柠檬酸循环
糖异生
生物化学
代谢通量分析
代谢途径
三羧酸
生物
焊剂(冶金)
谷氨酰胺
髓质
糖酵解
化学
氨基酸
新陈代谢
内分泌学
有机化学
作者
Lin Wang,Xi Xing,Xianfeng Zeng,Susan Jackson,Tara TeSlaa,Osama Al‐Dalahmah,Laith Z. Samarah,Katharine Goodwin,Lifeng Yang,Melanie R. McReynolds,Xiaoxuan Li,Jeremy J. Wolff,Joshua D. Rabinowitz,Shawn M. Davidson
出处
期刊:Nature Methods
[Springer Nature]
日期:2022-02-01
卷期号:19 (2): 223-230
被引量:102
标识
DOI:10.1038/s41592-021-01378-y
摘要
Isotope tracing has helped to determine the metabolic activities of organs. Methods to probe metabolic heterogeneity within organs are less developed. We couple stable-isotope-labeled nutrient infusion to matrix-assisted laser desorption ionization imaging mass spectrometry (iso-imaging) to quantitate metabolic activity in mammalian tissues in a spatially resolved manner. In the kidney, we visualize gluconeogenic flux and glycolytic flux in the cortex and medulla, respectively. Tricarboxylic acid cycle substrate usage differs across kidney regions; glutamine and citrate are used preferentially in the cortex and fatty acids are used in the medulla. In the brain, we observe spatial gradations in carbon inputs to the tricarboxylic acid cycle and glutamate under a ketogenic diet. In a carbohydrate-rich diet, glucose predominates throughout but in a ketogenic diet, 3-hydroxybutyrate contributes most strongly in the hippocampus and least in the midbrain. Brain nitrogen sources also vary spatially; branched-chain amino acids contribute most in the midbrain, whereas ammonia contributes in the thalamus. Thus, iso-imaging can reveal the spatial organization of metabolic activity. Iso-imaging integrates stable-isotope infusions with imaging mass spectrometry to enable quantitative analysis of metabolic activity in mammalian tissues with spatial resolution. IsoScope software facilitates analysis of iso-imaging data.
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