Home LiteratureArticle Details
PMID: 26857837 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Co-activation of AKT and c-Met triggers rapid hepatocellular carcinoma development via the mTORC1/FASN pathway in mice.

Scientific reports ·Vol. 6 ·2016-02-09 ·Pages 20484

Hu J, Che L, Li L, Pilo MG, Cigliano A, Ribback S, Li X, Latte G, Mela M, Evert M, Dombrowski F, Zheng G, Chen X, Calvisi DF

Abstract

Activation of the AKT/mTOR cascade and overexpression of c-Met have been implicated in the development of human hepatocellular carcinoma (HCC). To elucidate the functional crosstalk between the two pathways, we generated a model characterized by the combined expression of activated AKT and c-Met in the mouse liver. Co-expression of AKT and c-Met triggered rapid liver tumor development and mice required to be euthanized within 8 weeks after hydrodynamic injection. At the molecular level, liver tumors induced by AKT/c-Met display activation of AKT/mTOR and Ras/MAPK cascades as well as increased lipogenesis and glycolysis. Since a remarkable lipogenic phenotype characterizes liver lesions from AKT/c-Met mice, we determined the requirement of lipogenesis in AKT/c-Met driven hepatocarcinogenesis using conditional Fatty Acid Synthase (FASN) knockout mice. Of note, hepatocarcinogenesis induced by AKT/c-Met was fully inhibited by FASN ablation. In human HCC samples, coordinated expression of FASN, activated AKT, and c-Met proteins was detected in a subgroup of biologically aggressive tumors. Altogether, our study demonstrates that co-activation of AKT and c-Met induces HCC development that depends on the mTORC1/FASN pathway. Suppression of mTORC1 and/or FASN might be highly detrimental for the growth of human HCC subsets characterized by concomitant induction of the AKT and c-Met cascades.

