PhosphoniumChloride-EnhancedIonization for High-ThroughputScreening and Imaging of Carbohydrate Metabolites: Unveiling Disruptorsof Sugar Metabolism

化学 果糖 碳水化合物 质谱法 生物化学 美拉德反应 衍生化 色谱法 糖酸 代谢物 新陈代谢 单糖 碳水化合物代谢 代谢组学 多糖 诱变剂 代谢途径 化学电离 有机化学 乙醇醛 电喷雾电离 双酚A 蔗糖 嘌呤 电离 核糖 微生物代谢 加合物 生物流体 稳定同位素比值 氯化物
作者
Wenyi Li,Yixuan Huang,Yi Yang,Ling Jiao,Zehua Liu,Hailin Shang,Yi Tian,Jinqi Sun,Yi Wan
出处
期刊:Environmental Science & Technology [American Chemical Society]
标识
DOI:10.1021/acs.est.6c07130
摘要

Abstract Carbohydrates with high structural complexity are involved in key biological processes and serve as susceptible targets of environmental metabolic disruptors. However, the lack of a high-throughput and sensitive method for profiling carbohydrates limits our mechanistic understanding of the disruption of sugar metabolic pathways. In this study, we found that postcolumn addition of 10 μM (chloromethyl)triphenylphosphonium chloride (Ph3(CH2Cl)PCl) enabled the efficient ionization of saccharides and sugar alcohols as [M+Cl]− adducts in high-resolution mass spectrometry analysis, lowering instrumental detection limits by an average of 4- to 767-fold. A nontargeted method for polyol-containing compounds (PCCs) was subsequently established by leveraging their characteristic chlorinated isotope patterns. Approximately 68 PCCs, including saccharides with a degree of polymerization of 1–15, sugar alcohols, nonglucosyl saccharides, O-glycosides, nucleosides, amino sugars, a purine base, and a vitamin, were identified from microbially rich samples such as beer and mouse cecal contents. The method successfully identified disrupted saccharides and nucleosides in the cecal contents of mice exposed to a bisphenol A replacement (TGSA). Ph3(CH2Cl)PCl-enhanced ionization was further found to enhance analytical sensitivity and expand the species coverage in mass spectrum imaging, broadening the range of detectable saccharides (e.g., di- and trisaccharides) in biological samples. The imaging method confirmed alterations of PCCs in the central nervous system and liver tissues by medium-chain chlorinated paraffins during fetal development. This study provides an effective tool for the quantification, identification, and imaging of PCCs to screen for environmental disruptors of sugar metabolism.
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