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采用二维气相色谱飞行时间质谱技术对肿瘤性和非肿瘤性尿路上皮细胞进行代谢足迹分析。

Metabolic footprinting of tumorigenic and nontumorigenic uroepithelial cells using two-dimensional gas chromatography time-of-flight mass spectrometry.

机构信息

Department of Pharmacy, Faculty of Science, National University of Singapore, 18 Science Drive 4, Singapore, 117543, Republic of Singapore.

出版信息

Anal Bioanal Chem. 2010 Oct;398(3):1285-93. doi: 10.1007/s00216-010-4055-3. Epub 2010 Aug 5.

Abstract

In this study, gas chromatography mass spectrometry (GC-MS) and two-dimensional gas chromatography time-of-flight mass spectrometry (GCxGC-TOFMS) were employed for the metabolic footprinting of a pair of immortalized human uroepithelial cells namely HUC-1 (nontumorigenic) and HUC T-2 (tumorigenic). Both HUC-1 and HUC T-2 cell lines were cultivated in 1 mL of Ham's F-12 media. Subsequent to 48 h of incubation, 200 microL of cell culture supernatant was protein-precipitated using 1.7 mL of methanol and an aliquot of 1.5 mL of the mixture was separated, dried, trimethylsilyl-derivatized, and analyzed using GC-MS and GCxGC-TOFMS. Metabolic profiles were analyzed using multivariate data analysis techniques to evaluate the changes of the metabolomes. Both GC-MS and GCxGC-TOFMS analyses showed distinct differences in metabolic phenotypes of the normal and tumorigenic human bladder cells (partial least squares-discriminant analysis (PLS-DA) of GCxGC-TOFMS data; two latent variables, R (2) X = 0.418, R (2) Y = 0.977 and Q (2) (cumulative) = 0.852). Twenty metabolites were identified as being statistically different between the two cell types. These metabolites revealed that several key metabolic pathways were perturbed in tumorigenic urothelial cells as compared to the normal cells. Application of GCxGC-TOFMS offered several advantages compared to classical one-dimensional GC-MS which include enhanced chromatographic resolution (without increase in analytical run time), increase in sensitivity, improved identification of metabolites, and also separation of reagent artifacts from the metabolite peaks. Our results reinforced the advantages of GCxGC-TOFMS and the role of metabolomics in characterizing bladder cancer biology using in vitro cell culture models.

摘要

在这项研究中,我们使用气相色谱-质谱联用(GC-MS)和二维气相色谱飞行时间质谱联用(GCxGC-TOFMS)对一对永生化的人尿路上皮细胞(非肿瘤细胞 HUC-1 和肿瘤细胞 HUC T-2)进行代谢足迹分析。将 HUC-1 和 HUC T-2 细胞系均在 1 mL 的 Ham's F-12 培养基中培养。孵育 48 h 后,用 1.7 mL 甲醇沉淀 200 μL 细胞培养上清液,取 1.5 mL 混合物进行分离、干燥、三甲基硅烷衍生化,并用 GC-MS 和 GCxGC-TOFMS 进行分析。使用多元数据分析技术对代谢谱进行分析,以评估代谢组的变化。GC-MS 和 GCxGC-TOFMS 分析均显示正常和肿瘤膀胱细胞的代谢表型存在明显差异(GCxGC-TOFMS 数据的偏最小二乘判别分析(PLS-DA);两个潜在变量,R 2 X = 0.418,R 2 Y = 0.977 和 Q 2 (累积)= 0.852)。鉴定出 20 种代谢产物在两种细胞类型之间存在统计学差异。这些代谢产物表明,与正常细胞相比,肿瘤性尿路上皮细胞中几种关键代谢途径受到干扰。与经典的一维 GC-MS 相比,GCxGC-TOFMS 具有几个优势,包括增强的色谱分辨率(不增加分析运行时间)、增加的灵敏度、改善代谢物的鉴定,以及从代谢物峰中分离试剂副产物。我们的结果加强了 GCxGC-TOFMS 的优势,以及代谢组学在使用体外细胞培养模型表征膀胱癌生物学中的作用。

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