Literature DB >> 34811632

The matricellular protein CCN6 differentially regulates mitochondrial metabolism in normal epithelium and in metaplastic breast carcinomas.

Mai Tran1,2, Shoshana A Leflein1,2, Maria E Gonzalez1,2, Celina G Kleer3,4.   

Abstract

Metaplastic breast carcinoma (MBC) is an aggressive subtype of triple negative breast cancer with undefined precursors, limited response to chemotherapy, and frequent distant metastasis. Our laboratory has reported that CCN6/WISP3, a secreted protein that regulates growth factor signaling, is downregulated in over 85% of MBCs. Through generation of a mammary epithelial cell-specific Ccn6 knockout mouse model (MMTV-cre;Ccn6fl/fl) we have demonstrated that CCN6 is a tumor suppressor for MBC; MMTV-cre;Ccn6fl/fl mice develop tumors recapitulating the histopathology and proteogenomic landscape of human MBC, but the mechanisms need further investigation. In this study, we report that preneoplastic mammary glands of 8-week-old MMTV-Cre;Ccn6fl/fl female mice show significant downregulation of mitochondrial respiratory chain genes compared to controls, which are further downregulated in MBCs of MMTV-Cre;Ccn6fl/fl mice and humans. We found that CCN6 downregulation in non-tumorigenic breast cells reduces mitochondrial respiration and increases resistance to stress-induced apoptosis compared to controls. Intracellular ectopic CCN6 protein localizes to the mitochondria in MDA-MB-231 mesenchymal-like breast cancer cells, increases mitochondrial respiration and generation of reactive oxygen species, and reverses doxorubicin resistance of MBC cells. Our data highlight a novel function of CCN6 in the regulation of redox states in preneoplastic progression and suggest potential preventative and treatment strategies against MBC based on CCN6 upregulation.
© 2021. The International CCN Society.

Entities:  

Keywords:  CCN6; Initiation; Metaplastic carcinoma; Mitochondrial metabolism; Prevention; TNBC; Triple negative; WISP3

Year:  2021        PMID: 34811632      PMCID: PMC9411309          DOI: 10.1007/s12079-021-00657-9

Source DB:  PubMed          Journal:  J Cell Commun Signal        ISSN: 1873-9601            Impact factor:   5.908


  55 in total

1.  Identification of human triple-negative breast cancer subtypes and preclinical models for selection of targeted therapies.

Authors:  Brian D Lehmann; Joshua A Bauer; Xi Chen; Melinda E Sanders; A Bapsi Chakravarthy; Yu Shyr; Jennifer A Pietenpol
Journal:  J Clin Invest       Date:  2011-07       Impact factor: 14.808

2.  Metaplastic breast carcinoma. Rare form of mammary cancer.

Authors:  A G Huvos; J C Lucas; F W Foote
Journal:  N Y State J Med       Date:  1973-05-01

3.  Immunohistochemical and clinical characterization of the basal-like subtype of invasive breast carcinoma.

Authors:  Torsten O Nielsen; Forrest D Hsu; Kristin Jensen; Maggie Cheang; Gamze Karaca; Zhiyuan Hu; Tina Hernandez-Boussard; Chad Livasy; Dave Cowan; Lynn Dressler; Lars A Akslen; Joseph Ragaz; Allen M Gown; C Blake Gilks; Matt van de Rijn; Charles M Perou
Journal:  Clin Cancer Res       Date:  2004-08-15       Impact factor: 12.531

4.  Characterization of a naturally occurring breast cancer subset enriched in epithelial-to-mesenchymal transition and stem cell characteristics.

Authors:  Bryan T Hennessy; Ana-Maria Gonzalez-Angulo; Katherine Stemke-Hale; Michael Z Gilcrease; Savitri Krishnamurthy; Ju-Seog Lee; Jane Fridlyand; Aysegul Sahin; Roshan Agarwal; Corwin Joy; Wenbin Liu; David Stivers; Keith Baggerly; Mark Carey; Ana Lluch; Carlos Monteagudo; Xiaping He; Victor Weigman; Cheng Fan; Juan Palazzo; Gabriel N Hortobagyi; Laura K Nolden; Nicholas J Wang; Vicente Valero; Joe W Gray; Charles M Perou; Gordon B Mills
Journal:  Cancer Res       Date:  2009-05-12       Impact factor: 12.701

5.  WISP3 is a novel tumor suppressor gene of inflammatory breast cancer.

Authors:  Celina G Kleer; Yanhong Zhang; Quintin Pan; Kenneth L van Golen; Zhi-Fen Wu; D Livant; Sofia D Merajver
Journal:  Oncogene       Date:  2002-05-09       Impact factor: 9.867

6.  Mammary epithelial cells have lineage-rooted metabolic identities.

Authors:  Mathepan Jeya Mahendralingam; Hyeyeon Kim; Curtis William McCloskey; Kazeera Aliar; Alison Elisabeth Casey; Pirashaanthy Tharmapalan; Davide Pellacani; Vladimir Ignatchenko; Mar Garcia-Valero; Luis Palomero; Ankit Sinha; Jennifer Cruickshank; Ronak Shetty; Ravi N Vellanki; Marianne Koritzinsky; Vid Stambolic; Mina Alam; Aaron David Schimmer; Hal Kenneth Berman; Connie J Eaves; Miquel Angel Pujana; Thomas Kislinger; Rama Khokha
Journal:  Nat Metab       Date:  2021-05-20

7.  Acquisition of chemoresistance in gliomas is associated with increased mitochondrial coupling and decreased ROS production.

Authors:  Claudia R Oliva; Douglas R Moellering; G Yancey Gillespie; Corinne E Griguer
Journal:  PLoS One       Date:  2011-09-09       Impact factor: 3.240

Review 8.  Redox regulation of cell state and fate.

Authors:  Bernice Woon Li Lee; Pramila Ghode; Derrick Sek Tong Ong
Journal:  Redox Biol       Date:  2018-11-23       Impact factor: 11.799

9.  Ccn6 Is Required for Mitochondrial Integrity and Skeletal Muscle Function in Zebrafish.

Authors:  Archya Sengupta; Deepesh Kumar Padhan; Ananya Ganguly; Malini Sen
Journal:  Front Cell Dev Biol       Date:  2021-02-11

Review 10.  ROS in cancer therapy: the bright side of the moon.

Authors:  Bruno Perillo; Marzia Di Donato; Antonio Pezone; Erika Di Zazzo; Pia Giovannelli; Giovanni Galasso; Gabriella Castoria; Antimo Migliaccio
Journal:  Exp Mol Med       Date:  2020-02-14       Impact factor: 8.718

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