MeSH Terms
Animals Carcinoma, Hepatocellular/genetics,metabolism,pathology Enzyme Activation Fatty Acid Synthase, Type I/genetics,metabolism Humans Liver Neoplasms/genetics,metabolism,pathology Mechanistic Target of Rapamycin Complex 1 Mice Mice, Knockout Multiprotein Complexes/genetics,metabolism Proto-Oncogene Proteins c-akt/genetics,metabolism Proto-Oncogene Proteins c-met/genetics,metabolism Signal Transduction TOR Serine-Threonine Kinases/genetics,metabolism
Chemicals
Multiprotein Complexes Fatty Acid Synthase, Type I Proto-Oncogene Proteins c-met Mechanistic Target of Rapamycin Complex 1 Proto-Oncogene Proteins c-akt TOR Serine-Threonine Kinases
Authors & Affiliations
14 authors, click to expand affiliations / ORCID
Hu Junjie
School of Pharmacy, Hubei University of Chinese Medicine, Wuhan, Hubei, P.R. China. | Department of Bioengineering and Therapeutic Sciences and Liver Center, University of California, San Francisco, CA, USA.
Che Li
Department of Bioengineering and Therapeutic Sciences and Liver Center, University of California, San Francisco, CA, USA. | Key Laboratory of Carcinogenesis and Translational Research (Ministry of Education), Peking University Cancer Hospital and Institute, Beijing, P. R. China.
Li Lei
Department of Bioengineering and Therapeutic Sciences and Liver Center, University of California, San Francisco, CA, USA. | School of Pharmacy, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, Hubei, P. R. China.
Pilo Maria G
Department of Clinical and Experimental Medicine, University of Sassari, Sassari, Italy.
Cigliano Antonio
Institute of Pathology, University of Greifswald, Greifswald, Germany.
Ribback Silvia
Institute of Pathology, University of Greifswald, Greifswald, Germany.
Li Xiaolei
Department of Bioengineering and Therapeutic Sciences and Liver Center, University of California, San Francisco, CA, USA. | Department of Hepatobiliary Surgery, Xijing Hospital, The Fourth Military Medical University, Xi'an, Shaanxi, P.R. China.
Latte Gavinella
Department of Clinical and Experimental Medicine, University of Sassari, Sassari, Italy.
Mela Marta
Department of Clinical and Experimental Medicine, University of Sassari, Sassari, Italy.
Evert Matthias
Institute of Pathology, University of Regensburg, Regensburg, Germany.
Dombrowski Frank
Institute of Pathology, University of Greifswald, Greifswald, Germany.
Zheng Guohua
School of Pharmacy, Hubei University of Chinese Medicine, Wuhan, Hubei, P.R. China.
Chen Xin
School of Pharmacy, Hubei University of Chinese Medicine, Wuhan, Hubei, P.R. China. | Department of Bioengineering and Therapeutic Sciences and Liver Center, University of California, San Francisco, CA, USA.
Calvisi Diego F
Department of Clinical and Experimental Medicine, University of Sassari, Sassari, Italy.
References (41)
41 references, click to expand
  1. Management of hepatocellular carcinoma: an update.
    Hepatology. 2011 Mar;53(3):1020-2 PMID: 21374666
  2. Osthole suppresses hepatocyte growth factor (HGF)-induced epithelial-mesenchymal transition via repression of the c-Met/Akt/mTOR pathway in human breast cancer cells.
    J Agric Food Chem. 2011 Sep 14;59(17):9683-90 PMID: 21806057
  3. The inhibitory effect of (-)-epigallocatechin gallate on activation of the epidermal growth factor receptor is associated with altered lipid order in HT29 colon cancer cells.
    Cancer Res. 2007 Jul 1;67(13):6493-501 PMID: 17616711
  4. Lipid rafts and caveolae in signaling by growth factor receptors.
    Open Biochem J. 2007;1:12-32 PMID: 18949068
  5. Association between nonalcoholic fatty liver disease and risk for hepatocellular cancer, based on systematic review.
    Clin Gastroenterol Hepatol. 2012 Dec;10(12):1342-1359.e2 PMID: 23041539
  6. Treatment of hepatocellular carcinoma.
    Dig Dis. 2014;32(5):554-63 PMID: 25034288
  7. Functions of lipid rafts in biological membranes.
    Annu Rev Cell Dev Biol. 1998;14:111-36 PMID: 9891780
  8. Inhibition of fatty acid synthase suppresses c-Met receptor kinase and induces apoptosis in diffuse large B-cell lymphoma.
    Mol Cancer Ther. 2010 May;9(5):1244-55 PMID: 20423996
  9. Targeting the mTOR pathway in hepatocellular carcinoma: current state and future trends.
    J Hepatol. 2014 Apr;60(4):855-65 PMID: 24308993
  10. Distinct pathways of genomic progression to benign and malignant tumors of the liver.
    Proc Natl Acad Sci U S A. 2007 Sep 11;104(37):14771-6 PMID: 17785413
  11. The multifaceted role of mTORC1 in the control of lipid metabolism.
    EMBO Rep. 2013 Mar 1;14(3):242-51 PMID: 23399656
  12. AKT (v-akt murine thymoma viral oncogene homolog 1) and N-Ras (neuroblastoma ras viral oncogene homolog) coactivation in the mouse liver promotes rapid carcinogenesis by way of mTOR (mammalian target of rapamycin complex 1), FOXM1 (forkhead box M1)/SKP2, and c-Myc pathways.
