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Published in: Journal of Cancer Research and Clinical Oncology 1/2016

Open Access 01-01-2016 | Original Article – Cancer Research

Role of dihydrotestosterone (DHT) on TGF-β1 signaling pathway in epithelial ovarian cancer cells

Authors: Karla Kohan-Ivani, Fernando Gabler, Alberto Selman, Margarita Vega, Carmen Romero

Published in: Journal of Cancer Research and Clinical Oncology | Issue 1/2016

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Abstract

Purpose

One of the hypotheses regarding the genesis of epithelial ovarian cancer involves the action of androgens on the proliferation of epithelial ovarian cells, as well as inclusion cysts. The purpose of the present study was to evaluate whether DHT causes changes in the TGF-β1 pathway that might modify the anti-proliferative effect of the latter.

Methods

The levels of TGF-β1 protein, of its receptors (TGFBR1 and TGFBR2), of Smad2/3 (canonical signaling pathway protein) and of p21 (cell cycle protein) were assessed in ovarian tissues, epithelial ovarian cancer cell lines (A2780) and control cell lines (HOSE) through the use of immunohistochemistry and immunocytochemistry. Additionally, cell lines were treated with 100 nmol/L DHT, 10 ng/mL of TGF-β1 and DHT + TGF-β1 during 72 h in the presence and absence of a siRNA against androgen receptor. After treatment, TGFBR1 and TGFBR2 levels were detected through Western blotting and p21 was assessed through immunocytochemistry.

Results

Epithelial ovarian cancer tissues showed a decrease in TGF-β1 I receptor (p < 0.05) and a change in Smad2/3 protein levels. Additionally, after treatment of cell lines with DHT, protein levels of TGF-β1 receptors (TGFBR1–TGFBR2) showed a decrease (p < 0.05) that might cause a potential disorder in TGF-β1 response, represented by the significant decrease in p21 protein levels in the presence of DHT (p < 0.001).

