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PMID: 27281560 Published · ppublish English Journal Article

Inhibition of SOAT1 Suppresses Glioblastoma Growth via Blocking SREBP-1-Mediated Lipogenesis.

Geng F, Cheng X, Wu X, Yoo JY, Cheng C, Guo JY, Mo X, Ru P, Hurwitz B, Kim SH, Otero J, Puduvalli V, Lefai E, Ma J, Nakano I, Horbinski C, Kaur B, Chakravarti A, Guo D

Abstract

Elevated lipogenesis regulated by sterol regulatory element-binding protein-1 (SREBP-1), a transcription factor playing a central role in lipid metabolism, is a novel characteristic of glioblastoma (GBM). The aim of this study was to identify effective approaches to suppress GBM growth by inhibition of SREBP-1. As SREBP activation is negatively regulated by endoplasmic reticulum (ER) cholesterol, we sought to determine whether suppression of sterol O-acyltransferase (SOAT), a key enzyme converting ER cholesterol to cholesterol esters (CE) to store in lipid droplets (LDs), effectively suppressed SREBP-1 and blocked GBM growth. The presence of LDs in glioma patient tumor tissues was analyzed using immunofluorescence, immunohistochemistry, and electronic microscopy. Western blotting and real-time PCR were performed to analyze protein levels and gene expression of GBM cells, respectively. Intracranial GBM xenografts were used to determine the effects of genetically silencing SOAT1 and SREBP-1 on tumor growth. Our study unraveled that cholesterol esterification and LD formation are signature of GBM, and human patients with glioma possess elevated LDs that correlate with GBM progression and poor survival. We revealed that SOAT1 is highly expressed in GBM and functions as a key player in controlling the cholesterol esterification and storage in GBM. Targeting SOAT1 suppresses GBM growth and prolongs survival in xenograft models via inhibition of SREBP-1-regulated lipid synthesis. Cholesterol esterification and storage in LDs are novel characteristics of GBM, and inhibiting SOAT1 to block cholesterol esterification is a promising therapeutic strategy to treat GBM by suppressing SREBP-1. Clin Cancer Res; 22(21); 5337-48. ©2016 AACR.

MeSH Terms
Adolescent Adult Aged Aged, 80 and over Animals Antineoplastic Agents/pharmacology Cell Line, Tumor Cell Proliferation/drug effects Cholesterol/metabolism Endoplasmic Reticulum/drug effects,metabolism Female Gene Expression Regulation/drug effects Glioblastoma/drug therapy,metabolism Glioma/drug therapy,metabolism Humans Lipid Metabolism/drug effects Lipogenesis/drug effects Male Mice Mice, Nude Middle Aged Sterol O-Acyltransferase/antagonists & inhibitors Sterol Regulatory Element Binding Protein 1/antagonists & inhibitors Young Adult
Chemicals
Antineoplastic Agents SREBF1 protein, human Sterol Regulatory Element Binding Protein 1 Cholesterol Sterol O-Acyltransferase sterol O-acyltransferase 1
Authors & Affiliations
19 authors, click to expand affiliations / ORCID
Geng Feng
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Cheng Xiang
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Wu Xiaoning
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Yoo Ji Young
Department of Neurosurgery, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Cheng Chunming
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Guo Jeffrey Yunhua
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Mo Xiaokui
Center for Biostatistics, Department of Biomedical Informatics, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Ru Peng
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Hurwitz Brian
Department of Neurosurgery, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Kim Sung-Hak
Department of Neurosurgery at University Alabama at Birmingham, Alabama.
Otero Jose
Department of Pathology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Puduvalli Vinay
Department of Neurosurgery, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Lefai Etienne
CarMeN Laboratory, INSERM U1060, INRA 1397, Faculté de Médecine Lyon Sud, University de Lyon, Oullins, France.
Ma Jianjie
Department of Surgery, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Nakano Ichiro
Department of Neurosurgery at University Alabama at Birmingham, Alabama.
Horbinski Craig
Departments of Pathology and Neurosurgery at Northwestern University, Chicago, Illinois.
Kaur Balveen
Department of Neurosurgery, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Chakravarti Arnab
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio.
Guo Deliang
Department of Radiation Oncology, James Comprehensive Cancer Center & Arthur G James Cancer Hospital, The Ohio State Medical Center, Columbus, Ohio. deliang.guo@osumc.edu.
Conflict of Interest

The authors declare that there are no any conflicts of interest for this manuscript.

