17beta-hydroxysteroid dehydrogenase type 5 is negatively correlated to apoptosis inhibitor GRP78 and tumor-secreted protein PGK1, and modulates breast cancer cell viability and proliferation
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[1] Y. Soini,et al. 17β-Hydroxysteroid Dehydrogenase Type 1 Is an Independent Prognostic Marker in Breast Cancer , 2004, Cancer Research.
[2] Zongwei Li,et al. Glucose regulated protein 78: a critical link between tumor microenvironment and cancer hallmarks. , 2012, Biochimica et biophysica acta.
[3] J. Huot,et al. 17beta-hydroxysteroid dehydrogenase type 1 modulates breast cancer protein profile and impacts cell migration , 2012, Breast Cancer Research.
[4] Amy S. Lee. GRP78 induction in cancer: therapeutic and prognostic implications. , 2007, Cancer research.
[5] D. Pang,et al. Phosphoglycerate kinase-1 is a predictor of poor survival and a novel prognostic biomarker of chemoresistance to paclitaxel treatment in breast cancer , 2015, British Journal of Cancer.
[6] Yu Wang,et al. A glycolytic mechanism regulating an angiogenic switch in prostate cancer. , 2007, Cancer research.
[7] D. Hehir,et al. C‐myc oncogene expression: A marker for females at risk of breast carcinoma , 1993, Journal of surgical oncology.
[8] A. Goldberg,et al. Characterization of the Brain 26S Proteasome and its Interacting Proteins , 2010, Front. Mol. Neurosci..
[9] J. Landers,et al. Steroid hormone regulation of nuclear proto-oncogenes. , 1993, Endocrine reviews.
[10] N. Palackal,et al. Human 3alpha-hydroxysteroid dehydrogenase isoforms (AKR1C1-AKR1C4) of the aldo-keto reductase superfamily: functional plasticity and tissue distribution reveals roles in the inactivation and formation of male and female sex hormones. , 2000, The Biochemical journal.
[11] T. Penning,et al. Structure–function of human 3α-hydroxysteroid dehydrogenases: genes and proteins , 2004, Molecular and Cellular Endocrinology.
[12] Hui Zhou,et al. Novel Mechanism of Anti-apoptotic Function of 78-kDa Glucose-regulated Protein (GRP78) , 2011, The Journal of Biological Chemistry.
[13] T. Flynn,et al. A new nomenclature for the aldo-keto reductase superfamily. , 1997, Biochemical pharmacology.
[14] David J Beebe,et al. Hormonally responsive breast cancer cells in a microfluidic co-culture model as a sensor of microenvironmental activity. , 2013, Integrative biology : quantitative biosciences from nano to macro.
[15] K. Aldape,et al. Mitochondria-Translocated PGK1 Functions as a Protein Kinase to Coordinate Glycolysis and the TCA Cycle in Tumorigenesis. , 2016, Molecular cell.
[16] J. Adamski,et al. A challenge for medicinal chemistry by the 17β-hydroxysteroid dehydrogenase superfamily: an integrated biological function and inhibition study. , 2013, Current topics in medicinal chemistry.
[17] Sheng-Xiang Lin,et al. Comparison of Functional Proteomic Analyses of Human Breast Cancer Cell Lines T47D and MCF7 , 2012, PloS one.
[18] M. Weller,et al. Phosphoglycerate kinase 1 a promoting enzyme for peritoneal dissemination in gastric cancer , 2010, International journal of cancer.
[19] P. Watson,et al. c-mycOncogeneExpression in Estrogen-Dependent and-IndependentBreast Cancer , 1993 .
[20] A. Jemal,et al. Breast Cancer Statistics , 2013 .
[21] Amy S. Lee,et al. Transcriptional induction of GRP78/BiP by histone deacetylase inhibitors and resistance to histone deacetylase inhibitor–induced apoptosis , 2009, Molecular Cancer Therapeutics.
[22] F. Farina,et al. HSP-molecular chaperones in cancer biogenesis and tumor therapy: an overview. , 2012, Anticancer research.
[23] A. Shevchenko,et al. Mass spectrometric sequencing of proteins silver-stained polyacrylamide gels. , 1996, Analytical chemistry.