Conclusions

Overall, our results indicate a defect in the canonical TGF-β signaling pathway in epithelial ovarian cancer caused by androgen action, thus suggesting eventual changes in such tissue proliferation rates.
Literature
go back to reference Antony ML, Nair R, Sebastian P, Devarajan K (2010) Changes in expression, and/or mutations in TGF-beta receptors (TGF-beta RI and TGF-beta RII) and Smad 4 in human ovarian tumors. J Cancer Res Clin Oncol 136(3):351–361PubMedCrossRef Antony ML, Nair R, Sebastian P, Devarajan K (2010) Changes in expression, and/or mutations in TGF-beta receptors (TGF-beta RI and TGF-beta RII) and Smad 4 in human ovarian tumors. J Cancer Res Clin Oncol 136(3):351–361PubMedCrossRef
go back to reference Auersperg N (2013) Ovarian surface epithelium as a source of ovarian cancers: unwarranted speculation or evidence-based hypothesis? Gynecol Oncol 130(1):246–251PubMedCrossRef Auersperg N (2013) Ovarian surface epithelium as a source of ovarian cancers: unwarranted speculation or evidence-based hypothesis? Gynecol Oncol 130(1):246–251PubMedCrossRef
go back to reference Auersperg N, Ota T, Mitchell GWE (2002) Early events in ovarian epithelial carcinogenesis: progress and problems in experimental approaches. Int J Gynecol Cancer 12:691–703PubMedCrossRef Auersperg N, Ota T, Mitchell GWE (2002) Early events in ovarian epithelial carcinogenesis: progress and problems in experimental approaches. Int J Gynecol Cancer 12:691–703PubMedCrossRef
go back to reference Bartlett JM, Langdon SP, Simpson BJ, Stewart M, Katsaros D, Sismondi P, Love S, Scott WN, Williams AR, Lessells AM, Macleod KG, Smyth JF, Miller WR (1996) The prognostic value of epidermal growth factor receptor mRNA expression in primary ovarian cancer. Br J Cancer 73:301–306PubMedPubMedCentralCrossRef Bartlett JM, Langdon SP, Simpson BJ, Stewart M, Katsaros D, Sismondi P, Love S, Scott WN, Williams AR, Lessells AM, Macleod KG, Smyth JF, Miller WR (1996) The prognostic value of epidermal growth factor receptor mRNA expression in primary ovarian cancer. Br J Cancer 73:301–306PubMedPubMedCentralCrossRef
go back to reference Butz H, Rácz K, Hunyady L, Patócs A (2012) Crosstalk between TGF-β signaling and the microRNA machinery. Trends Pharmacol Sci 33(7):382–393PubMedCrossRef Butz H, Rácz K, Hunyady L, Patócs A (2012) Crosstalk between TGF-β signaling and the microRNA machinery. Trends Pharmacol Sci 33(7):382–393PubMedCrossRef
go back to reference Cai J, Hong Y, Weng C, Tan C, Imperato-McGinley J, Zhu YS (2011) Androgen stimulates endothelial cell proliferation via an androgen receptor/VEGF/cyclin A-mediated mechanism. Am J Physiol Heart Circ Physiol 300:H1210–H1221PubMedPubMedCentralCrossRef Cai J, Hong Y, Weng C, Tan C, Imperato-McGinley J, Zhu YS (2011) Androgen stimulates endothelial cell proliferation via an androgen receptor/VEGF/cyclin A-mediated mechanism. Am J Physiol Heart Circ Physiol 300:H1210–H1221PubMedPubMedCentralCrossRef
go back to reference Campos X, Muñoz Y, Selman A, Yazigi R, Moyano L, Weinstein-Oppenheimer C, Lara HE, Romero C (2007) Nerve growth factor and its high-affinity receptor trkA participate in the control of vascular endothelial growth factor expression in epithelial ovarian cancer. Gynecol Oncol 104(1):168–175PubMedCrossRef Campos X, Muñoz Y, Selman A, Yazigi R, Moyano L, Weinstein-Oppenheimer C, Lara HE, Romero C (2007) Nerve growth factor and its high-affinity receptor trkA participate in the control of vascular endothelial growth factor expression in epithelial ovarian cancer. Gynecol Oncol 104(1):168–175PubMedCrossRef
