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PMID: 22880048 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

BRAFV600E negatively regulates the AKT pathway in melanoma cell lines.

PloS one ·Vol. 7 ·No. 8 ·2012-00-00 ·Pages e42598

Chen B, Tardell C, Higgins B, Packman K, Boylan JF, Niu H

Abstract

Cross-feedback activation of MAPK and AKT pathways is implicated as a resistance mechanism for cancer therapeutic agents targeting either RAF/MEK or PI3K/AKT/mTOR. It is thus important to have a better understanding of the molecular resistance mechanisms to improve patient survival benefit from these agents. Here we show that BRAFV600E is a negative regulator of the AKT pathway. Expression of BRAFV600E in NIH3T3 cells significantly suppresses MEK inhibitor (RG7167) or mTORC1 inhibitor (rapamycin) induced AKT phosphorylation (pAKT) and downstream signal activation. Treatment-induced pAKT elevation is found in BRAF wild type melanoma cells but not in a subset of melanoma cell lines harboring BRAFV600E. Knock-down of BRAFV600E in these melanoma cells elevates basal pAKT and downstream signals, whereas knock-down of CRAF, MEK1/2 or ERK1/2 or treatment with a BRAF inhibitor have no impact on pAKT. Mechanistically, we show that BRAFV600E interacts with rictor complex (mTORC2) and regulates pAKT through mTORC2. BRAFV600E is identified in mTORC2 after immunoprecipitation of rictor. Knock-down of rictor abrogates BRAFV600E depletion induced pAKT. Knock-down of BRAFV600E enhances cellular enzyme activity of mTORC2. Aberrant activation of AKT pathway by PTEN loss appears to override the negative impact of BRAFV600E on pAKT. Taken together, our findings suggest that in a subset of BRAFV600E melanoma cells, BRAFV600E negatively regulates AKT pathway in a rictor-dependent, MEK/ERK and BRAF kinase-independent manner. Our study reveals a novel molecular mechanism underlying the regulation of feedback loops between the MAPK and AKT pathways.

