State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University , Nanjing 210093, People's Republic of China.
School of Chemistry and Life Science, Nanjing University Jinling College , Nanjing 210089, People's Republic of China.
Anal Chem. 2016 Nov 1;88(21):10352-10356. doi: 10.1021/acs.analchem.6b03473. Epub 2016 Oct 19.
Generally, photoanode-based photoelectrochemical immunoassay possesses obvious photocurrent response and lower detection limit for ideal sample detection, but it has the inherent imperfection of poor anti-interference capability for real sample detection. Photocathode-based immunoassay can well avoid the intrinsic drawback of photoanode-based immunoassay, but it has low photocurrent response resulting in less good sensitivity. Herein, a promising new cathode photoelectrochemical immunosensing platform integrating photocathode with photoanode was reported for accurate and sensitive detection of biomarkers. In this proposal, prostate-specific antigen (PSA, Ag) was chosen as a model of target analyte to exhibit the analytical performances of this platform. TiO/CdS:Mn hybrid structure modified indium-tin oxide (ITO) electrode served as photoanode, whereas CuInS microflowers modified ITO electrode was selected as photocathode. The transducer elements of PSA antibody (Ab) were modified on photocathode to fabricate a label-free cathode immunosensing electrode. The proposed immunosensing platform possesses two distinct advantages simultaneously. First, it has good anti-interference capability for the detection of real biological samples, since the biorecognition events occurred on photocathode. Second, the photoelectrochemical system owns evident photocurrent response and low detection limit for target Ag detection thanks to the introduction of the photoanode. Moreover, the proposed immunosensing platform also exhibits good specificity, reproducibility, and stability, and meanwhile it opens up a new horizon to construct other kinds of photoelectrochemical biosensors.
一般来说,基于光阳极的光电化学免疫分析具有明显的光电流响应和更低的检测限,适用于理想样本的检测,但它存在固有缺陷,即对实际样本的检测抗干扰能力差。基于光阴极的免疫分析可以很好地避免基于光阳极的免疫分析的固有缺点,但它的光电流响应较低,导致灵敏度较差。本文报道了一种将光阴极与光阳极集成的新型阴极光电化学免疫传感平台,用于生物标志物的准确和灵敏检测。在该方案中,选择前列腺特异性抗原(PSA,Ag)作为目标分析物的模型,以展示该平台的分析性能。TiO/CdS:Mn 杂化结构修饰的氧化铟锡(ITO)电极作为光阳极,而 CuInS 微花修饰的 ITO 电极则被选为光阴极。将 PSA 抗体(Ab)的换能元件修饰在光阴极上,以制备无标记的阴极免疫传感电极。所提出的免疫传感平台同时具有两个显著优势。首先,由于生物识别事件发生在光阴极上,因此它对实际生物样本的检测具有良好的抗干扰能力。其次,由于引入了光阳极,光电化学系统对目标 Ag 的检测具有明显的光电流响应和低检测限。此外,所提出的免疫传感平台还表现出良好的特异性、重现性和稳定性,同时为构建其他类型的光电化学生物传感器开辟了新的前景。