go back to reference Cheng JC, Klausen C, Leung PC (2010) Hydrogen peroxide mediates EGF-induced down-regulation of E-cadherin expression via p38 MAPK and snail in human ovarian cancer cells. Mol Endocrinol 24(8):1569–1580PubMedCrossRef Cheng JC, Klausen C, Leung PC (2010) Hydrogen peroxide mediates EGF-induced down-regulation of E-cadherin expression via p38 MAPK and snail in human ovarian cancer cells. Mol Endocrinol 24(8):1569–1580PubMedCrossRef
go back to reference Chiba R, Amagai Y, Tanaka A, Katakura K, Matsuda H (2014) Nerve growth factor promotes killing of Leishmania donovani by macrophages through the induction of hydrogen peroxide. Microbes Infect 16(8):702–706PubMedCrossRef Chiba R, Amagai Y, Tanaka A, Katakura K, Matsuda H (2014) Nerve growth factor promotes killing of Leishmania donovani by macrophages through the induction of hydrogen peroxide. Microbes Infect 16(8):702–706PubMedCrossRef
go back to reference Chipuk JE, Cornelius SC, Pultz NJ, Jorgensen JS, Bonham MJ, Kim SJ et al (2002) The androgen receptor represses transforming growth factor-beta signaling through interaction with Smad3. J Biol Chem 277(2):1240–1248PubMedCrossRef Chipuk JE, Cornelius SC, Pultz NJ, Jorgensen JS, Bonham MJ, Kim SJ et al (2002) The androgen receptor represses transforming growth factor-beta signaling through interaction with Smad3. J Biol Chem 277(2):1240–1248PubMedCrossRef
go back to reference Choi J, Park SJ, Jo EJ, Lee HY, Hong S, Kim SJ, Kim BC (2013) Hydrogen peroxide inhibits transforming growth factor-β1-induced cell cycle arrest by promoting Smad3 linker phosphorylation through activation of Akt-ERK1/2-linked signaling pathway. Biochem Biophys Res Commun 435(4):634–639PubMedCrossRef Choi J, Park SJ, Jo EJ, Lee HY, Hong S, Kim SJ, Kim BC (2013) Hydrogen peroxide inhibits transforming growth factor-β1-induced cell cycle arrest by promoting Smad3 linker phosphorylation through activation of Akt-ERK1/2-linked signaling pathway. Biochem Biophys Res Commun 435(4):634–639PubMedCrossRef
go back to reference Denby L, Ramdas V, McBride MW, Wang J, Robinson H, McClure J, Crawford W, Lu R, Hillyard DZ, Khanin R, Agami R, Dominiczak AF, Sharpe CC, Baker AH (2011) miR-21 and miR-214 are consistently modulated during renal injury in rodent models. Am J Pathol 179:661–672PubMedPubMedCentralCrossRef Denby L, Ramdas V, McBride MW, Wang J, Robinson H, McClure J, Crawford W, Lu R, Hillyard DZ, Khanin R, Agami R, Dominiczak AF, Sharpe CC, Baker AH (2011) miR-21 and miR-214 are consistently modulated during renal injury in rodent models. Am J Pathol 179:661–672PubMedPubMedCentralCrossRef
go back to reference Derynck R, Zhang YE (2003) Smad-dependent and Smad-independent pathways in TGF-beta family signalling. Nature 425(6958):577–584PubMedCrossRef Derynck R, Zhang YE (2003) Smad-dependent and Smad-independent pathways in TGF-beta family signalling. Nature 425(6958):577–584PubMedCrossRef
go back to reference Elattar AI, Warburton KG, Mukhopadhyay A, Freer RM, Shaheen F, Cross P, Plummer ER, Robson CN, Edmondson RJ (2012) Androgen receptor expression is a biological marker for androgen sensitivity in high grade serous epithelial ovarian cancer. Gynecol Oncol 124(1):142–147PubMedCrossRef Elattar AI, Warburton KG, Mukhopadhyay A, Freer RM, Shaheen F, Cross P, Plummer ER, Robson CN, Edmondson RJ (2012) Androgen receptor expression is a biological marker for androgen sensitivity in high grade serous epithelial ovarian cancer. Gynecol Oncol 124(1):142–147PubMedCrossRef