MeSH Terms
Amino Acid Substitution/genetics Animals Carrier Proteins/metabolism Cell Line, Tumor Enzyme Activation/drug effects Extracellular Signal-Regulated MAP Kinases/metabolism Humans Melanoma/enzymology,genetics,pathology Mice Mitogen-Activated Protein Kinase Kinases/antagonists & inhibitors,metabolism Models, Biological Mutation/genetics NIH 3T3 Cells Phosphorylation/drug effects Protein Kinase Inhibitors/pharmacology Proto-Oncogene Proteins B-raf/genetics Proto-Oncogene Proteins c-akt/metabolism Rapamycin-Insensitive Companion of mTOR Protein Signal Transduction/drug effects,genetics Sirolimus/pharmacology
Chemicals
Carrier Proteins Protein Kinase Inhibitors RICTOR protein, human Rapamycin-Insensitive Companion of mTOR Protein BRAF protein, human Proto-Oncogene Proteins B-raf Proto-Oncogene Proteins c-akt Extracellular Signal-Regulated MAP Kinases Mitogen-Activated Protein Kinase Kinases Sirolimus
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Chen Brenden
Discovery Oncology, Hoffmann-La Roche Inc, Nutley, New Jersey, United States of America.
Tardell Christine
Higgins Brian
Packman Kathryn
Boylan John F
Niu Huifeng
References (41)
41 references, click to expand
  1. BRAF mutation predicts sensitivity to MEK inhibition.
    Nature. 2006 Jan 19;439(7074):358-62 PMID: 16273091
  2. mTOR signaling in growth control and disease.
    Cell. 2012 Apr 13;149(2):274-93 PMID: 22500797
  3. Basal subtype and MAPK/ERK kinase (MEK)-phosphoinositide 3-kinase feedback signaling determine susceptibility of breast cancer cells to MEK inhibition.
    Cancer Res. 2009 Jan 15;69(2):565-72 PMID: 19147570
  4. mTOR is activated in the majority of malignant melanomas.
    J Invest Dermatol. 2008 Apr;128(4):980-7 PMID: 17914450
  5. Phase II, open-label, randomized trial of the MEK1/2 inhibitor selumetinib as monotherapy versus temozolomide in patients with advanced melanoma.
    Clin Cancer Res. 2012 Jan 15;18(2):555-67 PMID: 22048237
  6. S6K1 regulates GSK3 under conditions of mTOR-dependent feedback inhibition of Akt.
    Mol Cell. 2006 Oct 20;24(2):185-97 PMID: 17052453
  7. Targeting the Raf/MEK/ERK pathway with small-molecule inhibitors.
    Curr Opin Investig Drugs. 2008 Jun;9(6):614-30 PMID: 18516761
  8. Improved survival with vemurafenib in melanoma with BRAF V600E mutation.
    N Engl J Med. 2011 Jun 30;364(26):2507-16 PMID: 21639808
  9. Somatic mutation of the Peutz-Jeghers syndrome gene, LKB1/STK11, in malignant melanoma.
    Oncogene. 1999 Mar 4;18(9):1777-80 PMID: 10208439
  10. Raf-1 promotes cell survival by antagonizing apoptosis signal-regulating kinase 1 through a MEK-ERK independent mechanism.
    Proc Natl Acad Sci U S A. 2001 Jul 3;98(14):7783-8 PMID: 11427728
  11. A MEK-independent role for CRAF in mitosis and tumor progression.
    Nat Med. 2011 Nov 13;17(12):1641-5 PMID: 22081024
  12. Kinase-dead BRAF and oncogenic RAS cooperate to drive tumor progression through CRAF.
    Cell. 2010 Jan 22;140(2):209-21 PMID: 20141835
  13. Acquired resistance to BRAF inhibitors mediated by a RAF kinase switch in melanoma can be overcome by cotargeting MEK and IGF-1R/PI3K.
    Cancer Cell. 2010 Dec 14;18(6):683-95 PMID: 21156289
  14. The safety, tolerability, pharmacokinetics, and pharmacodynamics of single oral doses of CH4987655 in healthy volunteers: target suppression using a biomarker.
    Clin Cancer Res. 2009 Dec 1;15(23):7368-74 PMID: 19934286
  15. Phosphorylation and functional inactivation of TSC2 by Erk implications for tuberous sclerosis and cancer pathogenesis.
    Cell. 2005 Apr 22;121(2):179-93 PMID: 15851026
  16. Braf(V600E) cooperates with Pten loss to induce metastatic melanoma.
    Nat Genet. 2009 May;41(5):544-52 PMID: 19282848
  17. Akt as a therapeutic target in cancer.
    Expert Opin Ther Targets. 2008 Sep;12(9):1139-65 PMID: 18694380
  18. Receptor tyrosine kinases and their activation in melanoma.
    Pigment Cell Melanoma Res. 2011 Jun;24(3):446-61 PMID: 21320293
  19. Uncoupling of the LKB1-AMPKalpha energy sensor pathway by growth factors and oncogenic BRAF.
    PLoS One. 2009;4(3):e4771 PMID: 19274086
  20. BRAFE600-associated senescence-like cell cycle arrest of human naevi.
    Nature. 2005 Aug 4;436(7051):720-4 PMID: 16079850
  21. Protein kinase B kinases that mediate phosphatidylinositol 3,4,5-trisphosphate-dependent activation of protein kinase B.
    Science. 1998 Jan 30;279(5351):710-4 PMID: 9445477
  22. High frequency of BRAF mutations in nevi.
    Nat Genet. 2003 Jan;33(1):19-20 PMID: 12447372
  23. Inhibition of mTORC1 leads to MAPK pathway activation through a PI3K-dependent feedback loop in human cancer.
    J Clin Invest. 2008 Sep;118(9):3065-74 PMID: 18725988
  24. Melanomas acquire resistance to B-RAF(V600E) inhibition by RTK or N-RAS upregulation.
    Nature. 2010 Dec 16;468(7326):973-7 PMID: 21107323
  25. Regulation of Raf-1 by direct feedback phosphorylation.
    Mol Cell. 2005 Jan 21;17(2):215-24 PMID: 15664191
  26. Feedback mechanisms promote cooperativity for small molecule inhibitors of epidermal and insulin-like growth factor receptors.
    Cancer Res. 2008 Oct 15;68(20):8322-32 PMID: 18922904
  27. Oncogenic B-RAF negatively regulates the tumor suppressor LKB1 to promote melanoma cell proliferation.
    Mol Cell. 2009 Jan 30;33(2):237-47 PMID: 19187764
  28. Amplification of the driving oncogene, KRAS or BRAF, underpins acquired resistance to MEK1/2 inhibitors in colorectal cancer cells.
    Sci Signal. 2011 Mar 29;4(166):ra17 PMID: 21447798
  29. Mutations of the BRAF gene in human cancer.
    Nature. 2002 Jun 27;417(6892):949-54 PMID: 12068308
  30. BRAF gene amplification can promote acquired resistance to MEK inhibitors in cancer cells harboring the BRAF V600E mutation.
    Sci Signal. 2010 Nov 23;3(149):ra84 PMID: 21098728
  31. Mitogen-activated protein kinase feedback phosphorylation regulates MEK1 complex formation and activation during cellular adhesion.
    Mol Cell Biol. 2004 Mar;24(6):2308-17 PMID: 14993270
  32. Induction of autophagy and inhibition of melanoma growth in vitro and in vivo by hyperactivation of oncogenic BRAF.
    J Invest Dermatol. 2010 Jun;130(6):1657-67 PMID: 20182446
  33. RAF inhibitors transactivate RAF dimers and ERK signalling in cells with wild-type BRAF.
    Nature. 2010 Mar 18;464(7287):427-30 PMID: 20179705
  34. COT drives resistance to RAF inhibition through MAP kinase pathway reactivation.
    Nature. 2010 Dec 16;468(7326):968-72 PMID: 21107320
  35. Oncogenic Braf induces melanocyte senescence and melanoma in mice.
    Cancer Cell. 2009 Apr 7;15(4):294-303 PMID: 19345328
  36. Expression of activated Akt and PTEN in malignant melanomas: relationship with clinical outcome.
    Am J Clin Pathol. 2005 Oct;124(4):528-36 PMID: 16146807
  37. mTOR inhibition induces upstream receptor tyrosine kinase signaling and activates Akt.
    Cancer Res. 2006 Feb 1;66(3):1500-8 PMID: 16452206
  38. MEK1 mutations confer resistance to MEK and B-RAF inhibition.
    Proc Natl Acad Sci U S A. 2009 Dec 1;106(48):20411-6 PMID: 19915144
  39. RAF inhibitors prime wild-type RAF to activate the MAPK pathway and enhance growth.
    Nature. 2010 Mar 18;464(7287):431-5 PMID: 20130576
  40. Identification of the MEK1(F129L) activating mutation as a potential mechanism of acquired resistance to MEK inhibition in human cancers carrying the B-RafV600E mutation.
    Cancer Res. 2011 Aug 15;71(16):5535-45 PMID: 21705440
  41. Phosphorylation and regulation of Akt/PKB by the rictor-mTOR complex.
    Science. 2005 Feb 18;307(5712):1098-101 PMID: 15718470
Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2012-00-00
Epub
2012-00-03
Pages
e42598
Language
English
Region
United States
NLM ID
101285081
PMCID
PMC3411810
Subset
IM
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