College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University , Qingdao 266109, People's Republic of China.
Anal Chem. 2017 Feb 7;89(3):2163-2169. doi: 10.1021/acs.analchem.6b05109. Epub 2017 Jan 26.
Herein, we reported a novel ultrasensitive one-compartment enzyme biofuel cells (EBFCs)-based self-powered aptasensing platform for antibiotic residue detection. By taking full advantage of the unique features of both EBFCs-based self-powered sensors and aptamers, the as-proposed aptasensing platform has the merits of simple instrumentation, anti-interference ability, high selectivity, and low cost. In this study, DNA bioconjugate, i.e., SiO@gold nanoparticles-complementary strand of aptamer (SiO@AuNPs-csDNA), was elaborately designed and played a key role in blocking the mass transport of glucose to the bioanode. While in the presence of the target antibiotic, SiO@AuNPs-csDNA bioconjugate broke away from the bioanode due to the aptamer recognition of the target. Without the blocking of glucose by the DNA bioconjugate, a significantly elevated open circuit voltage of the EBFCs-based aptasensor was obtained, whose amplitude was dependent on the antibiotic concentration. In addition, this proposed aptasensor was the first reported self-powered aptasensing platform for antibiotic determination and featured high sensitivity owing to the elaborate design of the DNA bioconjugate modified bioanode of EBFC, which was superior to those previously reported in the literature. Furthermore, due to the anti-interference ability and the excellent selectivity of the aptasensor, no special sample pretreatment was needed for the detection of antibiotics in milk samples. Therefore, the proposed EBFCs-based self-powered aptasensor has a great promise to be applied as a powerful tool for on-site assay in the field of food safety.
在此,我们报道了一种新颖的基于单室酶生物燃料电池 (EBFC) 的自供电适体传感平台,用于检测抗生素残留。通过充分利用 EBFC 自供电传感器和适体的独特特性,所提出的适体传感平台具有仪器简单、抗干扰能力强、选择性高、成本低等优点。在本研究中,精心设计了 DNA 生物缀合物,即 SiO@金纳米粒子-适体互补链(SiO@AuNPs-csDNA),在阻止葡萄糖向生物阳极的质量传输方面发挥了关键作用。而在存在目标抗生素的情况下,SiO@AuNPs-csDNA 生物缀合物由于适体对目标的识别而从生物阳极上脱离。没有 DNA 生物缀合物对葡萄糖的阻断,基于 EBFC 的适体传感器的开路电压显著升高,其幅度取决于抗生素浓度。此外,由于 DNA 生物缀合物修饰的 EBFC 生物阳极的精心设计,该适体传感器是第一个用于抗生素测定的自供电适体传感平台,具有高灵敏度,优于文献中报道的那些。此外,由于适体传感器具有抗干扰能力和出色的选择性,因此无需对牛奶样品中的抗生素进行特殊的样品预处理即可进行检测。因此,所提出的基于 EBFC 的自供电适体传感器有望成为食品安全领域现场分析的有力工具。