Zhu Qian, Liu Lanhua, Wang Ruoyu, Zhou Xiaohong
State Key Joint Laboratory of ESPC, School of Environment, Tsinghua University, Beijing, 100084, China.
State Key Joint Laboratory of ESPC, School of Environment, Tsinghua University, Beijing, 100084, China; National Engineering Laboratory for Advanced Technology and Equipment of Water Environment Pollution Monitoring, Changsha, 410205, China.
J Hazard Mater. 2021 Feb 5;403:123941. doi: 10.1016/j.jhazmat.2020.123941. Epub 2020 Sep 13.
As antibiotic pollution is gaining prominence as a global issue, the demand for detection of streptomycin (STR), which is a widely used antibiotic with potential human health and ecological risks, has attracted increasing attention. Aptamer-based biosensors have been developed for the detection of STR in buffers and samples, however, the non-target signals due to the conformational variation of free aptamers possibly affect their sensitivity and stability. In this study, by introducing the STR-specific split aptamer (SPA), a sensitive evanescent wave fluorescent (EWF) biosensor is developed for the sandwich-type based detection of STR. The standard calibration curve obtained for STR has a detection limit of 33 nM with a linear range of 60-526 nM. This biosensor exhibited good selectivity, reliable reusability for at least 100 times measurements, and high recovery rates for spiked water samples; moreover, all detection steps are easy-to-operate and can be completed in 5 min. Therefore, it exhibits great promise for actual on-site environmental monitoring. Additionally, without introducing any other oligonucleotides or auxiliary materials, this SPA-based biosensing method shows potential as a simple, sensitive, and low-cost manner for the detection of other small molecular targets.
随着抗生素污染作为一个全球问题日益突出,对链霉素(STR)检测的需求不断增加,链霉素是一种广泛使用的抗生素,具有潜在的人类健康和生态风险。基于适配体的生物传感器已被开发用于检测缓冲液和样品中的STR,然而,游离适配体构象变化引起的非靶信号可能会影响其灵敏度和稳定性。在本研究中,通过引入STR特异性分裂适配体(SPA),开发了一种灵敏的倏逝波荧光(EWF)生物传感器,用于基于夹心型的STR检测。获得的STR标准校准曲线的检测限为33 nM,线性范围为60 - 526 nM。该生物传感器表现出良好的选择性、至少100次测量的可靠可重复使用性以及加标水样的高回收率;此外,所有检测步骤操作简便,可在5分钟内完成。因此,它在实际现场环境监测中具有很大的应用前景。此外,在不引入任何其他寡核苷酸或辅助材料的情况下,这种基于SPA的生物传感方法显示出作为一种简单、灵敏且低成本的方式检测其他小分子靶标的潜力。