References (48)
48 references, click to expand
  1. Combined analysis of oligonucleotide microarray data from transgenic and knockout mice identifies direct SREBP target genes.
    Proc Natl Acad Sci U S A. 2003 Oct 14;100(21):12027-32 PMID: 14512514
  2. Lipid metabolism emerges as a promising target for malignant glioma therapy.
    CNS Oncol. 2013 May;2(3):289-99 PMID: 24159371
  3. Insulin activates human sterol-regulatory-element-binding protein-1c (SREBP-1c) promoter through SRE motifs.
    Biochem J. 2006 Nov 15;400(1):179-88 PMID: 16831124
  4. Acyl-coenzyme A: cholesterol acyltransferase inhibitor Avasimibe affect survival and proliferation of glioma tumor cell lines.
    Cancer Biol Ther. 2010 Jun 15;9(12):1025-32 PMID: 20404512
  5. Protein sensors for membrane sterols.
    Cell. 2006 Jan 13;124(1):35-46 PMID: 16413480
  6. Relationship between oxygen and glucose consumption by transplanted tumors in vivo.
    Cancer Res. 1967 Jun;27(6):1041-52 PMID: 4290858
  7. ImmunoRatio: a publicly available web application for quantitative image analysis of estrogen receptor (ER), progesterone receptor (PR), and Ki-67.
    Breast Cancer Res. 2010;12(4):R56 PMID: 20663194
  8. Autophagy regulates lipid metabolism.
    Nature. 2009 Apr 30;458(7242):1131-5 PMID: 19339967
  9. Sterol regulation of acetyl coenzyme A carboxylase promoter requires two interdependent binding sites for sterol regulatory element binding proteins.
    J Lipid Res. 1997 Aug;38(8):1630-8 PMID: 9300785
  10. Sterol regulatory element binding protein-dependent regulation of lipid synthesis supports cell survival and tumor growth.
    Cancer Metab. 2013 Jan 23;1(1):3 PMID: 24280005
  11. SapC-DOPS-induced lysosomal cell death synergizes with TMZ in glioblastoma.
    Oncotarget. 2014 Oct 30;5(20):9703-9 PMID: 25210852
  12. AMPK: A metabolic checkpoint that regulates the growth of EGFR activated glioblastomas.
    Cell Cycle. 2010 Jan 15;9(2):211-2 PMID: 20023392
  13. Effective treatment of an orthotopic xenograft model of human glioblastoma using an EGFR-retargeted oncolytic herpes simplex virus.
    Mol Ther. 2013 Mar;21(3):561-9 PMID: 23070115
  14. Malignant gliomas in adults.
    N Engl J Med. 2008 Jul 31;359(5):492-507 PMID: 18669428
  15. Disposition of intracellular cholesterol in human fibroblasts.
    J Lipid Res. 1991 Feb;32(2):329-39 PMID: 2066666
  16. Roles of acyl-coenzyme A:cholesterol acyltransferase-1 and -2.
    Curr Opin Lipidol. 2001 Jun;12(3):289-96 PMID: 11353332
  17. EGFR signaling through an Akt-SREBP-1-dependent, rapamycin-resistant pathway sensitizes glioblastomas to antilipogenic therapy.
    Sci Signal. 2009 Dec 15;2(101):ra82 PMID: 20009104
  18. Glucose-Mediated N-glycosylation of SCAP Is Essential for SREBP-1 Activation and Tumor Growth.
    Cancer Cell. 2015 Nov 9;28(5):569-81 PMID: 26555173
  19. Systemic delivery of SapC-DOPS has antiangiogenic and antitumor effects against glioblastoma.
    Mol Ther. 2013 Aug;21(8):1517-25 PMID: 23732993
  20. Inhibitors of acyl-CoA: cholesterol O-acyl transferase (ACAT) as hypocholesterolemic agents. CI-1011: an acyl sulfamate with unique cholesterol-lowering activity in animals fed noncholesterol-supplemented diets.
    J Med Chem. 1996 Dec 20;39(26):5031-4 PMID: 8978833
  21. Dietary fatty acids regulate acyl-CoA:cholesterol acyltransferase and cytosolic cholesteryl ester hydrolase in hamsters.
    J Nutr. 2004 Dec;134(12):3239-44 PMID: 15570019
  22. Effects of the acyl coenzyme A:cholesterol acyltransferase inhibitor avasimibe on human atherosclerotic lesions.
    Circulation. 2004 Nov 23;110(21):3372-7 PMID: 15533865
  23. Targeting SREBP-1-driven lipid metabolism to treat cancer.
    Curr Pharm Des. 2014;20(15):2619-26 PMID: 23859617
  24. SCAP links glucose to lipid metabolism in cancer cells.
    Mol Cell Oncol. 2016;3(2): PMID: 27065222
  25. The enhanced tumorigenic activity of a mutant epidermal growth factor receptor common in human cancers is mediated by threshold levels of constitutive tyrosine phosphorylation and unattenuated signaling.
    J Biol Chem. 1997 Jan 31;272(5):2927-35 PMID: 9006938
  26. An LXR agonist promotes glioblastoma cell death through inhibition of an EGFR/AKT/SREBP-1/LDLR-dependent pathway.
    Cancer Discov. 2011 Oct;1(5):442-56 PMID: 22059152
