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利用亲水作用色谱-零窗口高分辨多重反应监测质谱同位素分布分析重建鱼藤酮诱导的神经退行性变神经元模型中的谷胱甘肽代谢

Reconstruction of Glutathione Metabolism in the Neuronal Model of Rotenone-Induced Neurodegeneration Using Mass Isotopologue Analysis with Hydrophilic Interaction Liquid Chromatography-Zeno High-Resolution Multiple Reaction Monitoring.

机构信息

Metabolomics and Analytics Centre, Leiden Academic Centre for Drug Research, Leiden University, Leiden 2333 CC, Netherlands.

SCIEX, Concord, Ontario L4K 4V8, Canada.

出版信息

Anal Chem. 2023 Feb 14;95(6):3255-3266. doi: 10.1021/acs.analchem.2c04231. Epub 2023 Feb 3.

Abstract

Accurate reconstruction of metabolic pathways is an important prerequisite for interpreting metabolomics changes and understanding the diverse biological processes in disease models. A tracer-based metabolomics strategy utilizes stable isotope-labeled precursors to resolve complex pathways by tracing the labeled atom(s) to downstream metabolites through enzymatic reactions. Isotope enrichment analysis is informative and achieved by counting total labeled atoms and acquiring the mass isotopologue distribution (MID) of the intact metabolite. However, quantitative analysis of labeled metabolite substructures/moieties (MS fragments) can offer more valuable insights into the reaction connections through measuring metabolite transformation. In order to acquire the isotopic labeling information at the intact metabolite and moiety level simultaneously, we developed a method that couples hydrophilic interaction liquid chromatography (HILIC) with Zeno trap-enabled high-resolution multiple reaction monitoring (MRM). The method enabled accurate and reproducible MID quantification for intact metabolites as well as their fragmented moieties, with notably high sensitivity in the MS fragmentation mode based on the measurement of C- or N-labeled cellular samples. The method was applied to human-induced pluripotent stem cell-derived neurons to trace the fate of C/N atoms from D-C-glucose/L-N-glutamine added to the media. With the MID analysis of both intact metabolites and fragmented moieties, we validated the pathway reconstruction of de novo glutathione synthesis in mid-brain neurons. We discovered increased glutathione oxidization from both basal and newly synthesized glutathione pools under neuronal oxidative stress. Furthermore, the significantly decreased de novo glutathione synthesis was investigated and associated with altered activities of several key enzymes, as evidenced by suppressed glutamate supply via glucose metabolism and a diminished flux of glutathione synthetic reaction in the neuronal model of rotenone-induced neurodegeneration.

摘要

准确重建代谢途径是解释代谢组学变化和理解疾病模型中多种生物学过程的重要前提。示踪剂代谢组学策略利用稳定同位素标记的前体物,通过追踪标记原子在酶促反应中的下游代谢物,来解析复杂的途径。同位素丰度分析通过计数总标记原子并获取完整代谢物的质量同位素分布(MID)来提供信息和定量。然而,对标记代谢物亚结构/部分(MS 片段)的定量分析可以通过测量代谢物转化提供更有价值的反应连接见解。为了同时获得完整代谢物和部分的同位素标记信息,我们开发了一种将亲水相互作用色谱(HILIC)与 Zenotrap 启用的高分辨率多重反应监测(MRM)相结合的方法。该方法能够准确、可重现地定量完整代谢物及其碎片部分的 MID,在基于 C 或 N 标记的细胞样品测量的 MS 片段模式下具有显著的高灵敏度。该方法应用于人诱导多能干细胞衍生的神经元,以追踪从添加到培养基中的 D-C-葡萄糖/L-N-谷氨酰胺中 C/N 原子的命运。通过完整代谢物和碎片部分的 MID 分析,我们验证了中脑神经元中新的谷胱甘肽合成途径的重建。我们发现神经元氧化应激下,来自基础和新合成的谷胱甘肽池的谷胱甘肽氧化增加。此外,我们研究了新的谷胱甘肽合成明显减少,并与几种关键酶的活性改变相关,这可通过葡萄糖代谢中谷氨酸供应的抑制以及在鱼藤酮诱导的神经退行性变神经元模型中谷胱甘肽合成反应通量的减少来证明。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c51e/9933045/445ced35142b/ac2c04231_0002.jpg

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