脂质代谢
脂肪酸代谢
脂质体
生物
脂肪酸合酶
脂肪酸
斑马鱼
肿瘤进展
甘油磷脂
癌症研究
生物化学
化学
基因
作者
Fiona Henderson,Hannah R Johnston,Andrew P. Badrock,Emrys A. Jones,Duncan Forster,Raghavendar Nagaraju,Christos Evangelou,Jivko Kamarashev,Michael Green,Michael Fairclough,Irene Barinaga-Rementeria Ramirez,Shuning He,B. Ewa Snaar-Jagalska,Katherine A. Hollywood,Warwick B. Dunn,Herman P. Spaink,Michael P. Smith,Paul Lorigan,Emmanuelle Claude,Kaye J. Williams,Adam McMahon,Adam Hurlstone
出处
期刊:Cancer Research
[American Association for Cancer Research]
日期:2019-05-01
卷期号:79 (9): 2136-2151
被引量:17
标识
DOI:10.1158/0008-5472.can-18-2409
摘要
Abstract Alterations in lipid metabolism in cancer cells impact cell structure, signaling, and energy metabolism, making lipid metabolism a potential diagnostic marker and therapeutic target. In this study, we combined PET, desorption electrospray ionization-mass spectrometry (DESI-MS), nonimaging MS, and transcriptomic analyses to interrogate changes in lipid metabolism in a transgenic zebrafish model of oncogenic RAS-driven melanocyte neoplasia progression. Exogenous fatty acid uptake was detected in melanoma tumor nodules by PET using the palmitic acid surrogate tracer 14(R,S)-18F-fluoro-6-thia-heptadecanoic acid ([18F]-FTHA), consistent with upregulation of genes associated with fatty acid uptake found through microarray analysis. DESI-MS imaging revealed that FTHA uptake in tumors was heterogeneous. Transcriptome and lipidome analyses further highlighted dysregulation of glycerophospholipid pathways in melanoma tumor nodules, including increased abundance of phosphatidyl ethanolamine and phosphatidyl choline species, corroborated by DESI-MS, which again revealed heterogeneous phospholipid composition in tumors. Overexpression of the gene encoding lipoprotein lipase (LPL), which was upregulated in zebrafish melanocyte tumor nodules and expressed in the majority of human melanomas, accelerated progression of oncogenic RAS-driven melanocyte neoplasia in zebrafish. Depletion or antagonism of LPL suppressed human melanoma cell growth; this required simultaneous fatty acid synthase (FASN) inhibition when FASN expression was also elevated. Collectively, our findings implicate fatty acid acquisition as a possible therapeutic target in melanoma, and the methods we developed for monitoring fatty acid uptake have potential for diagnosis, patient stratification, and monitoring pharmacologic response. Significance: These findings demonstrate the translational potential of monitoring fatty acid uptake and identify lipoprotein lipase as a potential therapeutic target in melanoma.
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