[24] Sheng-Xiang Lin,et al. Mimicking postmenopausal steroid metabolism in breast cancer cell culture: Differences in response to DHEA or other steroids as hormone sources , 2016, The Journal of Steroid Biochemistry and Molecular Biology.
[25] Wen-Lin Kuo,et al. A collection of breast cancer cell lines for the study of functionally distinct cancer subtypes. , 2006, Cancer cell.
[26] A. Shevchenko,et al. Fast-response proteomics by accelerated in-gel digestion of proteins. , 2003, Analytical chemistry.
[27] Sheng-Xiang Lin,et al. Correction: Comparison of Functional Proteomic Analyses of Human Breast Cancer Cell Lines T47D and MCF7 , 2012, PLoS ONE.
[28] D. Poirier,et al. 17β-Hydroxysteroid dehydrogenase inhibitors: a patent review , 2010, Expert opinion on therapeutic patents.
[29] Leroy Hood,et al. Systems biology, proteomics, and the future of health care: toward predictive, preventative, and personalized medicine. , 2004, Journal of proteome research.
[30] Sheng-Xiang Lin,et al. Structure-based Inhibitor Design for an Enzyme That Binds Different Steroids , 2007, Journal of Biological Chemistry.
[31] P. Veronesi,et al. Preliminary study on oncogene product immunohistochemistry (c-erbB-2, c-myc, ras p21, EGFR) in breast pathology , 1992, The International journal of biological markers.
[32] P. Hogg,et al. Secretion of phosphoglycerate kinase from tumour cells is controlled by oxygen-sensing hydroxylases. , 2004, Biochimica et biophysica acta.
[33] R. Clarke,et al. Targeting GRP78 and antiestrogen resistance in breast cancer. , 2013, Future medicinal chemistry.
[34] D. Spandidos,et al. Immunohistochemical study of ras and myc oncoproteins in apocrine breast lesions with and without papillomatosis. , 1992, European journal of gynaecological oncology.
[35] L. Ellerby,et al. Coupling endoplasmic reticulum stress to the cell death program: role of the ER chaperone GRP78 , 2002, FEBS letters.
[36] Yi Jin,et al. Inhibitors of type 5 17β-hydroxysteroid dehydrogenase (AKR1C3): Overview and structural insights , 2011, The Journal of Steroid Biochemistry and Molecular Biology.
[37] Michael E. Burczynski,et al. Human 3α-hydroxysteroid dehydrogenase isoforms (AKR1C1–AKR1C4) of the aldo-keto reductase superfamily: functional plasticity and tissue distribution reveals roles in the inactivation and formation of male and female sex hormones , 2000 .
[38] D. Liao,et al. c-Myc in breast cancer. , 2000, Endocrine-related cancer.
[39] G. Stancel,et al. Steroid hormone-induced expression of oncogene encoded nuclear proteins. , 1994, Critical reviews in eukaryotic gene expression.
[40] C. Rancourt,et al. Relative involvement of three 17β-hydroxysteroid dehydrogenases (types 1, 7 and 12) in the formation of estradiol in various breast cancer cell lines using selective inhibitors , 2009, Molecular and Cellular Endocrinology.
[41] O. Stål,et al. 17β-Hydroxysteroid Dehydrogenase 14 Affects Estradiol Levels in Breast Cancer Cells and Is a Prognostic Marker in Estrogen Receptor–Positive Breast Cancer , 2006 .
[42] H. Preisler,et al. c-myc, c-erbB-2, and Ki-67 expression in normal breast tissue and in invasive and noninvasive breast carcinoma. , 1992, Cancer research.
[43] V. Kosma,et al. Expression of c-myc proteins in breast cancer as related to established prognostic factors and survival. , 1995, Anticancer research.
[44] M. Lewis,et al. Comparative anatomy of the aldo-keto reductase superfamily. , 1997, The Biochemical journal.
[45] M. Jäättelä,et al. The heat shock protein 70 family: Highly homologous proteins with overlapping and distinct functions , 2007, FEBS letters.
[46] F. Labrie,et al. The intracrine sex steroid biosynthesis pathways. , 2010, Progress in brain research.