Lin Tsao-Jen, Huang Kuang-Tse, Liu Chia-Yu
Department of Chemical Engineering, National Chung-Cheng University, Chia-Yi 621, Taiwan.
Biosens Bioelectron. 2006 Oct 15;22(4):513-8. doi: 10.1016/j.bios.2006.05.007. Epub 2006 Jun 12.
Liquid and gas chromatography are commonly used to measure organophosphorus pesticides. However, these methods are relatively time consuming and require a tedious sample pretreatment. Here, we applied the localized surface plasmon resonance (LSPR) of gold nanoparticles covalently coupled with acetylcholinesterase (AChE) to create a biosensor for detecting an example of serial signals responding to paraoxon in the range of 1-100 ppb by an AChE modified LSPR sensor immersing in a 0.05 mM ACh solution. The underlying mechanism is that paraoxon prevents acetylcholine chloride (ACh) reacting with AChE by destroying the OH bond of serine in AChE. We found that the AChE modified LSPR sensors prepared by incubation with 12.5 mU/mL of AChE in phosphate buffer solution at pH 8.5 room temperature for 14 h have the best linear inhibition response with a 0.234 ppb limit of paraoxon detection. A 14% of inhibition on the sensor corresponds to the change of paraoxon concentration from 1 to 100 ppb. The sensor remained 94% of its original activity after six cycles of inhibition with 500 ppb paraoxon followed with reactivation of AChE by 0.5 mM 2-pyriding-aldoxime methoiodide (2-PAM). In addition, the sensor retains activity and gives reproducible results after storage in dry state at 4 degrees C for 60 days. In conclusion, we demonstrated that the AChE modified LSPR sensors can be used to determine the concentration of paraoxon biosensor with high sensitive and stable characteristics.
液相色谱和气相色谱常用于测定有机磷农药。然而,这些方法相对耗时,且需要繁琐的样品预处理。在此,我们应用与乙酰胆碱酯酶(AChE)共价偶联的金纳米颗粒的局域表面等离子体共振(LSPR),通过将AChE修饰的LSPR传感器浸入0.05 mM乙酰胆碱(ACh)溶液中,创建了一种生物传感器,用于检测对1-100 ppb范围内对氧磷响应的一系列信号示例。其潜在机制是对氧磷通过破坏AChE中丝氨酸的OH键来阻止氯化乙酰胆碱(ACh)与AChE反应。我们发现,在pH 8.5的磷酸盐缓冲溶液中,于室温下用12.5 mU/mL的AChE孵育14小时制备的AChE修饰的LSPR传感器具有最佳的线性抑制响应,对氧磷的检测限为0.234 ppb。传感器上14%的抑制率对应于对氧磷浓度从1到100 ppb的变化。在用500 ppb对氧磷进行六次抑制循环,随后用0.5 mM碘解磷定(2-PAM)使AChE重新激活后,该传感器保留了其原始活性的94%。此外,该传感器在4℃干燥状态下储存60天后仍保持活性并能给出可重复的结果。总之,我们证明了AChE修饰的LSPR传感器可用于以高灵敏度和稳定特性测定对氧磷生物传感器的浓度。