    Hepatology. 2012 Mar;55(3):833-45 PMID: 21993994
  13. p53-dependent Nestin regulation links tumor suppression to cellular plasticity in liver cancer.
    Cell. 2014 Jul 31;158(3):579-92 PMID: 25083869
  14. Increased lipogenesis, induced by AKT-mTORC1-RPS6 signaling, promotes development of human hepatocellular carcinoma.
    Gastroenterology. 2011 Mar;140(3):1071-83 PMID: 21147110
  15. The effect of polyunsaturated fatty acids on obesity through epigenetic modifications.
    Endocrinol Nutr. 2015 Aug-Sep;62(7):338-49 PMID: 26003266
  16. Inhibition of fatty acid synthase by luteolin post-transcriptionally down-regulates c-Met expression independent of proteosomal/lysosomal degradation.
    Mol Cancer Ther. 2009 Jan;8(1):214-24 PMID: 19139131
  17. Hallmarks of cancer: the next generation.
    Cell. 2011 Mar 4;144(5):646-74 PMID: 21376230
  18. Identification of AKT kinases as unfavorable prognostic factors for hepatocellular carcinoma by a combination of expression profile, interaction network analysis and clinical validation.
    Mol Biosyst. 2014 Feb;10(2):215-22 PMID: 24247267
  19. Hypoxic and Ras-transformed cells support growth by scavenging unsaturated fatty acids from lysophospholipids.
    Proc Natl Acad Sci U S A. 2013 May 28;110(22):8882-7 PMID: 23671091
  20. "New" hepatic fat activates PPARalpha to maintain glucose, lipid, and cholesterol homeostasis.
    Cell Metab. 2005 May;1(5):309-22 PMID: 16054078
  21. The diagnosis and treatment of hepatocellular carcinoma.
    Dtsch Arztebl Int. 2014 Feb 14;111(7):101-6 PMID: 24622679
  22. Inactivation of fatty acid synthase impairs hepatocarcinogenesis driven by AKT in mice and humans.
    J Hepatol. 2016 Feb;64(2):333-41 PMID: 26476289
  23. Expression and prognostic value of VEGFR-2, PDGFR-β, and c-Met in advanced hepatocellular carcinoma.
    J Exp Clin Cancer Res. 2013;32:16 PMID: 23552472
  24. Dual roles for glucokinase in glucose homeostasis as determined by liver and pancreatic beta cell-specific gene knock-outs using Cre recombinase.
    J Biol Chem. 1999 Jan 1;274(1):305-15 PMID: 9867845
  25. Met as a therapeutic target in HCC: facts and hopes.
    J Hepatol. 2014 Feb;60(2):442-52 PMID: 24045150
  26. Activation of the Met receptor by cell attachment induces and sustains hepatocellular carcinomas in transgenic mice.
    J Cell Biol. 2001 May 28;153(5):1023-34 PMID: 11381087
  27. Targeting the PI3K/Akt/mTOR pathway in hepatocellular carcinoma.
    Future Oncol. 2011 Oct;7(10):1149-67 PMID: 21992728
  28. MET signalling: principles and functions in development, organ regeneration and cancer.
    Nat Rev Mol Cell Biol. 2010 Dec;11(12):834-48 PMID: 21102609
  29. Specific fate decisions in adult hepatic progenitor cells driven by MET and EGFR signaling.
    Genes Dev. 2013 Aug 1;27(15):1706-17 PMID: 23913923
  30. Fatty acid synthase as a potential therapeutic target in cancer.
    Future Oncol. 2010 Apr;6(4):551-62 PMID: 20373869
  31. NAFLD, NASH and liver cancer.
    Nat Rev Gastroenterol Hepatol. 2013 Nov;10(11):656-65 PMID: 24080776
  32. Pharmacogenetics of obesity drug therapy.
    Curr Mol Med. 2014;14(7):891-908 PMID: 25109792
  33. MET: a promising anticancer therapeutic target.
    Nat Rev Clin Oncol. 2012 Jun;9(6):314-26 PMID: 22566105
  34. Hydrodynamic transfection for generation of novel mouse models for liver cancer research.
    Am J Pathol. 2014 Apr;184(4):912-23 PMID: 24480331
  35. Tumours of the liver.
    IARC Sci Publ. 1994;(111):223-69 PMID: 8082908
  36. Global cancer statistics.
    CA Cancer J Clin. 2011 Mar-Apr;61(2):69-90 PMID: 21296855
  37. DEPTOR is an mTOR inhibitor frequently overexpressed in multiple myeloma cells and required for their survival.
    Cell. 2009 May 29;137(5):873-86 PMID: 19446321
  38. Synergistic role of Sprouty2 inactivation and c-Met up-regulation in mouse and human hepatocarcinogenesis.
    Hepatology. 2010 Aug;52(2):506-17 PMID: 20683950
  39. Hepatocellular carcinoma.
    N Engl J Med. 2011 Sep 22;365(12):1118-27 PMID: 21992124
  40. Fatty acid synthase and the lipogenic phenotype in cancer pathogenesis.
    Nat Rev Cancer. 2007 Oct;7(10):763-77 PMID: 17882277
  41. SKP2 cooperates with N-Ras or AKT to induce liver tumor development in mice.
    Oncotarget. 2015 Feb 10;6(4):2222-34 PMID: 25537506
Article Info
Journal
Scientific reports
Abbr.
Sci Rep
ISSN
2045-2322
Published
2016-02-09
Epub
2016-00-09
Pages
20484
Language
English
Region
England
NLM ID
101563288
PMCID
PMC4746674
Subset
IM
Grants
NIDDK NIH HHS · P30DK026743 · United States
NCI NIH HHS · R03CA165122 · United States
NCI NIH HHS · R01CA136606 · United States
NIDDK NIH HHS · P30 DK026743 · United States
NCI NIH HHS · R03 CA165122 · United States
NCI NIH HHS · R01 CA136606 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com