College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, People's Republic of China.
College of Chemistry and Pharmaceutical Sciences, Qingdao Agricultural University, Qingdao 266109, People's Republic of China.
Biosens Bioelectron. 2016 Jan 15;75:359-64. doi: 10.1016/j.bios.2015.08.063. Epub 2015 Aug 31.
Herein, we reported a facile and highly sensitive biphasic photoelectrochemical (PEC) sensing strategy based on enzymatic product-mediated in situ formation of CdS quantum dots (QDs), and assayed the activity and inhibition of acetylcholinesterase (AChE) in its optimal state. Upon the hydrolysis of acetylthiocholine catalyzed by AChE, the product thiocholine stabilizes the in situ formation of CdS QDs in homogenous solution. Due to the electrostatic attraction, the resulting tertiary amino group-functionalized CdS QDs are attached to the surface of the negatively charged indium tin oxide (ITO) electrode, generating significant PEC response upon illumination in the presence of electron donors. By taking full advantage of the in situ formation of CdS QDs in homogenous solution, this strategy is capable of detecting AChE activity and inhibition in its optimal state. A directly measured detection limit of 0.01mU/mL for AChE activity is obtained, which is superior to those obtained by some fluorescence methods. The inhibition of AChE activity by aldicarb is successfully detected, and the corresponding IC50 is determined to be 13μg/L. In addition to high sensitivity and good selectivity, this strategy also exhibits additional advantages of simplicity, low cost and easy operation. To the best of our knowledge, the as-proposed strategy is the first example demonstrating the application of CdS QDs formed in situ for biphasic PEC detection of enzyme activity and inhibition. More significantly, it opens up a new horizon for the development of homogenous PEC sensing platforms, and has great potential in probing many other analytes.
在此,我们报告了一种基于酶产物介导的原位形成 CdS 量子点(QDs)的简便、高灵敏双相光电流(PEC)传感策略,并在最佳状态下测定了乙酰胆碱酯酶(AChE)的活性和抑制。在 AChE 催化乙酰硫代胆碱水解后,产物硫代胆碱在均相溶液中稳定原位形成 CdS QDs。由于静电吸引,生成的三级氨基功能化 CdS QDs 附着在带负电荷的氧化铟锡(ITO)电极表面,在存在电子供体的光照下产生显著的 PEC 响应。通过充分利用均相溶液中 CdS QDs 的原位形成,该策略能够在最佳状态下检测 AChE 的活性和抑制。获得了对 AChE 活性的 0.01mU/mL 的直接测量检测限,优于一些荧光方法获得的检测限。成功检测到了 aldicarb 对 AChE 活性的抑制,并确定了相应的 IC50 为 13μg/L。除了高灵敏度和良好的选择性外,该策略还具有简单、低成本和易于操作等额外优势。据我们所知,所提出的策略是第一个证明了原位形成的 CdS QDs 用于双相 PEC 检测酶活性和抑制的应用的实例。更重要的是,它为开发均相 PEC 传感平台开辟了新的视野,并在探测许多其他分析物方面具有巨大的潜力。