Catalan Institute of Nanoscience and Nanotechnology (ICN2), Edifici ICN2, Campus UAB, 08193, Bellaterra, Barcelona, Spain.
Catalan Institute of Nanoscience and Nanotechnology (ICN2), Edifici ICN2, Campus UAB, 08193, Bellaterra, Barcelona, Spain; University of Trieste, Department of Chemical and Pharmaceutical Sciences, Via Giorgieri 1, Italy.
Biosens Bioelectron. 2022 Jan 15;196:113737. doi: 10.1016/j.bios.2021.113737. Epub 2021 Oct 29.
Simplicity is one of the key feature for the spread of any successful technological product. Here, a method for rapid and low-cost fabrication of electrochemical biosensors is presented. This "plug, print & play" method involves inkjet-printing even in an office-like environment, without the need of highly specialized expertise or equipment, guaranteeing an ultra-fast idea to (scaled) prototype production time. The printed biosensors can be connected to a smartphone through its audio input for their impedance readout, demonstrating the validity of the system for point-of-care biosensing. Proper electrodes layout guarantees high sensitivity and is validated by finite element simulations. The introduction of a passivation method (wax printing) allowed to complete the devices fabrication process, increasing their sensitivity. Indeed, the wax allowed reducing the interference related to the parasitic currents flowing through the permeable coating of the employed substrates, which was used for the chemical sintering, thus avoiding the common thermal treatment after printing. As a case study, we used the devices to develop an electrochemical aptamer-based sensor for the rapid detection of neutrophil gelatinase-associated lipocalin (NGAL) in urine - a clinically important marker of acute kidney injury. The aptasensor platform is capable of detecting clinically relevant concentrations of NGAL with a simple and rapid smartphone readout. The developed technology may be extended in the future to continuous monitoring, taking advantage of its flexibility to integrate it in tubes, or to other diagnostic applications where cost/efficiency and rapidity of the research, development and implementation of point of care devices is a must.
简单性是任何成功技术产品传播的关键特征之一。在这里,提出了一种用于快速且低成本制造电化学生物传感器的方法。这种“即插即用”的方法涉及喷墨打印,甚至可以在类似于办公室的环境中进行,而无需高度专业化的专业知识或设备,从而保证了从创意到(规模化)原型生产的超快时间。打印的生物传感器可以通过智能手机的音频输入进行阻抗读数,从而证明了该系统用于即时生物传感的有效性。适当的电极布局可确保高灵敏度,并通过有限元模拟进行验证。引入了一种钝化方法(蜡印)来完成器件的制造过程,从而提高了其灵敏度。实际上,蜡的使用减少了与通过所使用基底的可渗透涂层流动的寄生电流相关的干扰,这是用于化学烧结的,从而避免了打印后的常见热处理。作为案例研究,我们使用该设备开发了一种基于电化学适体的传感器,用于快速检测尿液中的中性粒细胞明胶酶相关脂质运载蛋白(NGAL)-这是急性肾损伤的临床重要标志物。该适体传感器平台能够以简单快速的智能手机读数检测到临床相关浓度的 NGAL。未来,该技术可能会扩展到连续监测领域,利用其灵活性将其集成到管中,或者应用于其他诊断应用,在这些应用中,研究、开发和实施即时医疗设备的成本/效率和快速性至关重要。