TY - JOUR
T1 - CTGF drives autophagy, glycolysis and senescence in cancer-associated fibroblasts via HIF1 activation, metabolically promoting tumor growth
AU - Capparelli, Claudia
AU - Whitaker-Menezes, Diana
AU - Guido, Carmela
AU - Balliet, Renee
AU - Pestell, Timothy G.
AU - Howell, Anthony
AU - Sneddon, Sharon
AU - Pestell, Richard G.
AU - Martinez-Outschoorn, Ubaldo
AU - Lisanti, Michael P.
AU - Sotgia, Federica
N1 - P30-CA-56036, NCI NIH HHS, United StatesR01-AR-055660, NIAMS NIH HHS, United StatesR01-CA-080250, NCI NIH HHS, United StatesR01-CA-098779, NCI NIH HHS, United StatesR01-CA-107382, NCI NIH HHS, United StatesR01-CA-120876, NCI NIH HHS, United StatesR01-CA-70896, NCI NIH HHS, United StatesR01-CA-75503, NCI NIH HHS, United StatesR01-CA-86072, NCI NIH HHS, United States
PY - 2012/6/15
Y1 - 2012/6/15
N2 - Previous studies have demonstrated that loss of caveolin-1 (Cav-1) in stromal cells drives the activation of the TGFβ signaling, with increased transcription of TGFβ target genes, such as connective tissue growth factor (CTGF). In addition, loss of stromal Cav-1 results in the metabolic reprogramming of cancer-associated fibroblasts, with the induction of autophagy and glycolysis. However, it remains unknown if activation of the TGFβ/CTGF pathway regulates the metabolism of cancerassociated fibroblasts. Therefore, we investigated whether CTGF modulates metabolism in the tumor microenvironment. For this purpose, CTGF was overexpressed in normal human fibroblasts or MDA-MB-231 breast cancer cells. Overexpression of CTGF induces HIF-1α-dependent metabolic alterations, with the induction of autophagy/mitophagy, senescence and glycolysis. Here, we show that CTGF exerts compartment-specific effects on tumorigenesis, depending on the cell-type. In a xenograft model, CTGF overexpressing fibroblasts promote the growth of co-injected MDA-MB-231 cells, without any increases in angiogenesis. Conversely, CTGF overexpression in MDA-MB-231 cells dramatically inhibits tumor growth in mice. Intriguingly, increased extracellular matrix deposition was seen in tumors with either fibroblast or MDA-MB-231 overexpression of CTGF. Thus, the effects of CTGF expression on tumor formation are independent of its extracellular matrix function, but rather depend on its ability to activate catabolic metabolism. As such, CTGF-mediated induction of autophagy in fibroblasts supports tumor growth via the generation of recycled nutrients, whereas CTGF-mediated autophagy in breast cancer cells suppresses tumor growth, via tumor cell self-digestion. Our studies shed new light on the compartment-specific role of CTGF in mammary tumorigenesis, and provide novel insights into the mechanism(s) generating a lethal tumor microenvironment in patients lacking stromal Cav-1. As loss of Cav-1 is a stromal marker of poor clinical outcome in women with primary breast cancer, dissecting the downstream signaling effects of Cav-1 are important for understanding disease pathogenesis, and identifying novel therapeutic targets. © 2012 Landes Bioscience.
AB - Previous studies have demonstrated that loss of caveolin-1 (Cav-1) in stromal cells drives the activation of the TGFβ signaling, with increased transcription of TGFβ target genes, such as connective tissue growth factor (CTGF). In addition, loss of stromal Cav-1 results in the metabolic reprogramming of cancer-associated fibroblasts, with the induction of autophagy and glycolysis. However, it remains unknown if activation of the TGFβ/CTGF pathway regulates the metabolism of cancerassociated fibroblasts. Therefore, we investigated whether CTGF modulates metabolism in the tumor microenvironment. For this purpose, CTGF was overexpressed in normal human fibroblasts or MDA-MB-231 breast cancer cells. Overexpression of CTGF induces HIF-1α-dependent metabolic alterations, with the induction of autophagy/mitophagy, senescence and glycolysis. Here, we show that CTGF exerts compartment-specific effects on tumorigenesis, depending on the cell-type. In a xenograft model, CTGF overexpressing fibroblasts promote the growth of co-injected MDA-MB-231 cells, without any increases in angiogenesis. Conversely, CTGF overexpression in MDA-MB-231 cells dramatically inhibits tumor growth in mice. Intriguingly, increased extracellular matrix deposition was seen in tumors with either fibroblast or MDA-MB-231 overexpression of CTGF. Thus, the effects of CTGF expression on tumor formation are independent of its extracellular matrix function, but rather depend on its ability to activate catabolic metabolism. As such, CTGF-mediated induction of autophagy in fibroblasts supports tumor growth via the generation of recycled nutrients, whereas CTGF-mediated autophagy in breast cancer cells suppresses tumor growth, via tumor cell self-digestion. Our studies shed new light on the compartment-specific role of CTGF in mammary tumorigenesis, and provide novel insights into the mechanism(s) generating a lethal tumor microenvironment in patients lacking stromal Cav-1. As loss of Cav-1 is a stromal marker of poor clinical outcome in women with primary breast cancer, dissecting the downstream signaling effects of Cav-1 are important for understanding disease pathogenesis, and identifying novel therapeutic targets. © 2012 Landes Bioscience.
KW - Aerobic glycolysis
KW - Autophagy
KW - Cancer metabolism
KW - Cancer-associated fibroblasts
KW - Caveolin-1
KW - CTGF
KW - Extracellular matrix
KW - Senescence
KW - Tumor stroma
U2 - 10.4161/cc.20717
DO - 10.4161/cc.20717
M3 - Article
C2 - 22684333
SN - 1538-4101
VL - 11
SP - 2272
EP - 2284
JO - Cell Cycle
JF - Cell Cycle
IS - 12
ER -