Chandra Barman Sharat, Sharifuzzaman Md, Zahed Md Abu, Park Chani, Yoon Sang Hyuk, Zhang Shipeng, Kim Hyunsik, Yoon Hyosang, Park Jae Yeong
Department of Electronic Engineering, Advanced Sensor & Energy Research (ASER) Lab, KwangWoon University, 447-1, Seoul, 139-701, Republic of Korea.
Department of Electronic Engineering, Advanced Sensor & Energy Research (ASER) Lab, KwangWoon University, 447-1, Seoul, 139-701, Republic of Korea.
Biosens Bioelectron. 2021 Aug 15;186:113287. doi: 10.1016/j.bios.2021.113287. Epub 2021 Apr 29.
Due to the insufficiency of binding sites for the immobilized recognition biomolecules on the immunosensing platform, cancer detection becomes challenging. Whereas, the degradation of black phosphorene (BP) in the presence of the environmental factors becomes a concerning issue for use in electrochemical sensing. In this study, BP is successfully encapsulated by polyallylamine (PAMI) to increase its stability as well as to enhance its electrochemical performance. The successful encapsulation of BP is ensured through X-ray Photoelectron spectroscopy and Raman spectroscopy, whereas the stability of black phosphorus is ensured by Zeta potential measurements and cyclic voltammetry tests. The developed BP-PAMI composite showed high stability in the ambient environment and exhibited improved electrochemical performances. The impedimetric immunosensor was developed on a BP-PAMI modified laser burned graphene (LBG) to detect interleukin-6 biomarkers using electrochemical impedance spectroscopy (EIS). Under the optimized parameters, the fabricated immunosensor demonstrated a wide linear range of 0.003-75 ng/mL, limit of detection (LOD) of 1 pg/mL. Based on the experimental analysis, the developed sensing strategy can be employed as an easy, disposable, cost-effective and highly selective point-of-care cancer detection. In addition, the developed technique can be applied broadly for detecting other biomarkers after treating with suitable biomolecules.
由于免疫传感平台上固定化识别生物分子的结合位点不足,癌症检测变得具有挑战性。然而,在环境因素存在的情况下黑磷(BP)的降解成为其用于电化学传感的一个令人担忧的问题。在本研究中,BP成功地被聚烯丙胺(PAMI)包裹,以提高其稳定性并增强其电化学性能。通过X射线光电子能谱和拉曼光谱确保了BP的成功包裹,而通过Zeta电位测量和循环伏安测试确保了黑磷的稳定性。所制备的BP-PAMI复合材料在环境中表现出高稳定性,并展现出改善的电化学性能。基于BP-PAMI修饰的激光烧蚀石墨烯(LBG)开发了阻抗免疫传感器,利用电化学阻抗谱(EIS)检测白细胞介素-6生物标志物。在优化参数下,所制备的免疫传感器显示出0.003 - 75 ng/mL的宽线性范围,检测限(LOD)为1 pg/mL。基于实验分析,所开发的传感策略可作为一种简便、一次性使用、经济高效且具有高选择性的即时癌症检测方法。此外,所开发的技术在用合适的生物分子处理后可广泛应用于检测其他生物标志物。