Li Hongde, Tennessen Jason M
Department of Biology, Indiana University.
Department of Biology, Indiana University;
J Vis Exp. 2018 Jun 6(136):57847. doi: 10.3791/57847.
Recent advances in the field of metabolomics have established the fruit fly Drosophila melanogaster as a powerful genetic model for studying animal metabolism. By combining the vast array of Drosophila genetic tools with the ability to survey large swaths of intermediary metabolism, a metabolomics approach can reveal complex interactions between diet, genotype, life-history events, and environmental cues. In addition, metabolomics studies can discover novel enzymatic mechanisms and uncover previously unknown connections between seemingly disparate metabolic pathways. In order to facilitate more widespread use of this technology among the Drosophila community, here we provide a detailed protocol that describes how to prepare Drosophila larval samples for gas chromatography-mass spectrometry (GC-MS)-based metabolomic analysis. Our protocol includes descriptions of larval sample collection, metabolite extraction, chemical derivatization, and GC-MS analysis. Successful completion of this protocol will allow users to measure the relative abundance of small polar metabolites, including amino acids, sugars, and organic acids involved in glycolysis and the TCA cycles.
代谢组学领域的最新进展已将果蝇确立为研究动物代谢的强大遗传模型。通过将大量果蝇遗传工具与全面检测中间代谢的能力相结合,代谢组学方法可以揭示饮食、基因型、生活史事件和环境线索之间的复杂相互作用。此外,代谢组学研究可以发现新的酶促机制,并揭示看似不同的代谢途径之间以前未知的联系。为了促进该技术在果蝇研究群体中的更广泛应用,我们在此提供一份详细的方案,描述如何制备用于基于气相色谱 - 质谱(GC-MS)的代谢组学分析的果蝇幼虫样本。我们的方案包括幼虫样本采集、代谢物提取、化学衍生化和GC-MS分析的描述。成功完成本方案将使用户能够测量小极性代谢物的相对丰度,包括参与糖酵解和三羧酸循环的氨基酸、糖类和有机酸。