go back to reference Evangelou A, Jindal SK, Brown TJ, Letarte M (2000) Down-regulation of transforming growth factor β receptors by androgen in ovarian cancer cells. Cancer Res 60:929–935PubMed Evangelou A, Jindal SK, Brown TJ, Letarte M (2000) Down-regulation of transforming growth factor β receptors by androgen in ovarian cancer cells. Cancer Res 60:929–935PubMed
go back to reference Gartel AL, Radhakrishnan SK (2005) Lost in transcription: p21 repression, mechanisms, and consequences. Cancer Res 65(10):3980–3985PubMedCrossRef Gartel AL, Radhakrishnan SK (2005) Lost in transcription: p21 repression, mechanisms, and consequences. Cancer Res 65(10):3980–3985PubMedCrossRef
go back to reference Gartel AL, Ye X, Goufman E, Shianov P, Hay N, Najmabadi F, Tyner AL (2001) Myc represses the p21(WAF1/CIP1) promoter and interacts with Sp1/Sp3. Proc Natl Acad Sci USA 98(8):4510–4515PubMedPubMedCentralCrossRef Gartel AL, Ye X, Goufman E, Shianov P, Hay N, Najmabadi F, Tyner AL (2001) Myc represses the p21(WAF1/CIP1) promoter and interacts with Sp1/Sp3. Proc Natl Acad Sci USA 98(8):4510–4515PubMedPubMedCentralCrossRef
go back to reference Gibson DA, Simitsidellis I, Collins F, Saunders PT (2014) Evidence of androgen action in endometrial and ovarian cancers. Endocr Relat Cancer 21(4):T203–T218PubMedCrossRef Gibson DA, Simitsidellis I, Collins F, Saunders PT (2014) Evidence of androgen action in endometrial and ovarian cancers. Endocr Relat Cancer 21(4):T203–T218PubMedCrossRef
go back to reference Inman GJ, Nicolás FJ, Hill CS (2002) Nucleocytoplasmic shuttling of Smads 2, 3, and 4 permits sensing of TGF-beta receptor activity. Mol Cell 10(2):283–294PubMedCrossRef Inman GJ, Nicolás FJ, Hill CS (2002) Nucleocytoplasmic shuttling of Smads 2, 3, and 4 permits sensing of TGF-beta receptor activity. Mol Cell 10(2):283–294PubMedCrossRef
go back to reference Jordan S, Green A, Webb P (2006) Benign epithelial ovarian tumours-cancer precursors or markers for ovarian cancer risk? Cancer Causes Control 17:623–632PubMedCrossRef Jordan S, Green A, Webb P (2006) Benign epithelial ovarian tumours-cancer precursors or markers for ovarian cancer risk? Cancer Causes Control 17:623–632PubMedCrossRef
go back to reference Li AJ, Karlan BY (2008) Androgens and epithelial ovarian cancer: what’s the connection? Cancer Biol Ther 7(11):1712–1716PubMedCrossRef Li AJ, Karlan BY (2008) Androgens and epithelial ovarian cancer: what’s the connection? Cancer Biol Ther 7(11):1712–1716PubMedCrossRef
go back to reference Ligr M, Patwa RR, Daniels G, Pan L, Wu X, Li Y, Tian L, Wang Z, Xu R, Wu J, Chen F, Liu J, Wei JJ, Lee P (2011) Expression and function of androgen receptor coactivator p44/Mep50/WDR77 in ovarian cancer. PLoS ONE 6(10):e26250PubMedPubMedCentralCrossRef Ligr M, Patwa RR, Daniels G, Pan L, Wu X, Li Y, Tian L, Wang Z, Xu R, Wu J, Chen F, Liu J, Wei JJ, Lee P (2011) Expression and function of androgen receptor coactivator p44/Mep50/WDR77 in ovarian cancer. PLoS ONE 6(10):e26250PubMedPubMedCentralCrossRef
go back to reference Lukanova A, Kaaks R (2005) Endogenous hormones and ovarian cancer: epidemiology and current hypotheses. Cancer Epidemiol Biomarkers Prev 14(1):98–107PubMed Lukanova A, Kaaks R (2005) Endogenous hormones and ovarian cancer: epidemiology and current hypotheses. Cancer Epidemiol Biomarkers Prev 14(1):98–107PubMed
