Tuteja Satish K, Ormsby Connor, Neethirajan Suresh
BioNano Lab, School of Engineering, University of Guelph, Guelph, ON, N1G 2W1, Canada.
Nanomicro Lett. 2018;10(3):41. doi: 10.1007/s40820-018-0193-5. Epub 2018 Mar 2.
A sensitive and specific immunosensor for the detection of the hormones cortisol and lactate in human or animal biological fluids, such as sweat and saliva, was devised using the label-free electrochemical chronoamperometric technique. By using these fluids instead of blood, the biosensor becomes noninvasive and is less stressful to the end user, who may be a small child or a farm animal. Electroreduced graphene oxide (e-RGO) was used as a synergistic platform for signal amplification and template for bioconjugation for the sensing mechanism on a screen-printed electrode. The cortisol and lactate antibodies were bioconjugated to the e-RGO using covalent carbodiimide chemistry. Label-free electrochemical chronoamperometric detection was used to analyze the response to the desired biomolecules over the wide detection range. A detection limit of 0.1 ng mL for cortisol and 0.1 mM for lactate was established and a correlation between concentration and current was observed. A portable, handheld potentiostat assembled with Bluetooth communication and battery operation enables the developed system for point-of-care applications. A sandwich-like structure containing the sensing mechanisms as a prototype was designed to secure the biosensor to skin and use capillary action to draw sweat or other fluids toward the sensing mechanism. Overall, the immunosensor shows remarkable specificity, sensitivity as well as the noninvasive and point-of-care capabilities and allows the biosensor to be used as a versatile sensing platform in both developed and developing countries.
采用无标记电化学计时电流法技术,设计了一种用于检测人或动物生物体液(如汗液和唾液)中皮质醇和乳酸等激素的灵敏且特异的免疫传感器。通过使用这些体液而非血液,该生物传感器变得无创,且对最终用户(可能是小孩或农场动物)的压力较小。电还原氧化石墨烯(e-RGO)被用作信号放大的协同平台以及生物共轭的模板,用于丝网印刷电极上的传感机制。利用共价碳二亚胺化学方法将皮质醇和乳酸抗体与e-RGO进行生物共轭。采用无标记电化学计时电流法检测,以分析在宽检测范围内对所需生物分子的响应。确定了皮质醇的检测限为0.1 ng/mL,乳酸的检测限为0.1 mM,并观察到浓度与电流之间的相关性。一个组装有蓝牙通信和电池操作的便携式手持式恒电位仪使所开发的系统能够用于即时检测应用。设计了一种包含传感机制的三明治状结构作为原型,以将生物传感器固定在皮肤上,并利用毛细作用将汗液或其他体液引向传感机制。总体而言,该免疫传感器具有显著的特异性、灵敏度以及无创和即时检测能力,并且使该生物传感器能够在发达国家和发展中国家用作通用的传感平台。