Department of Chemistry, University of Waterloo , Waterloo, Ontario N2L 3G1, Canada.
SCIEX , 71 Four Valley Drive, Concord, Ontario L4K 4 V8, Canada.
Anal Chem. 2017 Apr 4;89(7):3805-3809. doi: 10.1021/acs.analchem.6b04737. Epub 2017 Feb 13.
In recent years, the direct coupling of solid phase microextraction (SPME) and mass spectrometry (MS) has shown its great potential to improve limits of quantitation, accelerate analysis throughput, and diminish potential matrix effects when compared to direct injection to MS. In this study, we introduce the open port probe (OPP) as a robust interface to couple biocompatible SPME (Bio-SPME) fibers to MS systems for direct electrospray ionization. The presented design consisted of minimal alterations to the front-end of the instrument and provided better sensitivity, simplicity, speed, wider compound coverage, and high-throughput in comparison to the LC-MS based approach. Quantitative determination of clenbuterol, fentanyl, and buprenorphine was successfully achieved in human urine. Despite the use of short extraction/desorption times (5 min/5 s), limits of quantitation below the minimum required performance levels (MRPL) set by the world antidoping agency (WADA) were obtained with good accuracy (≥90%) and linearity (R > 0.99) over the range evaluated for all analytes using sample volumes of 300 μL. In-line technologies such as multiple reaction monitoring with multistage fragmentation (MRM) and differential mobility spectrometry (DMS) were used to enhance the selectivity of the method without compromising analysis speed. On the basis of calculations, once coupled to high throughput, this method can potentially yield preparation times as low as 15 s per sample based on the 96-well plate format. Our results demonstrated that Bio-SPME-OPP-MS efficiently integrates sampling/sample cleanup and atmospheric pressure ionization, making it an advantageous configuration for several bioanalytical applications, including doping in sports, in vivo tissue sampling, and therapeutic drug monitoring.
近年来,固相微萃取(SPME)与质谱(MS)的直接耦合在提高定量下限、加速分析通量以及减少与 MS 直接进样相比的潜在基质效应方面显示出了巨大的潜力。在本研究中,我们引入开口探头(OPP)作为一种稳健的接口,将生物相容性 SPME(Bio-SPME)纤维与 MS 系统直接电喷雾离子化耦合。所提出的设计对仪器的前端进行了最小的改动,与基于 LC-MS 的方法相比,提供了更好的灵敏度、简单性、速度、更广泛的化合物覆盖范围和高通量。在人体尿液中成功实现了克仑特罗、芬太尼和丁丙诺啡的定量测定。尽管使用了较短的萃取/解吸时间(5 min/5 s),但仍获得了低于世界反兴奋剂机构(WADA)规定的最低性能水平(MRPL)的定量下限,所有分析物的准确度(≥90%)和线性度(R > 0.99)均在评估范围内,使用 300 μL 体积的样品。在线技术,如多级碎裂的多重反应监测(MRM)和差分迁移谱(DMS),用于提高方法的选择性,而不影响分析速度。根据计算,一旦与高通量结合,这种方法在基于 96 孔板格式的情况下,每个样品的制备时间可能低至 15 秒。我们的结果表明,Bio-SPME-OPP-MS 有效地集成了采样/样品净化和大气压电离,使其成为几种生物分析应用的有利配置,包括运动中的兴奋剂、体内组织采样和治疗药物监测。