go back to reference Mishra S, Deng JJ, Gowda PS, Rao MK, Lin CL, Chen CL, Huang T, Sun LZ (2014) Androgen receptor and microRNA-21 axis downregulates transforming growth factor beta receptor II (TGFBR2) expression in prostate cancer. Oncogene 33(31):4097–4106PubMedPubMedCentralCrossRef Mishra S, Deng JJ, Gowda PS, Rao MK, Lin CL, Chen CL, Huang T, Sun LZ (2014) Androgen receptor and microRNA-21 axis downregulates transforming growth factor beta receptor II (TGFBR2) expression in prostate cancer. Oncogene 33(31):4097–4106PubMedPubMedCentralCrossRef
go back to reference Olsen CM, Green AC, Nagle CM, Jordan SJ, Whiteman DC, Bain CJ, Webb PM (2008) Epithelial ovarian cancer: testing the ‘androgens hypothesis’. Endocr Relat Cancer 15:1061–1068PubMedCrossRef Olsen CM, Green AC, Nagle CM, Jordan SJ, Whiteman DC, Bain CJ, Webb PM (2008) Epithelial ovarian cancer: testing the ‘androgens hypothesis’. Endocr Relat Cancer 15:1061–1068PubMedCrossRef
go back to reference Prat J (2007) Tumores Ováricos Borderline (de Bajo Potencial de Malignidad). Revista Española de Patología 40:201–216CrossRef Prat J (2007) Tumores Ováricos Borderline (de Bajo Potencial de Malignidad). Revista Española de Patología 40:201–216CrossRef
go back to reference Risch HA (1998) Hormonal etiology of epithelial ovarian cancer, with a hypothesis concerning the role of androgens and progesterone. J Natl Cancer Inst 90:1774–1786PubMedCrossRef Risch HA (1998) Hormonal etiology of epithelial ovarian cancer, with a hypothesis concerning the role of androgens and progesterone. J Natl Cancer Inst 90:1774–1786PubMedCrossRef
go back to reference Rivero R, Garin CA, Ormazabal P, Silva A, Carvajal R, Gabler F, Romero C, Vega M (2012) Protein expression of PKCZ (Protein Kinase C Zeta), Munc18c, and Syntaxin-4 in the insulin pathway in endometria of patients with polycystic ovary syndrome (PCOS). Reprod Biol Endocrinol 5(10):17CrossRef Rivero R, Garin CA, Ormazabal P, Silva A, Carvajal R, Gabler F, Romero C, Vega M (2012) Protein expression of PKCZ (Protein Kinase C Zeta), Munc18c, and Syntaxin-4 in the insulin pathway in endometria of patients with polycystic ovary syndrome (PCOS). Reprod Biol Endocrinol 5(10):17CrossRef
go back to reference Schock H, Surcel HM, Zeleniuch-Jacquotte A, Grankvist K, Lakso HÅ, Fortner RT, Kaaks R, Pukkala E, Lehtinen M, Toniolo P, Lundin E (2014) Early pregnancy sex steroids and maternal risk of epithelial ovarian cancer. Endocr Relat Cancer 21(6):831–844PubMedPubMedCentralCrossRef Schock H, Surcel HM, Zeleniuch-Jacquotte A, Grankvist K, Lakso HÅ, Fortner RT, Kaaks R, Pukkala E, Lehtinen M, Toniolo P, Lundin E (2014) Early pregnancy sex steroids and maternal risk of epithelial ovarian cancer. Endocr Relat Cancer 21(6):831–844PubMedPubMedCentralCrossRef
go back to reference Siegel PM, Massagué J (2003) Cytostatic and apoptotic actions of TGF-beta in homeostasis and cancer. Nat Rev Cancer 3(11):807–821PubMedCrossRef Siegel PM, Massagué J (2003) Cytostatic and apoptotic actions of TGF-beta in homeostasis and cancer. Nat Rev Cancer 3(11):807–821PubMedCrossRef
go back to reference Song K, Wang H, Krebs TL et al (2008) Androgenic control of transforming growth factor-β signaling in prostate epithelial cells through transcriptional suppression of transforming growth factor- β receptor II. Cancer Res 68:8173–8182PubMedPubMedCentralCrossRef Song K, Wang H, Krebs TL et al (2008) Androgenic control of transforming growth factor-β signaling in prostate epithelial cells through transcriptional suppression of transforming growth factor- β receptor II. Cancer Res 68:8173–8182PubMedPubMedCentralCrossRef
