Caveolin-1 and mitochondrial SOD2 (MnSOD) function as tumor suppressors in the stromal microenvironment A new genetically tractable model for human cancer associated fibroblasts

被引:97
作者
Trimmer, Casey [1 ,2 ,3 ]
Sotgia, Federica [1 ,2 ,3 ,6 ,7 ]
Whitaker-Menezes, Diana [1 ,2 ,3 ]
Balliet, Renee M. [1 ,2 ,3 ]
Eaton, Gregory [1 ,2 ,3 ]
Martinez-Outschoorn, Ubaldo E. [1 ,2 ,3 ,4 ]
Pavlides, Stephanos [1 ,2 ,3 ]
Howell, Anthony [6 ,7 ]
Iozzo, Renato V. [5 ]
Pestell, Richard G. [1 ,2 ,3 ,4 ]
Scherer, Philipp E. [8 ]
Capozza, Franco [1 ,2 ,3 ]
Lisanti, Michael P. [1 ,2 ,3 ,4 ,6 ,7 ]
机构
[1] Thomas Jefferson Univ, Jefferson Stem Cell Biol & Regenerat Med Ctr, Philadelphia, PA 19107 USA
[2] Thomas Jefferson Univ, Dept Stem Cell Biol & Regenerat Med, Philadelphia, PA 19107 USA
[3] Thomas Jefferson Univ, Dept Canc Biol, Philadelphia, PA 19107 USA
[4] Thomas Jefferson Univ, Dept Med Oncol, Philadelphia, PA 19107 USA
[5] Thomas Jefferson Univ, Dept Pathol & Cell Biol, Kimmel Canc Ctr, Philadelphia, PA 19107 USA
[6] Univ Manchester, Manchester Acad Hlth Sci Ctr, Sch Canc, Manchester Breast Ctr,Paterson Inst Canc Res, Manchester, Lancs, England
[7] Univ Manchester, Manchester Acad Hlth Sci Ctr, Sch Canc, Breakthrough Breast Canc Res Unit,Paterson Inst C, Manchester, Lancs, England
[8] Univ Texas SW Med Ctr Dallas, Touchstone Diabet Ctr, Dallas, TX 75390 USA
基金
欧洲研究理事会;
关键词
oxidative stress; caveolin-1; cancer associated fibroblast; triple negative breast cancer; angiogenesis; mitochondria; tumor stroma; superoxide disumutase (SOD2); collagen; 6; (COL6A1; COL6A2); myofibroblast differentiation; OXIDATIVE STRESS; BREAST-CANCER; SUPEROXIDE-DISMUTASE; PROSTATE-CANCER; GENE-EXPRESSION; CALCIUM HOMEOSTASIS; GROWTH; OVEREXPRESSION; CELLS; ACTIVATION;
D O I
10.4161/cbt.11.4.14101
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
We have recently proposed a new model for understanding tumor metabolism, termed: "The Autophagic Tumor Stroma Model of Cancer Metabolism". In this new paradigm, catabolism (autophagy) in the tumor stroma fuels the anabolic growth of aggressive cancer cells. Mechanistically, tumor cells induce autophagy in adjacent cancer-associated fibroblasts via the loss of caveolin-1 (Cav-1), which is sufficient to promote oxidative stress in stromal fibroblasts. To further test this hypothesis, here we created human Cav-1 deficient immortalized fibroblasts using a targeted sh-RNA knock-down approach. Relative to control fibroblasts, Cav-1 deficient fibroblasts dramatically promoted tumor growth in xenograft assays employing an aggressive human breast cancer cell line, namely MDA-MB-231 cells. Co-injection of Cav-1 deficient fibroblasts, with MDA-MB-231 cells, increased both tumor mass and tumor volume by similar to 4-fold. Immuno-staining with CD31 indicated that this paracrine tumor promoting effect was clearly independent of angiogenesis. Mechanistically, proteomic analysis of these human Cav-1 deficient fibroblasts identified >40 protein biomarkers that were upregulated, most of which were associated with (i) myofibroblast differentiation or (ii) oxidative stress/hypoxia. In direct support of these findings, the tumor promoting effects of Cav-1 deficient fibroblasts could be functionally suppressed (nearly 2-fold) by the recombinant overexpression of SOD2 (superoxide dismutase 2), a known mitochondrial enzyme that de-activates superoxide, thereby reducing mitochondrial oxidative stress. In contrast, cytoplasmic soluble SOD1 had no effect, further highlighting a specific role for mitochondrial oxidative stress in this process. In summary, here we provide new evidence directly supporting a key role for a loss of stromal Cav-1 expression and oxidative stress in cancer-associated fibroblasts, in promoting tumor growth, which is consistent with "The Autophagic Tumor Stroma Model of Cancer". The human Cav-1 deficient fibroblasts that we have generated are a new genetically tractable model system for identifying other suppressors of the cancer-associated fibroblast phenotype, via a genetic "complementation" approach. This has important implications for understanding the pathogenesis of triple negative and basal breasts cancers, as well as tamoxifen-resistance in ER-positive breast cancers, which are all associated with a Cav-1 deficient "lethal" tumor microenvironment, driving poor clinical outcome.
