糖异生
柠檬酸循环
分解代谢
小肠
新陈代谢
谷氨酰胺
糖酵解
三磷酸腺苷
生物
果糖
化学
肝小叶
肠绒毛
腺苷
代谢物
内科学
代谢途径
碳水化合物代谢
肝细胞学
肝细胞
一磷酸腺苷
同位素
葡萄糖转运蛋白
丙酮酸
胞浆
谷氨酰胺合成酶
生物化学
作者
Laith Z. Samarah,Clover Zheng,Xi Xing,Won Dong Lee,Amichay Afriat,Uthsav Chitra,Michael R. MacArthur,Wenyun Lu,Connor S.R. Jankowski,Cong Ma,Craig J. Hunter,Michael D. Neinast,Daniel Weilandt,Benjamin J. Raphael,Joshua D. Rabinowitz
出处
期刊:Nature
[Nature Portfolio]
日期:2025-10-15
卷期号:648 (8092): 182-190
被引量:16
标识
DOI:10.1038/s41586-025-09616-5
摘要
The properties of mammalian cells depend on their location within organs. Gene expression in the liver varies between periportal and pericentral hepatocytes1–3, and in the intestine from crypts to villus tips4,5. A key element of tissue spatial organization is probably metabolic, but direct assessments of spatial metabolism remain limited. Here we map spatial metabolic gradients in the mouse liver and intestine. We develop an integrated experimental–computational workflow using matrix-assisted laser desorption/ionization (MALDI) imaging mass spectrometry (IMS), isotope tracing and deep-learning artificial intelligence. Most measured metabolites (>90%) showed significant spatial concentration gradients in the liver lobules and intestinal villi. In the liver, tricarboxylic acid (TCA)-cycle metabolites and their isotope labelling from both glutamine and lactate localized periportally. Energy-stress metabolites, including adenosine monophosphate (AMP), also localized periportally, consistent with a high periportal energy demand. In the intestine, the TCA intermediates malate (tip) and citrate (crypt) showed opposite spatial patterns, aligning with higher glutamine catabolism in tips and lactate oxidation in crypts based on isotope tracing. Finally, we mapped the fate of the obesogenic dietary sugar fructose. In the intestine, oral fructose was catabolized faster in the villus bottom than in the tips. In the liver, fructose-derived carbon accumulated pericentrally as fructose-1-phosphate and triggered pericentral adenosine triphosphate (ATP) depletion. Thus, we both provide foundational knowledge regarding intestine and liver metabolic organization and identify fructose-induced focal derangements in liver metabolism. Mapping of spatial metabolic gradients in the mouse liver and intestine identifies fructose-induced focal derangements in liver metabolism.
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