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基于镁的微马达增强的超高效液相色谱串联质谱法测定胰岛素

Determination of insulin with ultra-performance liquid chromatography tandem mass spectrometry enhanced by Mg-based micromotors.

作者信息

Li Jing, Song Qingtao, Chen Yuliang, Li Haoran, Gui Ming, Liu Wenjuan

机构信息

College of Chemical and Biological Engineering, Zhejiang University, Hangzhou, 310058, China.

College of Materials Science and Engineering, Research Institute for Biomaterials, Tech Institute for Advanced Materials, Nanjing Tech University, Nanjing, 211816, China.

出版信息

Mikrochim Acta. 2025 Mar 25;192(4):252. doi: 10.1007/s00604-025-07108-x.

Abstract

An active drug delivery vector of Mg-based micromotor is proposed for enhanced intestinal drug mass spectrometry (MS) detection from proof of concept. Taking diabetes as a disease model, insulin nanoparticles (Ins-NPs) were successfully loaded in chitosan (CHI) layer of Mg-based micromotor (Mg/Au/PLGA/CHI@Ins-NPs) due to electrostatic adsorption with PLGA. The penetration ability of micromotors was evaluated on artificial mucin, which is distributed within about 300 μm of the mucus. In addition, in vitro drug delivery and retention was carried out on the isolated small intestine of mice; then, the insulin molecule was determined by ultra-performance liquid chromatography-mass spectrometry (UPLC-MS). By overcoming the mucus barrier and enhancing retention in intestine through active transport of micromotor, insulin ions at m/z 963.9443, 1156.3287, and 1445.1592 were detected by UPLC-MS and classified as [Insulin + 6H], [Insulin + 5H], and [Insulin + 4H]. Notably, the mass-to-charge ratio of insulin ions was detected only in micromotor drug delivery systems compared to drug-loaded inert particles in the isolated small intestine, attributed to the intensive penetration and retention capability of micromotors. Meanwhile, this Mg-based micromotor exhibited good biocompatibility and was easy to be removed for the UPLC-MS detection sample preparation. Overall, we provide a potential strategy to detect the low content of drugs with UPLC-MS technique by combining with active micromotor and further broadening the sensing application for untethered micromotor.

摘要

基于概念验证,提出了一种用于增强肠道药物质谱(MS)检测的基于镁的微马达主动药物递送载体。以糖尿病作为疾病模型,由于与聚乳酸-羟基乙酸共聚物(PLGA)的静电吸附作用,胰岛素纳米颗粒(Ins-NPs)成功负载于基于镁的微马达(Mg/Au/PLGA/CHI@Ins-NPs)的壳聚糖(CHI)层中。在分布于黏液约300μm范围内的人工黏蛋白上评估了微马达的穿透能力。此外,在小鼠离体小肠上进行了体外药物递送和保留实验;然后,通过超高效液相色谱-质谱联用仪(UPLC-MS)测定胰岛素分子。通过克服黏液屏障并通过微马达的主动转运增强在肠道中的保留,UPLC-MS检测到质荷比为963.9443、1156.3287和1445.1592的胰岛素离子,并将其归类为[胰岛素+6H]、[胰岛素+5H]和[胰岛素+4H]。值得注意的是,与离体小肠中载药惰性颗粒相比,仅在微马达药物递送系统中检测到胰岛素离子的质荷比,这归因于微马达的强穿透和保留能力。同时,这种基于镁的微马达表现出良好的生物相容性,并且易于为UPLC-MS检测样品制备而去除。总体而言,我们提供了一种通过结合主动微马达利用UPLC-MS技术检测低含量药物的潜在策略,并进一步拓宽了无束缚微马达的传感应用。

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