Nanobioelectronics & Biosensors Group, Institut Català de Nanociència i Nanotecnologia (ICN2), CSIC and the Barcelona Institute of Science and Technology (BIST), Campus UAB, Bellaterra, 08193, Barcelona, Spain; Max Planck Tandem Group in Nanobioengineering, Institute of Chemistry, Faculty of Natural and Exact Sciences, University of Antioquia, Complejo Ruta N, Calle 67 N° 52-20, 050010, Medellín, Colombia.
Nanobioelectronics & Biosensors Group, Institut Català de Nanociència i Nanotecnologia (ICN2), CSIC and the Barcelona Institute of Science and Technology (BIST), Campus UAB, Bellaterra, 08193, Barcelona, Spain; Universitat Autònoma de Barcelona (UAB), Bellaterra, 08193, Barcelona, Spain.
Biosens Bioelectron. 2024 May 15;252:116142. doi: 10.1016/j.bios.2024.116142. Epub 2024 Feb 20.
Nanostructured electrochemical biosensors have ushered in a new era of diagnostic precision, offering enhanced sensitivity and specificity for clinical biomarker detection. Among them, capacitive biosensing enables ultrasensitive label-free detection of multiple molecular targets. However, the complexity and cost associated with conventional fabrication methods of nanostructured platforms hinder the widespread adoption of these devices. This study introduces a capacitive biosensor that leverages laser-engraved reduced graphene oxide (rGO) electrodes decorated with gold nanoparticles (AuNPs). The fabrication involves laser-scribed GO-Au films, yielding rGO-AuNP electrodes, seamlessly transferred onto a PET substrate via a press-stamping methodology. These electrodes have a remarkable affinity for biomolecular recognition after being functionalized with specific bioreceptors. For example, initial studies with human IgG antibodies confirm the detection capabilities of the biosensor using electrochemical capacitance spectroscopy. Furthermore, the biosensor can quantify CA-19-9 glycoprotein, a clinical cancer biomarker. The biosensor exhibits a dynamic range from 0 to 300 U mL, with a limit of detection of 8.9 U mL. Rigorous testing with known concentrations of a pretreated CA-19-9 antigen from human fluids confirmed their accuracy and reliability in detecting the glycoprotein. This study signifies notable progress in capacitive biosensing for clinical biomarkers, potentially leading to more accessible and cost-effective point-of-care solutions.
纳米结构电化学生物传感器开创了诊断精度的新时代,为临床生物标志物检测提供了更高的灵敏度和特异性。其中,电容式生物传感能够实现对多个分子靶标的超灵敏无标记检测。然而,传统纳米结构平台制造方法的复杂性和成本阻碍了这些设备的广泛采用。本研究介绍了一种基于激光刻蚀还原氧化石墨烯(rGO)电极上修饰金纳米粒子(AuNPs)的电容生物传感器。该传感器的制备涉及激光刻蚀 GO-Au 薄膜,从而得到 rGO-AuNP 电极,然后通过压印技术将其无缝转移到 PET 基底上。这些电极在经过特定生物受体功能化后,对生物分子识别具有显著的亲和力。例如,对人 IgG 抗体的初步研究证实了该生物传感器使用电化学电容光谱法进行检测的能力。此外,该生物传感器还可以定量检测 CA-19-9 糖蛋白这一临床癌症生物标志物。该生物传感器的动态范围为 0 至 300 U mL,检测限为 8.9 U mL。用预处理的来自人体液的已知浓度的 CA-19-9 抗原进行严格测试,证实了它们在检测糖蛋白方面的准确性和可靠性。本研究在临床生物标志物的电容式生物传感方面取得了显著进展,有望实现更便捷、更经济实惠的即时检测解决方案。