Zukunft Sven, Prehn Cornelia, Röhring Cornelia, Möller Gabriele, Hrabě de Angelis Martin, Adamski Jerzy, Tokarz Janina
Helmholtz Zentrum München, German Research Center for Environmental Health, Institute of Experimental Genetics, Genome Analysis Center, Ingolstaedter Landstrasse 1, 85764, Neuherberg, Germany.
German Center for Diabetes Research (DZD), 85764, Neuherberg, Germany.
Metabolomics. 2018;14(1):18. doi: 10.1007/s11306-017-1312-x. Epub 2017 Dec 30.
Global metabolomics analyses using body fluids provide valuable results for the understanding and prediction of diseases. However, the mechanism of a disease is often tissue-based and it is advantageous to analyze metabolomic changes directly in the tissue. Metabolomics from tissue samples faces many challenges like tissue collection, homogenization, and metabolite extraction.
We aimed to establish a metabolite extraction protocol optimized for tissue metabolite quantification by the targeted metabolomics Absolute™ p180 Kit (Biocrates). The extraction method should be non-selective, applicable to different kinds and amounts of tissues, monophasic, reproducible, and amenable to high throughput.
We quantified metabolites in samples of eleven murine tissues after extraction with three solvents (methanol, phosphate buffer, ethanol/phosphate buffer mixture) in two tissue to solvent ratios and analyzed the extraction yield, ionization efficiency, and reproducibility.
We found methanol and ethanol/phosphate buffer to be superior to phosphate buffer in regard to extraction yield, reproducibility, and ionization efficiency for all metabolites measured. Phosphate buffer, however, outperformed both organic solvents for amino acids and biogenic amines but yielded unsatisfactory results for lipids. The observed matrix effects of tissue extracts were smaller or in a similar range compared to those of human plasma.
We provide for each murine tissue type an optimized high-throughput metabolite extraction protocol, which yields the best results for extraction, reproducibility, and quantification of metabolites in the p180 kit. Although the performance of the extraction protocol was monitored by the p180 kit, the protocol can be applicable to other targeted metabolomics assays.
利用体液进行的全球代谢组学分析为疾病的理解和预测提供了有价值的结果。然而,疾病机制通常基于组织,直接分析组织中的代谢组学变化具有优势。组织样本的代谢组学面临许多挑战,如组织收集、匀浆和代谢物提取。
我们旨在建立一种针对靶向代谢组学Absolute™ p180试剂盒(Biocrates)对组织代谢物定量进行优化的代谢物提取方案。该提取方法应是非选择性的,适用于不同种类和数量的组织,单相的,可重复的,并且适用于高通量。
我们用三种溶剂(甲醇、磷酸盐缓冲液、乙醇/磷酸盐缓冲液混合物)以两种组织与溶剂的比例对11种小鼠组织样本进行提取后对代谢物进行定量,并分析提取率、电离效率和重现性。
我们发现,对于所测量的所有代谢物,甲醇和乙醇/磷酸盐缓冲液在提取率、重现性和电离效率方面优于磷酸盐缓冲液。然而,磷酸盐缓冲液在氨基酸和生物胺方面优于两种有机溶剂,但在脂质方面产生的结果不理想。与人类血浆相比,观察到的组织提取物的基质效应较小或处于相似范围。
我们为每种小鼠组织类型提供了一种优化的高通量代谢物提取方案,该方案在p180试剂盒中代谢物的提取、重现性和定量方面产生最佳结果。尽管提取方案的性能通过p180试剂盒进行监测,但该方案可应用于其他靶向代谢组学分析。