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全球 C 示踪和代谢通量分析完整的人肝组织离体。

Global C tracing and metabolic flux analysis of intact human liver tissue ex vivo.

机构信息

Cardiovascular Medicine Unit, Department of Medicine Solna, Karolinska Institutet, Stockholm, Sweden.

Division of Cardiovascular Medicine, Karolinska University Hospital, Stockholm, Sweden.

出版信息

Nat Metab. 2024 Oct;6(10):1963-1975. doi: 10.1038/s42255-024-01119-3. Epub 2024 Aug 29.

Abstract

Liver metabolism is central to human physiology and influences the pathogenesis of common metabolic diseases. Yet, our understanding of human liver metabolism remains incomplete, with much of current knowledge based on animal or cell culture models that do not fully recapitulate human physiology. Here, we perform in-depth measurement of metabolism in intact human liver tissue ex vivo using global C tracing, non-targeted mass spectrometry and model-based metabolic flux analysis. Isotope tracing allowed qualitative assessment of a wide range of metabolic pathways within a single experiment, confirming well-known features of liver metabolism but also revealing unexpected metabolic activities such as de novo creatine synthesis and branched-chain amino acid transamination, where human liver appears to differ from rodent models. Glucose production ex vivo correlated with donor plasma glucose, suggesting that cultured liver tissue retains individual metabolic phenotypes, and could be suppressed by postprandial levels of nutrients and insulin, and also by pharmacological inhibition of glycogen utilization. Isotope tracing ex vivo allows measuring human liver metabolism with great depth and resolution in an experimentally tractable system.

摘要

肝脏代谢是人体生理学的核心,影响常见代谢性疾病的发病机制。然而,我们对人类肝脏代谢的理解仍然不完整,目前的许多知识都是基于动物或细胞培养模型得出的,这些模型并不能完全再现人类生理学。在这里,我们使用全局 C 示踪、非靶向质谱和基于模型的代谢通量分析,对离体完整人类肝组织的代谢进行深入测量。同位素示踪允许在单次实验中定性评估广泛的代谢途径,证实了肝脏代谢的众所周知的特征,但也揭示了意想不到的代谢活性,如从头合成肌酸和支链氨基酸转氨基作用,人类肝脏在这些方面似乎与啮齿动物模型不同。离体葡萄糖生成与供体血浆葡萄糖相关,表明培养的肝组织保留了个体代谢表型,并且可以被餐后水平的营养物质和胰岛素以及糖原利用的药理学抑制所抑制。离体同位素示踪允许在实验上易于处理的系统中以极大的深度和分辨率测量人类肝脏代谢。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a15d/11496108/81c762b3edcb/42255_2024_1119_Fig1_HTML.jpg

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