir. A linear response of about 0.23V/pH was seen when the buffers from pH 5-9 were analyzed on the SG-FET. To evaluate the performance of SG-FET, we monitored the amplification of Lambda phage gene as a proof-of-concept. During amplification, protons are released, which gradually alters the Dirac point voltage (V) of SG-FET. The resulting device was highly sensitive with a femto-level limit of detection. The SG-FET could easily produce a positive signal within 16.5min of amplification. An amplification of 10ng/μl DNA for 1h produced a ∆V of 0.27V. The sensor was tested within a range of 2×10 copies/μl (10 fg/μl) to 2×10 copies/μl (10ng/μl) of target DNA. Development of this sensing technology could significantly lower the time, cost, and complications of DNA detection.
快速可靠的 DNA 分子分析对于疾病诊断至关重要。基于场效应晶体管 (FET) 的传感器由于其灵敏的电荷感应能力以及与电子仪器集成的可能性,满足了未来即时检测设备的需求。然而,大多数 FET 在水相中不稳定,灵敏度较低,并且需要传统的 Ag/AgCl 电极进行门控。在这项工作中,我们提出了一种溶液门控石墨烯场效应晶体管 (SG-FET),用于实时监测微尺度环介导等温扩增的 DNA。该 SG-FET 采用石墨烯作为有源层,片上共面电极和基于聚二甲基硅氧烷的微流控储液器,轻松制造。当在 SG-FET 上分析 pH 值为 5-9 的缓冲液时,观察到约 0.23V/pH 的线性响应。为了评估 SG-FET 的性能,我们以 Lambda 噬菌体基因为例进行了扩增监测。在扩增过程中,会释放质子,这会逐渐改变 SG-FET 的狄拉克点电压 (V)。结果表明,该器件具有高灵敏度,检测限低至飞伏级。在扩增 16.5 分钟内,SG-FET 很容易产生正信号。在 1 小时内,10ng/μl DNA 的扩增产生了 0.27V 的 ∆V。该传感器在 2×10 拷贝/μl(10 fg/μl)至 2×10 拷贝/μl(10ng/μl)的目标 DNA 范围内进行了测试。这种传感技术的发展可以显著降低 DNA 检测的时间、成本和复杂性。