Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education), College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, 430072, PR China.
Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education), College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, 430072, PR China.
Biosens Bioelectron. 2019 Sep 15;141:111443. doi: 10.1016/j.bios.2019.111443. Epub 2019 Jun 19.
A novel label-free photocathodic immunosensor was constructed by introducing a direct Z-scheme I-BiOCl/CdS cathodic material as highly effective photocatalyst for the selective detection of carcino embryonic antigen (CEA). The Z-scheme photocatalyst could promote the separation of photogenerated carriers and showed a more negative conduction band potential. In addition, the I-BiOCl with abundant oxygen vacancies could activate electron acceptors (i.e. O and HO) and made them reduce more completely, thus the sensitivity of the photocathodic immunosensor was significantly improved. Afterward, CEA antibody (Ab) was employed for the selective recognition of CEA target, which was covalently bonded to the substrate material. The formation of immune complexes hindered the diffusion of electron acceptors, thus the photocurrent decreased. Under the optimized conditions, the photocathodic immunosensor displayed abroad linear range (0.01-40.0 ng/mL) and a low detection limit (0.002 ng/mL) for CEA detection. Furthermore, acceptable reproducibility, excellent selectivity and high anti-interference ability were achieved. This work provides a new horizon for the design and development of Z-scheme cathodic materials as photoactive material for photocathodic biosensing.
一种新型的无标记光阴极免疫传感器通过引入直接 Z 型 I-BiOCl/CdS 阴极材料作为高效光催化剂,用于选择性检测癌胚抗原 (CEA)。Z 型光催化剂可以促进光生载流子的分离,并表现出更负的导带电位。此外,具有丰富氧空位的 I-BiOCl 可以激活电子受体(即 O 和 HO),使它们更完全地还原,从而显著提高光阴极免疫传感器的灵敏度。随后,CEA 抗体 (Ab) 用于 CEA 靶标的选择性识别,该抗体与基底材料共价结合。免疫复合物的形成阻碍了电子受体的扩散,从而导致光电流降低。在优化条件下,光阴极免疫传感器对 CEA 的检测表现出较宽的线性范围(0.01-40.0ng/mL)和较低的检测限(0.002ng/mL)。此外,还实现了可接受的重现性、优异的选择性和高抗干扰能力。这项工作为设计和开发 Z 型阴极材料作为光活性材料用于光阴极生物传感提供了新的思路。