Xu Chun-Ying, Zhong Yi-Xin, Cui Yuan-Yuan, Yang Cheng-Xiong
School of Pharmaceutical Sciences & Institute of Materia Medica, Medical Science and Technology Innovation Center, Shandong First Medical University & Shandong Academy of Medical Sciences, Jinan, Shandong, 250117, China.
School of Pharmaceutical Sciences & Institute of Materia Medica, Medical Science and Technology Innovation Center, Shandong First Medical University & Shandong Academy of Medical Sciences, Jinan, Shandong, 250117, China.
Talanta. 2024 Sep 1;277:126440. doi: 10.1016/j.talanta.2024.126440. Epub 2024 Jun 15.
Owing to their incomplete digestion in the human body and inadequate removal by sewage treatment plants, antiepileptic drugs (AEDs) accumulate in water bodies, potentially affecting the exposed humans and aquatic organisms. Therefore, sensitive and reliable detection methods must be urgently developed for monitoring trace AEDs in environmental water samples. Herein, a novel phenylboronic acid-functionalized magnetic cyclodextrin microporous organic network (FeO@CD-MON-PBA) was designed and synthesized via the thiol-yne click post-modification strategy for selective and efficient magnetic solid-phase extraction (MSPE) of trace AEDs from complex sample matrices through the specific B-N coordination, π-π, hydrogen bonding, electrostatic, and host-guest interactions. FeO@CD-MON-PBA exhibited a large surface area (118.5 m g), rapid magnetic responsiveness (38.6 emu g, 15 s), good stability and reusability (at least 8 times), and abundant binding sites for AEDs. Under optimal extraction conditions, the proposed FeO@CD-MON-PBA-MSPE-HPLC-UV method exhibited a wide linear range (0.5-1000 μg L), low limits of detection (0.1-0.5 μg L) and quantitation (0.3-2 μg L), good anti-interference ability, and large enrichment factors (92.2-104.3 to 92.3-98.0) for four typical AEDs. This work confirmed the feasibility of the thiol-yne click post-synthesis strategy for constructing novel and efficient multifunctional magnetic CD-MONs for sample pretreatment and elucidated the significance of B-N coordination between PBA and N-containing AEDs.
由于抗癫痫药物(AEDs)在人体中消化不完全且污水处理厂对其去除不充分,这些药物会在水体中积累,可能影响接触到的人类和水生生物。因此,迫切需要开发灵敏可靠的检测方法来监测环境水样中的痕量AEDs。在此,通过硫醇-炔点击后修饰策略设计并合成了一种新型的苯基硼酸功能化磁性环糊精微孔有机网络(FeO@CD-MON-PBA),用于通过特定的B-N配位、π-π、氢键、静电和主客体相互作用从复杂样品基质中选择性高效地磁性固相萃取(MSPE)痕量AEDs。FeO@CD-MON-PBA具有较大的表面积(118.5 m²/g)、快速的磁响应性(38.6 emu/g,15 s)、良好的稳定性和可重复使用性(至少8次)以及丰富的AEDs结合位点。在最佳萃取条件下,所提出的FeO@CD-MON-PBA-MSPE-HPLC-UV方法对四种典型AEDs表现出宽线性范围(0.5 - 1000 μg/L)、低检测限(0.1 - 0.5 μg/L)和定量限(0.3 - 2 μg/L)、良好的抗干扰能力以及较大的富集因子(92.2 - 104.3至92.3 - 98.0)。这项工作证实了硫醇-炔点击后合成策略用于构建新型高效多功能磁性环糊精微孔有机网络用于样品预处理的可行性,并阐明了PBA与含氮AEDs之间B-N配位的重要性。