Aydın Elif Burcu, Aydın Muhammet, Yuzer Abdulcelil, Ince Mine, Ocakoğlu Kasim, Sezgintürk Mustafa Kemal
Scientific and Technological Research Center, Tekirdağ Namık Kemal University, Tekirdağ 59030, Turkey.
Department of Natural and Mathematical Sciences, Faculty of Engineering, Tarsus University, Mersin 33400, Turkey.
ACS Biomater Sci Eng. 2021 Mar 8;7(3):1192-1201. doi: 10.1021/acsbiomaterials.0c01602. Epub 2021 Feb 14.
A new impedimetric biosensing system based on kallikrein-related peptidase 4 (KLK 4) antigen-specific antibodies and a zinc(II) phthalocyanine tetracarboxylic acid (Zn-PcTCa) matrix material was developed for the first time in this study. First, a Zn-PcTCa-coated indium tin oxide surface was used as an interface matrix material for the immobilization of anti-KLK 4 antibodies, and they bound to the platform via amide bonds. In the presence of KLK 4 antigens, the anti-KLK 4 antibodies specifically captured these antigens and caused changes in the electrochemical properties of the system. Randles equivalent circuit was utilized to evaluate the impedimetric signal, which was measured with the help of an electrochemical impedance spectroscopy method. After the specific interaction, the electron transfer resistance () was remarkably increased and displayed a linear relationship with the level of the KLK 4 antigen in the range of 0.02-15 pg/mL, with a a detection limit of 6.8 fg/mL. The designed biosensor was able to detect a KLK 4 antigen with good sensitivity, excellent specificity, and high stability. In addition, because of having a low-cost and robust procedure for fabrication, it could be repeatedly used in several areas including clinical diagnosis.
本研究首次开发了一种基于激肽释放酶相关肽酶4(KLK 4)抗原特异性抗体和锌(II)酞菁四羧酸(Zn-PcTCa)基质材料的新型阻抗生物传感系统。首先,将涂有Zn-PcTCa的氧化铟锡表面用作固定抗KLK 4抗体的界面基质材料,它们通过酰胺键与平台结合。在存在KLK 4抗原的情况下,抗KLK 4抗体特异性捕获这些抗原,并导致系统电化学性质发生变化。利用兰德尔等效电路评估阻抗信号,该信号借助电化学阻抗谱方法进行测量。特异性相互作用后,电子转移电阻()显著增加,并且在0.02-15 pg/mL范围内与KLK 4抗原水平呈线性关系,检测限为6.8 fg/mL。所设计的生物传感器能够以良好的灵敏度、出色的特异性和高稳定性检测KLK 4抗原。此外,由于具有低成本且稳健的制造工艺,它可在包括临床诊断在内的多个领域重复使用。