Department of Chemistry, College of Chemistry and Chemical Engineering, The Key Laboratory for Chemical Biology of Fujian Province, Xiamen University, Xiamen, Fujian 361005, China.
School of Pharmaceutical Sciences, Fujian Provincial Key Laboratory of Innovative Drug Target Research, Xiamen University, Xiamen, Fujian 361102, China.
Anal Chim Acta. 2017 Jul 25;978:24-34. doi: 10.1016/j.aca.2017.04.025. Epub 2017 Apr 27.
Stable isotope chemical labeling liquid chromatography-mass spectrometry (LC-MS) is a powerful strategy for comprehensive metabolomics profiling, which can improve metabolites coverage and quantitative information for exploration of metabolic regulation in complex biological systems. In the current work, a novel stable isotope N-phosphoryl amino acids labeling strategy (SIPAL) has been successful developed for quantitative profiling of amine-containing metabolites in urine based on organic phosphorus chemistry. Two isotopic reagents, O- and O-N-diisopropyl phosphoryl l-alanine N-hydroxysuccinimide esters (O/O-DIPP-L-Ala-NHS), were firstly synthesized in high yields for labeling the amine-containing metabolites. The performance of SIPAL strategy was tested by analyzing standard samples including 20 l-amino acids, 10 d-amino acids and small peptides by using LC-MS. We observed highly efficient and selective labeling for SIPAL strategy within 15 min in a one-pot derivatization reaction under aqueous reaction conditions. The introduction of a neutral phosphate group at N-terminus can increase the proton affinity and overall hydrophobicity of targeted metabolites, leading to the better ionization efficiency in electrospray ionization processes and chromatographic separations of hydrophilic metabolites on reversed-phase column. Furthermore, the chiral metabolites, such as d-amino acids, could be converted to diastereomers after SIPAL and successfully separated on regular reversed-phase column. The chirality of labeled enantiomers can be determined by using different detection methods such as P NMR, UV, and MS, demonstrating the potential application of SIPAL strategy. In addition, absolute quantification of chiral metabolites in biological samples can be easily achieved by using SIPAL strategy. For this purpose, urine samples collected from a healthy volunteer were analyzed by using LC-ESI-Orbitrap MS. Over 300 pairs of different amine-containing metabolites have been manually identified with high relative abundance (signal-to-noise ratios greater than 10). Finally, a standard peptide could be relatively quantified by using SIPAL strategy in combination with MALDI-TOF MS, suggesting the potential application of this strategy for quantitative proteomics.
稳定同位素化学标记液相色谱-质谱联用(LC-MS)是一种强大的综合代谢组学分析策略,可提高代谢物的覆盖范围和定量信息,从而探索复杂生物系统中的代谢调控。在本工作中,基于有机磷化学,成功开发了一种新的稳定同位素 N-磷酸化氨基酸标记策略(SIPAL),用于定量分析尿液中的含胺代谢物。两种同位素试剂,O-和 O-N-二异丙基膦酰基 l-丙氨酸 N-羟基琥珀酰亚胺酯(O/O-DIPP-L-Ala-NHS),首先以高产率合成,用于标记含胺代谢物。通过使用 LC-MS 分析包括 20 种 l-氨基酸、10 种 d-氨基酸和小肽的标准样品,测试了 SIPAL 策略的性能。我们观察到在水相反应条件下,在一锅衍生化反应中,SIPAL 策略在 15 分钟内可实现高效和选择性标记。在 N 端引入中性磷酸基团可以增加靶向代谢物的质子亲和力和整体疏水性,从而提高电喷雾电离过程中的离子化效率,并改善亲水代谢物在反相柱上的色谱分离。此外,SIPAL 后,手性代谢物,如 d-氨基酸,可以转化为非对映异构体,并在常规反相柱上成功分离。通过使用不同的检测方法,如 P NMR、UV 和 MS,可以确定标记对映异构体的手性,证明了 SIPAL 策略的潜在应用。此外,通过 SIPAL 策略可以轻松实现生物样品中手性代谢物的绝对定量。为此,使用 LC-ESI-Orbitrap MS 分析了来自健康志愿者的尿液样本。通过高相对丰度(信噪比大于 10)手动鉴定了超过 300 对不同的含胺代谢物。最后,通过使用 SIPAL 策略结合 MALDI-TOF MS 可以相对定量标准肽,表明该策略在手性代谢组学定量中的潜在应用。