go back to reference Song K, Wang H, Krebs TL, Wang B, Kelley TJ, Danielpour D (2010) DHT selectively reverses Smad3-mediated/TGF-beta-induced responses through transcriptional down-regulation of Smad3 in prostate epithelial cells. Mol Endocrinol 24(10):2019–2029PubMedPubMedCentralCrossRef Song K, Wang H, Krebs TL, Wang B, Kelley TJ, Danielpour D (2010) DHT selectively reverses Smad3-mediated/TGF-beta-induced responses through transcriptional down-regulation of Smad3 in prostate epithelial cells. Mol Endocrinol 24(10):2019–2029PubMedPubMedCentralCrossRef
go back to reference Tapia V, Gabler F, Muñoz M, Yazigi R, Paredes A, Selman A, Vega M, Romero C (2011) Tyrosine kinase A receptor (trkA): a potential marker in epithelial ovarian cancer. Gynecol Oncol 121(1):13–23PubMedCrossRef Tapia V, Gabler F, Muñoz M, Yazigi R, Paredes A, Selman A, Vega M, Romero C (2011) Tyrosine kinase A receptor (trkA): a potential marker in epithelial ovarian cancer. Gynecol Oncol 121(1):13–23PubMedCrossRef
go back to reference Tiryakioglu D, Bilgin E, Holdenrieder S, Dalay N, Gezer U (2013) miR-141 and miR-375 induction and release are different from PSA mRNA and PCA3 upon androgen stimulation of LNCaP cells. Biomed Rep 1(5):802–806PubMedPubMedCentral Tiryakioglu D, Bilgin E, Holdenrieder S, Dalay N, Gezer U (2013) miR-141 and miR-375 induction and release are different from PSA mRNA and PCA3 upon androgen stimulation of LNCaP cells. Biomed Rep 1(5):802–806PubMedPubMedCentral
go back to reference Vera C, Tapia V, Vega M, Romero C (2014) Role of nerve growth factor and its TRKA receptor in normal ovarian and epithelial ovarian cancer angiogenesis. J Ovarian Res 10(7):82CrossRef Vera C, Tapia V, Vega M, Romero C (2014) Role of nerve growth factor and its TRKA receptor in normal ovarian and epithelial ovarian cancer angiogenesis. J Ovarian Res 10(7):82CrossRef
go back to reference Waltering KK, Porkka KP, Jalava SE, Urbanucci A, Kohonen PJ, Latonen LM, Kallioniemi OP, Jenster G, Visakorpi T (2011) Androgen regulation of micro-RNAs in prostate cancer. Prostate 71(6):604–614PubMedCrossRef Waltering KK, Porkka KP, Jalava SE, Urbanucci A, Kohonen PJ, Latonen LM, Kallioniemi OP, Jenster G, Visakorpi T (2011) Androgen regulation of micro-RNAs in prostate cancer. Prostate 71(6):604–614PubMedCrossRef
go back to reference Xu L, Kang Y, Cöl S, Massagué J (2002) Smad2 nucleocytoplasmic shuttling by nucleoporins CAN/Nup214 and Nup153 feeds TGF-beta signaling complexes in the cytoplasm and nucleus. Mol Cell 10(2):271–282PubMedCrossRef Xu L, Kang Y, Cöl S, Massagué J (2002) Smad2 nucleocytoplasmic shuttling by nucleoporins CAN/Nup214 and Nup153 feeds TGF-beta signaling complexes in the cytoplasm and nucleus. Mol Cell 10(2):271–282PubMedCrossRef
go back to reference Zhou Y, Bolton EC, Jones JO (2015) Androgens and androgen receptor signaling in prostate tumorigenesis. J Mol Endocrinol 54(1):R15–R29PubMedCrossRef Zhou Y, Bolton EC, Jones JO (2015) Androgens and androgen receptor signaling in prostate tumorigenesis. J Mol Endocrinol 54(1):R15–R29PubMedCrossRef
Metadata
Title
Role of dihydrotestosterone (DHT) on TGF-β1 signaling pathway in epithelial ovarian cancer cells
Authors
Karla Kohan-Ivani
Fernando Gabler
Alberto Selman
Margarita Vega
Carmen Romero
Publication date
01-01-2016
Publisher
Springer Berlin Heidelberg
Published in
Journal of Cancer Research and Clinical Oncology / Issue 1/2016
Print ISSN: 0171-5216
Electronic ISSN: 1432-1335
DOI
https://doi.org/10.1007/s00432-015-1998-y

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