Department of Mechanical Engineering, Columbia University, New York, NY 10027, USA.
Nanoscale. 2018 Nov 29;10(46):21681-21688. doi: 10.1039/c8nr04315a.
We present an approach for the label-free detection of cytokine biomarkers using an aptamer-functionalized, graphene-based field effect transistor (GFET) nanosensor on a flexible, SiO2-coated substrate of the polymer polyethylene naphthalate (PEN). The nanosensor conforms to the underlying nonplanar surface and performs GFET-based rapid transduction of the aptamer-biomarker binding, thereby potentially allowing the detection of cytokine biomarkers that are sampled reliably from human bodily fluids (e.g., sweat) in wearable sensing applications. In characterizing the suitability of the nanosensor for wearable applications, we investigate the effects of substrate bending on the equilibrium dissociation constant between the aptamer and the biomarker as well as the graphene transconductance. The utility of the nanosensor is demonstrated by the detection of tumor necrosis factor-α (TNF-α), an inflammatory cytokine biomarker. Experimental results show that the flexible nanosensor can specifically respond to changes in the TNF-α concentration within 5 minutes with a limit of detection as low as 26 pM in a repeatable manner.
我们提出了一种使用适配体功能化的基于石墨烯的场效应晶体管(GFET)纳米传感器在柔性、SiO2 涂层的聚萘二甲酸乙二醇酯(PEN)聚合物衬底上进行无标记细胞因子生物标志物检测的方法。该纳米传感器与底层非平面表面贴合,并基于 GFET 快速转换适配体-生物标志物结合,从而有可能实现从人体体液(例如汗液)中可靠采样的细胞因子生物标志物的检测,适用于可穿戴传感应用。在表征纳米传感器在可穿戴应用中的适用性时,我们研究了衬底弯曲对适配体和生物标志物之间的平衡解离常数以及石墨烯跨导的影响。通过检测肿瘤坏死因子-α(TNF-α),一种炎症细胞因子生物标志物,证明了纳米传感器的实用性。实验结果表明,这种灵活的纳米传感器可以在 5 分钟内特异性地响应 TNF-α浓度的变化,在重复性方面,检测限低至 26 pM。