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Estrogen promotes tumor phenotypes in ER+ and ER– breast cancer through UGDH-GPR30
Meghan J. Price, Annee D. Nguyen, Corinne H. Strawser, Trupti Trivedi, Cesar C.D. Baeta, Catherine Lavau, Jovita K. Byemerwa, Debarati Mukherjee, Suzanne E. Wardell, Sandeep Artham, Vardhman Kumar, Shyni Varghese, C. Rory. Goodwin
Meghan J. Price, Annee D. Nguyen, Corinne H. Strawser, Trupti Trivedi, Cesar C.D. Baeta, Catherine Lavau, Jovita K. Byemerwa, Debarati Mukherjee, Suzanne E. Wardell, Sandeep Artham, Vardhman Kumar, Shyni Varghese, C. Rory. Goodwin
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Research Article Endocrinology Oncology

Estrogen promotes tumor phenotypes in ER+ and ER– breast cancer through UGDH-GPR30

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Abstract

Estrogen can promote aggressive tumor phenotypes in estrogen receptor–positive (ER+) breast cancer; however, ER– cell lines are not widely considered estrogen responsive. Noncanonical estrogen-stimulated pathways such as the membrane-bound G protein–coupled estrogen receptor (GPR30) can mediate migratory and proliferative phenotypes in breast cancer and are postulated to promote resistance to aromatase therapies. Moreover, dysregulation of UDP-glucose 6-dehydrogenase (UGDH), a ubiquitously expressed enzyme critical to the metabolism of UDP-glucuronic acid into extracellular matrix precursors and hormone regulation, is associated with tumorigenesis. Here, we illustrated the impact of estrogen stimulation on tumor phenotypes in ER+ and ER– cell models in vitro and in vivo. We then demonstrated UGDH’s association with metastatic breast cancer via single-cell sequencing of patient specimens. Genetic knockdown of UGDH blunted estrogen-stimulated tumor phenotypes in vitro, ex vivo, and in vivo using both ER+ and ER– breast cancer lines. Finally, we demonstrated that UGDH knockdown blunted noncanonical estrogen stimulation through GPR30. Ultimately, our study validated prior studies demonstrating estrogen-responsive malignant phenotypes in ER– breast cancer and demonstrated that estrogen-stimulated breast cancer progression can be mediated through noncanonical pathways (e.g., UGDH/GPR30), regardless of ER status.

Authors

Meghan J. Price, Annee D. Nguyen, Corinne H. Strawser, Trupti Trivedi, Cesar C.D. Baeta, Catherine Lavau, Jovita K. Byemerwa, Debarati Mukherjee, Suzanne E. Wardell, Sandeep Artham, Vardhman Kumar, Shyni Varghese, C. Rory. Goodwin

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Figure 3

Estrogen promotes tumor growth in breast cancer models in vivo irrespective of ER status, and UGDH KD blunts tumor growth and improves animal survival.

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Estrogen promotes tumor growth in breast cancer models in vivo irrespect...
(A) Experimental design of mammary fat pad in vivo model. (B) Primary tumor growth curve in mammary fat pad model comparing NT shRNA MCF7 and U1 shRNA MCF7. Student’s t test (2-tailed). (C) Primary tumor growth curve in mammary fat pad model comparing NT shRNA MDA-MB-231 and U1 shRNA MDA-MB-231. One-way ANOVA. (D) Experimental design of breast cancer extravasation model ex vivo depicting generation of endothelium vasculature and time lapse imaging (0 to 7 hours) of GFP-labeled extravasating cells. White scale bar (bottom): 100 µm. Arrowheads represent cells that are extravasating. (E) Percentage of NT shRNA and U1 shRNA MDA-MB-231 cells extravasating (n = 3 technical replicates). (F) Experimental design of tail vein metastasis model using MDA-MB-231 cells. (G) Radiance values of imaged mice at week 7 (peak signal) of metastasis experiment with representative bioluminescent images of mice treated with estrogen or placebo pellets and implanted with NT shRNA or U1 shRNA MDA-MB-231 (n = 10 mice per group). (H) Survival curve of metastasis experiment (n = 10 mice per group). Gehan-Breslow-Wilcoxon test; *P < 0.05; **P < 0.01; ****P < 0.0001.

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ISSN 2379-3708

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