引用
收藏
页码:383 / 394
页数:12
相关论文
共 61 条
[11]   Mitochondria: The calcium connection [J].
Contreras, Laura ;
Drago, Ilaria ;
Zampese, Enrico ;
Pozzan, Tullio .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2010, 1797 (6-7) :607-618
[12]   NAD(P)H oxidase 4 mediates transforming growth factor-β1-induced differentiation of cardiac fibroblasts into myofibroblasts [J].
Cucoranu, I ;
Clempus, R ;
Dikalova, A ;
Phelan, PJ ;
Ariyan, S ;
Dikalov, S ;
Sorescu, D .
CIRCULATION RESEARCH, 2005, 97 (09) :900-907
[13]   An absence of stromal caveolin-1 is associated with advanced prostate cancer, metastatic disease and epithelial Akt activation [J].
Di Vizio, Dolores ;
Morello, Matteo ;
Sotgia, Federica ;
Pestell, Richard G. ;
Freeman, Michael R. ;
Lisanti, Michael P. .
CELL CYCLE, 2009, 8 (15) :2420-2424
[14]   MnSOD up-regulates maspin tumor suppressor gene expression in human breast and prostate cancer cells [J].
Duan, H ;
Zhang, HJ ;
Yang, JQ ;
Oberley, LW ;
Futscher, BW ;
Domann, FE .
ANTIOXIDANTS & REDOX SIGNALING, 2003, 5 (05) :677-688
[15]   Stromal gene expression predicts clinical outcome in breast cancer [J].
Finak, Greg ;
Bertos, Nicholas ;
Pepin, Francois ;
Sadekova, Svetlana ;
Souleimanova, Margarita ;
Zhao, Hong ;
Chen, Haiying ;
Omeroglu, Gulbeyaz ;
Meterissian, Sarkis ;
Omeroglu, Atilla ;
Hallett, Michael ;
Park, Morag .
NATURE MEDICINE, 2008, 14 (05) :518-527
[16]   The differentiation and function of myofibroblasts is regulated by mast cell mediators [J].
Gailit, J ;
Marchese, MJ ;
Kew, RR ;
Gruber, BL .
JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2001, 117 (05) :1113-1119
[17]   Dissecting the interaction between nitric oxide synthase (NOS) and caveolin - Functional significance of the NOS caveolin binding domain in vivo [J].
GarciaCardena, G ;
Martasek, P ;
Masters, BSS ;
Skidd, PM ;
Couet, J ;
Li, SW ;
Lisanti, MP ;
Sessa, WC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (41) :25437-25440
[18]   The regulation of OXPHOS by extramitochondrial calcium [J].
Gellerich, Frank N. ;
Gizatullina, Zemfira ;
Trumbeckaite, Sonata ;
Nguyen, Huu P. ;
Pallas, Thilo ;
Arandarcikaite, Odeta ;
Vielhaber, Stephan ;
Seppet, Enn ;
Striggow, Frank .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2010, 1797 (6-7) :1018-1027
[19]   Hypoxia-Inducible Factor 1α Induces Fibrosis and Insulin Resistance in White Adipose Tissue [J].
Halberg, Nils ;
Khan, Tayeba ;
Trujillo, Maria E. ;
Wernstedt-Asterholm, Ingrid ;
Attie, Alan D. ;
Sherwani, Shariq ;
Wang, Zhao V. ;
Landskroner-Eiger, Shira ;
Dineen, Sean ;
Magalang, Ulysses J. ;
Brekken, Rolf A. ;
Scherer, Philipp E. .
MOLECULAR AND CELLULAR BIOLOGY, 2009, 29 (16) :4467-4483
[20]   NADPH oxidase-4 mediates myofibroblast activation and fibrogenic responses to lung injury [J].
Hecker, Louise ;
Vittal, Ragini ;
Jones, Tamara ;
Jagirdar, Rajesh ;
Luckhardt, Tracy R. ;
Horowitz, Jeffrey C. ;
Pennathur, Subramaniam ;
Martinez, Fernando J. ;
Thannickal, Victor J. .
NATURE MEDICINE, 2009, 15 (09) :1077-U133