He Maofang, Wang Chaozhan, Wei Yinmao
Key Laboratory of Synthetic and Natural Functional Molecule Chemistry of Ministry of Education, College of Chemistry and Material Science, Northwest University, Xi'an 710127, P.R. China.
Key Laboratory of Synthetic and Natural Functional Molecule Chemistry of Ministry of Education, College of Chemistry and Material Science, Northwest University, Xi'an 710127, P.R. China.
Talanta. 2016 Jan 15;147:437-44. doi: 10.1016/j.talanta.2015.10.017. Epub 2015 Oct 9.
In this paper, iminodiacetic acid-Cu(II) functionalized Fe3O4@SiO2 magnetic nanoparticles were prepared and used as new adsorbents for magnetic solid phase extraction (MSPE) of six monoamine neurotransmitters (MNTs) from rabbit plasma. The selective enrichment of MNTs at pH 5.0 was motivated by the specific coordination interaction between amino groups of MNTs and the immobilized Cu(II). The employed weak acidic extraction condition avoided the oxidation of MNTs, and thus facilitated operation and ensured higher recoveries. Under optimal conditions, the recoveries of six MNTs from rabbit plasma were in the range of 83.9-109.4%, with RSD of 2.0-10.0%. When coupled the Cu(II) immobilized MSPE with high-performance liquid chromatography-fluorescence detection, the method exhibited relatively lower detection limits than the previously reported methods, and the method was successfully used to determine the endogenous MNTs in rabbit plasma. The proposed method has potential application for the determination of MNTs in biological samples. Also, the utilization of coordination interaction to improve the selectivity might open another way to selectively enrich small alkaloids from complex samples.
本文制备了亚氨基二乙酸 - 铜(II)功能化的Fe3O4@SiO2磁性纳米粒子,并将其用作从兔血浆中磁性固相萃取(MSPE)六种单胺类神经递质(MNTs)的新型吸附剂。MNTs的氨基与固定化铜(II)之间的特定配位相互作用促使在pH 5.0条件下对MNTs进行选择性富集。所采用的弱酸性萃取条件避免了MNTs的氧化,从而便于操作并确保了更高的回收率。在最佳条件下,兔血浆中六种MNTs的回收率在83.9 - 109.4%范围内,相对标准偏差为2.0 - 10.0%。当将固定化铜(II)的MSPE与高效液相色谱 - 荧光检测相结合时,该方法的检测限比先前报道的方法相对更低,并且该方法成功用于测定兔血浆中的内源性MNTs。所提出的方法在生物样品中MNTs的测定方面具有潜在应用。此外,利用配位相互作用提高选择性可能为从复杂样品中选择性富集小生物碱开辟另一条途径。