体内
化学
代谢通量分析
糖酵解
代谢组学
代谢物
癌症研究
代谢途径
激光捕获显微切割
生物化学
新陈代谢
生物
色谱法
生物技术
基因表达
基因
作者
Hemi Luan,Shuailong Chen,Jingru Lian,Boxi Zhao,Xiaolong Xu,Yafei Chen,Yufang Yang,Z. Jiang,Min Qi,Jialing Liu,Wenyong Zhang,Tiangang Luan,Xin Hong
出处
期刊:Talanta
[Elsevier]
日期:2024-08-10
卷期号:280: 126696-126696
标识
DOI:10.1016/j.talanta.2024.126696
摘要
Circulating tumor cells (CTC) are considered metastatic precursors that are shed from the primary or metastatic deposits and navigate the bloodstream before undergoing extravasation to establish distant metastases. Metabolic reprogramming appears to be a hallmark of metastatic progression, yet current methods for evaluating metabolic heterogeneity within organ-specific metastases in vivo are limited. To overcome this challenge, we present Biofluorescence Imaging-Guided Spatial Metabolic Tracing (BIGSMT), a novel approach integrating in vivo biofluorescence imaging, stable isotope tracing, stain-free laser capture microdissection, and liquid chromatography-mass spectrometry. This innovative technology obviates the need for staining or intricate sample preparation, mitigating metabolite loss, and substantially enhances detection sensitivity and accuracy through chemical derivatization of polar metabolites in central carbon pathways. Application of BIGSMT to a preclinical CTC-mediated metastasis mouse model revealed significant heterogeneity in the in vivo carbon flux from glucose into glycolysis and the tricarboxylic acid (TCA) cycle across distinct metastatic sites. Our analysis indicates that carbon predominantly enters the TCA cycle through the enzymatic reaction catalyzed by pyruvate dehydrogenase. Thus, our spatially resolved BIGSMT technology provides fresh insights into the metabolic heterogeneity and evolution during melanoma CTC-mediated metastatic progression and points to novel therapeutic opportunities.
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