Literature DB >> 20133251

Understanding resistance to endocrine agents: molecular mechanisms and potential for intervention.

Gauri Sabnis1, Angela Brodie.   

Abstract

BACKGROUND: We developed a mouse model system that mimics hormone-dependent postmenopausal breast cancer. In this model, human estrogen receptor-positive (ER+) breast cancer cells (MCF-7) stably transfected with aromatase (MCF-7Ca) are grown as tumors in ovariectomized female nude mice. Using this model, we have established that aromatase inhibitors (AIs) such as letrozole and anastrozole that reduce estrogen production are more effective than the antiestrogen agent tamoxifen. This intratumoral aromatase xenograft model has proved accurate in predicting the outcome of several clinical trials. Nevertheless, resistance to treatment might eventually occur.
MATERIALS AND METHODS: To investigate the mechanisms involved in the loss of sensitivity of the tumors to AIs, we developed a cell line isolated from the tumors of long-term letrozole-treated MCF-7Ca xenografts. This cell line was designated LTLT-Ca.
RESULTS: These cells exhibited lower expression of ERalpha and apparent "estradiol-independent" growth along with hyperactivation of growth factor receptor- mediated signaling pathways such as HER2/mitogen-activated protein kinase. The inhibition of HER2 with trastuzumab results in restoration of ERalpha and response to letrozole.
CONCLUSION: Our data suggest that inhibition of both the HER2 and estrogen signaling pathways is required to prolong the responsiveness of the tumors to endocrine therapies. In addition, we have shown that HER2 upregulation is an adaptive process that the tumors undergo during continued letrozole treatment, which is reversed upon removal of the treatment. The tumors regain responsiveness to letrozole after a short period "off" treatment. These studies suggest that by reversing the resistance to hormone therapy, patients could have a second response and could delay the need for chemotherapy.

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Year:  2010        PMID: 20133251     DOI: 10.3816/CBC.2010.n.014

Source DB:  PubMed          Journal:  Clin Breast Cancer        ISSN: 1526-8209            Impact factor:   3.225


  10 in total

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Journal:  Endocr Relat Cancer       Date:  2015-04-15       Impact factor: 5.678

2.  Proteomic signatures of acquired letrozole resistance in breast cancer: suppressed estrogen signaling and increased cell motility and invasiveness.

Authors:  Syreeta L Tilghman; Ian Townley; Qiu Zhong; Patrick P Carriere; Jin Zou; Shawn D Llopis; Lynez C Preyan; Christopher C Williams; Elena Skripnikova; Melyssa R Bratton; Qiang Zhang; Guangdi Wang
Journal:  Mol Cell Proteomics       Date:  2013-05-23       Impact factor: 5.911

3.  First-line treatment patterns and clinical outcomes in patients with HER2-positive and hormone receptor-positive metastatic breast cancer from registHER.

Authors:  Debu Tripathy; Peter A Kaufman; Adam M Brufsky; Musa Mayer; Marianne Ulcickas Yood; Bongin Yoo; Cheng Quah; Denise Yardley; Hope S Rugo
Journal:  Oncologist       Date:  2013-05-07

4.  Circadian and melatonin disruption by exposure to light at night drives intrinsic resistance to tamoxifen therapy in breast cancer.

Authors:  Robert T Dauchy; Shulin Xiang; Lulu Mao; Samantha Brimer; Melissa A Wren; Lin Yuan; Muralidharan Anbalagan; Adam Hauch; Tripp Frasch; Brian G Rowan; David E Blask; Steven M Hill
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5.  Endometrial Cancers With Activating KRas Mutations Have Activated Estrogen Signaling and Paradoxical Response to MEK Inhibition.

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6.  Growth inhibitory efficacy and anti-aromatase activity of Tabebuia avellanedae in a model for post-menopausal Luminal A breast cancer.

Authors:  Nitin Telang; Hareesh B Nair; George Y C Wong
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Review 7.  The Divergent Effects of Ovarian Steroid Hormones in the MCF-7 Model for Luminal A Breast Cancer: Mechanistic Leads for Therapy.

Authors:  Nitin T Telang
Journal:  Int J Mol Sci       Date:  2022-04-27       Impact factor: 6.208

8.  Models and Mechanisms of Acquired Antihormone Resistance in Breast Cancer: Significant Clinical Progress Despite Limitations.

Authors:  Elizabeth E Sweeney; Russell E McDaniel; Philipp Y Maximov; Ping Fan; V Craig Jordan
Journal:  Horm Mol Biol Clin Investig       Date:  2012-02

9.  Nonhypoxic regulation and role of hypoxia-inducible factor 1 in aromatase inhibitor resistant breast cancer.

Authors:  Armina A Kazi; Rabia A Gilani; Amanda J Schech; Saranya Chumsri; Gauri Sabnis; Preeti Shah; Olga Goloubeva; Shari Kronsberg; Angela H Brodie
Journal:  Breast Cancer Res       Date:  2014-01-29       Impact factor: 6.466

10.  VAV3 mediates resistance to breast cancer endocrine therapy.

Authors:  Helena Aguilar; Ander Urruticoechea; Pasi Halonen; Kazuma Kiyotani; Taisei Mushiroda; Xavier Barril; Jordi Serra-Musach; Abul Islam; Livia Caizzi; Luciano Di Croce; Ekaterina Nevedomskaya; Wilbert Zwart; Josefine Bostner; Elin Karlsson; Gizeh Pérez Tenorio; Tommy Fornander; Dennis C Sgroi; Rafael Garcia-Mata; Maurice P H M Jansen; Nadia García; Núria Bonifaci; Fina Climent; María Teresa Soler; Alejo Rodríguez-Vida; Miguel Gil; Joan Brunet; Griselda Martrat; Laia Gómez-Baldó; Ana I Extremera; Agnes Figueras; Josep Balart; Robert Clarke; Kerry L Burnstein; Kathryn E Carlson; John A Katzenellenbogen; Miguel Vizoso; Manel Esteller; Alberto Villanueva; Ana B Rodríguez-Peña; Xosé R Bustelo; Yusuke Nakamura; Hitoshi Zembutsu; Olle Stål; Roderick L Beijersbergen; Miguel Angel Pujana
Journal:  Breast Cancer Res       Date:  2014-05-28       Impact factor: 6.466

  10 in total

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