  27. Integrative analysis of complex cancer genomics and clinical profiles using the cBioPortal.
    Sci Signal. 2013 Apr 02;6(269):pl1 PMID: 23550210
  28. CAR-Engineered NK Cells Targeting Wild-Type EGFR and EGFRvIII Enhance Killing of Glioblastoma and Patient-Derived Glioblastoma Stem Cells.
    Sci Rep. 2015 Jul 09;5:11483 PMID: 26155832
  29. Topology of SREBP cleavage-activating protein, a polytopic membrane protein with a sterol-sensing domain.
    J Biol Chem. 1998 Jul 3;273(27):17243-50 PMID: 9642295
  30. Membrane lipids: where they are and how they behave.
    Nat Rev Mol Cell Biol. 2008 Feb;9(2):112-24 PMID: 18216768
  31. Quantitative metabolome profiling of colon and stomach cancer microenvironment by capillary electrophoresis time-of-flight mass spectrometry.
    Cancer Res. 2009 Jun 1;69(11):4918-25 PMID: 19458066
  32. Transcriptional regulation of the murine acetyl-CoA synthetase 1 gene through multiple clustered binding sites for sterol regulatory element-binding proteins and a single neighboring site for Sp1.
    J Biol Chem. 2001 Sep 7;276(36):34259-69 PMID: 11435428
  33. Cholesterol sensing, trafficking, and esterification.
    Annu Rev Cell Dev Biol. 2006;22:129-57 PMID: 16753029
  34. Cholesterol is required for efficient endoplasmic reticulum-to-Golgi transport of secretory membrane proteins.
    Mol Biol Cell. 2006 Apr;17(4):1593-605 PMID: 16452637
  35. SREBPs: activators of the complete program of cholesterol and fatty acid synthesis in the liver.
    J Clin Invest. 2002 May;109(9):1125-31 PMID: 11994399
  36. Immunological quantitation and localization of ACAT-1 and ACAT-2 in human liver and small intestine.
    J Biol Chem. 2000 Sep 8;275(36):28083-92 PMID: 10846185
  37. Tumor metabolism of malignant gliomas.
    Cancers (Basel). 2013 Nov 08;5(4):1469-84 PMID: 24217114
  38. Switch-like control of SREBP-2 transport triggered by small changes in ER cholesterol: a delicate balance.
    Cell Metab. 2008 Dec;8(6):512-21 PMID: 19041766
  39. Inhibition of ACAT by avasimibe decreases both VLDL and LDL apolipoprotein B production in miniature pigs.
    J Lipid Res. 1999 Jul;40(7):1317-27 PMID: 10393217
  40. The cBio cancer genomics portal: an open platform for exploring multidimensional cancer genomics data.
    Cancer Discov. 2012 May;2(5):401-4 PMID: 22588877
  41. An essential requirement for the SCAP/SREBP signaling axis to protect cancer cells from lipotoxicity.
    Cancer Res. 2013 May 1;73(9):2850-62 PMID: 23440422
  42. Characterization of two human genes encoding acyl coenzyme A:cholesterol acyltransferase-related enzymes.
    J Biol Chem. 1998 Oct 9;273(41):26765-71 PMID: 9756920
  43. Fatty acid synthase and the lipogenic phenotype in cancer pathogenesis.
    Nat Rev Cancer. 2007 Oct;7(10):763-77 PMID: 17882277
  44. The life of lipid droplets.
    Biochim Biophys Acta. 2009 Jun;1791(6):459-66 PMID: 19041421
  45. Signaling through cholesterol esterification: a new pathway for the cholecystokinin 2 receptor involved in cell growth and invasion.
    J Lipid Res. 2009 Nov;50(11):2203-11 PMID: 19502590
  46. Metabolism of [U-13 C]glucose in human brain tumors in vivo.
    NMR Biomed. 2012 Nov;25(11):1234-44 PMID: 22419606
  47. Lipid droplet breakdown requires dynamin 2 for vesiculation of autolysosomal tubules in hepatocytes.
    J Cell Biol. 2013 Oct 28;203(2):315-26 PMID: 24145164
  48. The AMPK agonist AICAR inhibits the growth of EGFRvIII-expressing glioblastomas by inhibiting lipogenesis.
    Proc Natl Acad Sci U S A. 2009 Aug 4;106(31):12932-7 PMID: 19625624
Article Info
Journal
Clinical cancer research : an official journal of the American Association for Cancer Research
Abbr.
Clin Cancer Res
ISSN
1557-3265
Published
2016-11-01
Epub
2016-00-08
Pages
5337-5348
Language
English
Region
United States
NLM ID
9502500
PMCID
PMC5093025
Subset
IM
Grants
NCI NIH HHS · R01 CA150153 · United States
NINDS NIH HHS · R21 NS072838 · United States
NINDS NIH HHS · R01 NS079701 · United States
NINDS NIH HHS · P30 NS045758 · United States
NCI NIH HHS · K08 CA155764 · United States
NCI NIH HHS · P30 CA016058 · United States
NCI NIH HHS · P01 CA163205 · United States
NIH HHS · S10 OD010383 · United States
Corrections
ErratumIn
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