Inhibition of Copper Transport Induces Apoptosis in Triple-Negative Breast Cancer Cells and Suppresses Tumor Angiogenesis
暂无分享,去创建一个
O. Olopade | Chuan He | O. Karginova | Tong Wu | S. S. Lee | Alhareth Alsayed | C. Weekley | A. Raoul
[1] V. Bindokas,et al. Multiplex three-dimensional optical mapping of tumor immune microenvironment , 2017, Scientific Reports.
[2] Christopher J. Chang,et al. Copper signaling in the brain and beyond , 2017, The Journal of Biological Chemistry.
[3] H. Harris,et al. Cellular Fates of Manganese(II) Pentaazamacrocyclic Superoxide Dismutase (SOD) Mimetics: Fluorescently Labeled MnSOD Mimetics, X-ray Absorption Spectroscopy, and X-ray Fluorescence Microscopy Studies. , 2017, Inorganic chemistry.
[4] Chuan He,et al. Developing drugs targeting transition metal homeostasis. , 2017, Current opinion in chemical biology.
[5] O. Stål,et al. Defining the human copper proteome and analysis of its expression variation in cancers. , 2017, Metallomics : integrated biometal science.
[6] P. Wittung-Stafshede,et al. Copper chaperone Atox1 plays role in breast cancer cell migration. , 2017, Biochemical and biophysical research communications.
[7] C. Deng,et al. Ammonium tetrathiomolybdate treatment targets the copper transporter ATP7A and enhances sensitivity of breast cancer to cisplatin , 2016, Oncotarget.
[8] A. Willis,et al. Influencing the Tumor Microenvironment: A Phase II Study of Copper Depletion Using Tetrathiomolybdate in Patients with Breast Cancer at High Risk for Recurrence and in Preclinical Models of Lung Metastases , 2016, Clinical Cancer Research.
[9] Stefan Vogt,et al. Endothelial Antioxidant-1: a Key Mediator of Copper-dependent Wound Healing in vivo , 2016, Scientific Reports.
[10] S. Lutsenko,et al. The Role of Copper Chaperone Atox1 in Coupling Redox Homeostasis to Intracellular Copper Distribution , 2016, Antioxidants.
[11] S. Kaler,et al. The Activity of Menkes Disease Protein ATP7A Is Essential for Redox Balance in Mitochondria* , 2016, The Journal of Biological Chemistry.
[12] Paul S. Francis,et al. Copper as a target for prostate cancer therapeutics: copper-ionophore pharmacology and altering systemic copper distribution , 2016, Oncotarget.
[13] Cheng Luo,et al. Inhibition of human copper trafficking by a small molecule significantly attenuates cancer cell proliferation. , 2015, Nature chemistry.
[14] Delphine Denoyer,et al. Targeting copper in cancer therapy: 'Copper That Cancer'. , 2015, Metallomics : integrated biometal science.
[15] G. Angelini,et al. Copper Transport Protein Antioxidant-1 Promotes Inflammatory Neovascularization via Chaperone and Transcription Factor Function , 2015, Scientific Reports.
[16] D. Aebersold,et al. KRAS and HRAS mutations confer resistance to MET targeting in preclinical models of MET‐expressing tumor cells , 2015, Molecular oncology.
[17] E. Kalinina,et al. Role of glutathione, glutathione transferase, and glutaredoxin in regulation of redox-dependent processes , 2014, Biochemistry (Moscow).
[18] A. Popel,et al. Inhibition of breast cancer growth and metastasis by a biomimetic peptide , 2014, Scientific Reports.
[19] Gideon Blumenthal,et al. Pathological complete response and long-term clinical benefit in breast cancer: the CTNeoBC pooled analysis , 2014, The Lancet.
[20] G. Fasola,et al. Measures of outcome in metastatic breast cancer: insights from a real-world scenario. , 2014, The oncologist.
[21] B. Evans,et al. SOD2 to SOD1 Switch in Breast Cancer* , 2014, The Journal of Biological Chemistry.
[22] Andrea Glasauer,et al. Targeting SOD1 reduces experimental non–small-cell lung cancer. , 2014, The Journal of clinical investigation.
[23] I. Treilleux,et al. Lysyl oxidase activity regulates oncogenic stress response and tumorigenesis , 2013, Cell Death & Disease.
[24] D. Nelson,et al. Rapid Copper Acquisition by Developing Murine Mesothelioma: Decreasing Bioavailable Copper Slows Tumor Growth, Normalizes Vessels and Promotes T Cell Infiltration , 2013, PloS one.
[25] G. George,et al. Copper chaperone Atox1 interacts with the metal-binding domain of Wilson's disease protein in cisplatin detoxification. , 2013, The Biochemical journal.
