Park Yoo Min, Ahn Junhyoung, Choi Young Sun, Jeong Jae-Min, Lee Seok Jae, Lee Jae Jong, Choi Bong Gill, Lee Kyoung G
Division of Nano-Bio Sensor/Chip Development, National NanoFab Center (NNFC), Daejeon, 34141, Republic of Korea.
Department of Nano Manufacturing Technology, Nano-Convergence Mechanical Systems Research Division, Korea Institute of Machinery & Materials (KIMM), Daejeon, 34103, Republic of Korea.
Nano Converg. 2020 Sep 1;7(1):29. doi: 10.1186/s40580-020-00239-2.
The noninvasive early detection of biomarkers for Alzheimer's disease (AD) is essential for the development of specific treatment strategies. This paper proposes an advanced method for fabricating highly ordered and flexible nanopillar-based electrochemical biosensors by the combination of soft/photolithography and metal evaporation. The nanopillar array (NPA) exhibits high surface area containing 1500 nm height and 500 nm diameter with 3:1 ratio. In regard with physical properties of polyurethane (PU) substrate, the developed NPA is sustainable and durable to external pressure such as bending and twisting. To manipulate the NPA surface to biocompatible, the gold was uniformly deposited on the PU substrate. The thiol chemistry which is stably modified on the gold surface as a form of self-assembled monolayer was employed for fabricating the NPA as a biocompatible chip by covalently immobilize the antibodies. The proposed nanopillar-based immunoelectrochemical biosensor exhibited good and stable electrochemical performance in β-amyloid (Aβ) detection. Moreover, we successfully confirmed the performance of the as-developed sensor using the artificial injection of Aβ in human tear, with sensitivity of 0.14 ng/mL and high reproducibility (as a standard deviation below 10%). Our findings show that the developed nanopillar-based sensor exhibits reliable electrochemical characteristics and prove its potential for application as a biosensor platform for testing at the point of care.
阿尔茨海默病(AD)生物标志物的无创早期检测对于制定特定治疗策略至关重要。本文提出了一种先进的方法,通过软光刻/光刻与金属蒸发相结合来制造高度有序且灵活的基于纳米柱的电化学生物传感器。纳米柱阵列(NPA)具有高表面积,高度为1500 nm,直径为500 nm,长宽比为3:1。考虑到聚氨酯(PU)基底的物理性质,所开发的NPA对诸如弯曲和扭转等外部压力具有可持续性和耐用性。为了使NPA表面具有生物相容性,在PU基底上均匀沉积金。作为自组装单分子层形式稳定修饰在金表面的硫醇化学用于通过共价固定抗体将NPA制造为生物相容性芯片。所提出的基于纳米柱的免疫电化学生物传感器在β-淀粉样蛋白(Aβ)检测中表现出良好且稳定的电化学性能。此外,我们通过在人泪液中人工注射Aβ成功证实了所开发传感器的性能,灵敏度为0.14 ng/mL,重现性高(标准偏差低于10%)。我们的研究结果表明,所开发的基于纳米柱的传感器具有可靠的电化学特性,并证明了其作为即时检测生物传感器平台的应用潜力。