State Key Laboratory for Conservation and Utilization of Bio-Resources in Yunnan, Yunnan University, Kunming 650091, PR China.
School of Chemical Science and Technology, Yunnan University, Kunming 650091, PR China.
Biosens Bioelectron. 2017 Mar 15;89(Pt 1):361-369. doi: 10.1016/j.bios.2016.07.016. Epub 2016 Jul 7.
The present work described the comparison of β-cyclodextrin (β-CD) and p-sulfonated calix[6]arene (SCX6) functionalized reduced graphene oxide (RGO) for recognition of tadalafil. In this study, tadalafil and two macrocycles (β-CD and SCX6) were selected as the guest and host molecules, respectively. The inclusion complexes of β-CD/tadalafil and SCX6/tadalafil were studied by UV spectroscopy and molecular simulation calculations, proving the higher supermolecular recognition capability of SCX6 than β-CD towards tadalafil. The β-CD@RGO and SCX6@RGO composites were prepared by a wet-chemical route. The obtained composites were characterized by Fourier transform infrared spectrometry, thermogravimetric analysis, atomic force microscopy, and zeta potential. The SCX6@RGO showed a higher electrochemical response than β-CD@RGO, which was caused by the higher recognition capability of SCX6 than β-CD. By combining the merits of SCX6 and the RGO, a sensitive electrochemical sensing platform was developed based on the SCX6@RGO nanohybrids. A linear response range of 0.1-50 μM and 50-1000 μM for tadalafil with a low detection limit of 0.045 μM (S/N=3) was obtained by using this method. The constructed sensing platform was successfully used to determine tadalafil in herbal sexual health products and spiked human serum samples, suggesting its promising analytical applications for the trace level determination of tadalafil.
本工作描述了β-环糊精(β-CD)和对磺基杯[6]芳烃(SCX6)功能化还原氧化石墨烯(RGO)对他达拉非识别的比较。在这项研究中,他达拉非和两个大环(β-CD 和 SCX6)分别被选为客体和主体分子。通过紫外光谱和分子模拟计算研究了β-CD/他达拉非和 SCX6/他达拉非的包合物,证明了 SCX6 对他达拉非的超分子识别能力高于β-CD。通过湿化学法制备了β-CD@RGO 和 SCX6@RGO 复合材料。通过傅里叶变换红外光谱、热重分析、原子力显微镜和zeta 电位对所得复合材料进行了表征。与β-CD@RGO 相比,SCX6@RGO 表现出更高的电化学响应,这是由于 SCX6 比β-CD 具有更高的识别能力。通过结合 SCX6 和 RGO 的优点,基于 SCX6@RGO 纳米杂化物开发了一种灵敏的电化学传感平台。该方法对他达拉非的线性响应范围为 0.1-50 μM 和 50-1000 μM,检测限低至 0.045 μM(S/N=3)。所构建的传感平台成功用于测定草药性健康产品和加标人血清样品中的他达拉非,表明其在痕量他达拉非测定方面具有有前途的分析应用。