de Jong Wilhelmina H A, Smit Reinier, Bakker Stephan J L, de Vries Elisabeth G E, Kema Ido P
Department of Laboratory Medicine, University Medical Center, Groningen, University of Groningen, The Netherlands.
J Chromatogr B Analyt Technol Biomed Life Sci. 2009 Mar 1;877(7):603-9. doi: 10.1016/j.jchromb.2009.01.015. Epub 2009 Jan 21.
Tryptophan metabolism plays a key role in several (patho)physiological conditions. In order to study the clinical importance of tryptophan and its predominant metabolites (kynurenines), it is important to be able to measure large series of samples with high accuracy and reliability. We aimed to develop a high-throughput on-line solid-phase extraction-liquid chromatographic-tandem mass spectrometric (XLC-MS/MS) method that enables the measurement of tryptophan and its metabolites kynurenine and 3-hydroxykynurenine in plasma. Fifty microliters plasma equivalent was pre-purified by automated on-line solid-phase extraction, using strong cation exchange (PRS, propylsulphonic) cartridges. Chromatographic separation of the analytes and deuterated analogues occurred by C18 reversed phase chromatography. Mass spectrometric detection was performed in the multiple reaction-monitoring mode using a quadrupole tandem mass spectrometer with positive electrospray ionization. Total run-time including sample clean-up was 8 min. Intra- and inter-assay analytical variations were less than 9%. Linearity in the 0.11-1200 (tryptophan) and 0.050 and 0.023-45 micromol/L (kynurenine and 3-hydroxykynurenine, respectively) calibration range was excellent (R>0.99). Detection limits were 30 nmol/L for tryptophan, 1 nmol/L for kynurenine and 5 nmol/L for 3-hydroxykynurenine. Reference intervals for 120 healthy adults were 45.5-83.1 micromol/L (tryptophan), 1.14-3.02 micromol/L (kynurenine), <0.13 micromol/L (3-hydroxykynurenine) and 19.0-49.8 for tryptophan-to-kynurenine ratio. Blood sampling for tryptophan and tryptophan-to-kynurenine ratio should be performed before breakfast, due to biological variation during the day. This study describes how plasma tryptophan, kynurenine and 3-hydroxykynurenine can be measured accurately and precisely by automated high-throughput XLC-MS/MS.
色氨酸代谢在多种(病理)生理状况中发挥关键作用。为研究色氨酸及其主要代谢产物(犬尿氨酸)的临床重要性,能够高精度且可靠地检测大量样本至关重要。我们旨在开发一种高通量在线固相萃取 - 液相色谱 - 串联质谱法(XLC - MS/MS),用于测定血浆中的色氨酸及其代谢产物犬尿氨酸和3 - 羟基犬尿氨酸。使用强阳离子交换(PRS,丙基磺酸)柱,通过自动在线固相萃取对50微升血浆当量进行预纯化。通过C18反相色谱对分析物和氘代类似物进行色谱分离。使用带正电喷雾电离的四极杆串联质谱仪,在多反应监测模式下进行质谱检测。包括样品净化在内的总运行时间为8分钟。批内和批间分析变异小于9%。在0.11 - 1200(色氨酸)以及0.050和0.023 - 45微摩尔/升(分别为犬尿氨酸和3 - 羟基犬尿氨酸)的校准范围内,线性关系良好(R>0.99)。色氨酸的检测限为30纳摩尔/升,犬尿氨酸为1纳摩尔/升,3 - 羟基犬尿氨酸为5纳摩尔/升。120名健康成年人的参考区间为45.5 - 83.1微摩尔/升(色氨酸)、1.14 - 3.02微摩尔/升(犬尿氨酸)、<0.13微摩尔/升(3 - 羟基犬尿氨酸)以及色氨酸与犬尿氨酸比值为19.0 - 49.8。由于日间存在生物学变异,色氨酸和色氨酸与犬尿氨酸比值的血样采集应在早餐前进行。本研究描述了如何通过自动化高通量XLC - MS/MS准确且精确地测定血浆中的色氨酸、犬尿氨酸和3 - 羟基犬尿氨酸。