[26] C. Perou,et al. Molecular characterization of basal-like and non-basal-like triple-negative breast cancer. , 2013, The oncologist.
[27] S. Lutsenko,et al. Functional Partnership of the Copper Export Machinery and Glutathione Balance in Human Cells* , 2012, The Journal of Biological Chemistry.
[28] L. Carey,et al. Triple-negative breast cancer: disease entity or title of convenience? , 2010, Nature Reviews Clinical Oncology.
[29] Charles M. Perou,et al. Deconstructing the molecular portraits of breast cancer , 2010, Molecular oncology.
[30] S. Merajver,et al. Tetrathiomolybdate inhibits head and neck cancer metastasis by decreasing tumor cell motility, invasiveness and by promoting tumor cell anoikis , 2010, Molecular Cancer.
[31] B. Lai,et al. Wilson Disease at a Single Cell Level , 2010, The Journal of Biological Chemistry.
[32] Y. Lim,et al. Proteome-Wide Profiling of the MCF10AT Breast Cancer Progression Model , 2010, PloS one.
[33] T. Chou. Drug combination studies and their synergy quantification using the Chou-Talalay method. , 2010, Cancer research.
[34] Larry Norton,et al. Tumor Self-Seeding by Circulating Cancer Cells , 2009, Cell.
[35] S. Lutsenko,et al. Human copper transporters: mechanism, role in human diseases and therapeutic potential. , 2009, Future medicinal chemistry.
[36] R. Mumper,et al. Elevated copper and oxidative stress in cancer cells as a target for cancer treatment. , 2009, Cancer treatment reviews.
[37] Fei Ye,et al. Copper Regulation of Hypoxia-Inducible Factor-1 Activity , 2009, Molecular Pharmacology.
[38] M. Ushio-Fukai,et al. Novel Role of Antioxidant-1 (Atox1) as a Copper-dependent Transcription Factor Involved in Cell Proliferation* , 2008, Journal of Biological Chemistry.
[39] K. Hess,et al. Response to neoadjuvant therapy and long-term survival in patients with triple-negative breast cancer. , 2008, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[40] C. Perou,et al. The Triple Negative Paradox: Primary Tumor Chemosensitivity of Breast Cancer Subtypes , 2007, Clinical Cancer Research.
[41] D. Shaw,et al. Copper Binding by Tetrathiomolybdate Attenuates Angiogenesis and Tumor Cell Proliferation through the Inhibition of Superoxide Dismutase 1 , 2006, Clinical Cancer Research.
[42] Quynh-Thu Le,et al. Lysyl oxidase is essential for hypoxia-induced metastasis , 2006, Nature.
[43] Y. Pu,et al. Resistance to paclitaxel is proportional to cellular total antioxidant capacity. , 2005, Cancer research.
[44] S. Schreiber,et al. Distinct effectors of platelet-derived growth factor receptor-alpha signaling are required for cell survival during embryogenesis. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[45] J. Valentine,et al. Mechanisms for activating Cu- and Zn-containing superoxide dismutase in the absence of the CCS Cu chaperone. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[46] J. Gitlin,et al. Mechanisms of Biosynthesis of Mammalian Copper/Zinc Superoxide Dismutase* , 2003, Journal of Biological Chemistry.
[47] Stefan Vogt,et al. MAPS : A set of software tools for analysis and visualization of 3D X-ray fluorescence data sets , 2003 .
[48] Dar-Ren Chen,et al. Serum and tissue trace elements in patients with breast cancer in Taiwan , 2002, Biological Trace Element Research.
[49] S. Merajver,et al. Copper deficiency induced by tetrathiomolybdate suppresses tumor growth and angiogenesis. , 2002, Cancer research.
[50] K. Ogawa,et al. Copper‐transporting P‐Type Adenosine Triphosphatase (ATP7B) Is Expressed in Human Breast Carcinoma , 2002, Japanese journal of cancer research : Gann.
[51] P. Lockhart,et al. The Role of GMXCXXC Metal Binding Sites in the Copper-induced Redistribution of the Menkes Protein* , 1999, The Journal of Biological Chemistry.
[52] S. Pan,et al. Assay of superoxide dismutase activity by combining electrophoresis and densitometry , 1996 .
[53] M. Ciriolo,et al. The role of glutathione in copper metabolism and toxicity. , 1989, The Journal of biological chemistry.
[54] B. Lai,et al. Copper redistribution in Atox1-deficient mouse fibroblast cells , 2009, JBIC Journal of Biological Inorganic Chemistry.
[55] D. Huffman,et al. Function, structure, and mechanism of intracellular copper trafficking proteins. , 2001, Annual review of biochemistry.