Regulatory Mechanism on Anti-Glycolytic and Anti-Metastatic Activities Induced by Strobilanthes crispus in Breast Cancer, In Vitro
暂无分享,去创建一个
[1] M. Pliszka,et al. Glucose Transporters as a Target for Anticancer Therapy , 2021, Cancers.
[2] N. Yaacob,et al. Antiglycolytic Activities of Strobilanthes crispus Active Fraction and its Bioactive Components on Triple-Negative Breast Cancer Cells In Vitro. , 2021, Anti-Cancer Agents in Medicinal Chemistry.
[3] K. Hoe,et al. CSNK1G2 differently sensitizes tamoxifen-induced decrease in PI3K/AKT/mTOR/S6K and ERK signaling according to the estrogen receptor existence in breast cancer cells , 2021, PloS one.
[4] C. Peng,et al. HK2 is associated with the Warburg effect and proliferation in liver cancer: Targets for effective therapy with glycyrrhizin , 2021, Molecular medicine reports.
[5] K. Wong,et al. Strobilanthes crispus bioactive subfraction inhibits tumor progression and improves hematological and morphological parameters in mouse mammary carcinoma model. , 2020, Journal of ethnopharmacology.
[6] Z. Zha,et al. Visualization of GLUT1 Trafficking in Live Cancer Cells by the Use of a Dual-Fluorescence Reporter , 2020, ACS omega.
[7] G. Song,et al. Stigmasterol Causes Ovarian Cancer Cell Apoptosis by Inducing Endoplasmic Reticulum and Mitochondrial Dysfunction , 2020, Pharmaceutics.
[8] Stephen L. Abrams,et al. Targeting GSK3 and Associated Signaling Pathways Involved in Cancer , 2020, Cells.
[9] G. Hoxhaj,et al. The PI3K–AKT network at the interface of oncogenic signalling and cancer metabolism , 2019, Nature Reviews Cancer.
[10] J. Manzo-Merino,et al. Lactate in the Regulation of Tumor Microenvironment and Therapeutic Approaches , 2019, Front. Oncol..
[11] M. Aghi,et al. Fibronectin in malignancy: Cancer-specific alterations, protumoral effects, and therapeutic implications. , 2019, Seminars in oncology.
[12] Y. Ou,et al. Fibronectin Promotes Cell Growth and Migration in Human Renal Cell Carcinoma Cells , 2019, International journal of molecular sciences.
[13] K. Wong,et al. Strobilanthes crispus inhibits migration, invasion and metastasis in breast cancer. , 2019, Journal of ethnopharmacology.
[14] O. Thews,et al. Extracellular Acidosis Modulates the Expression of Epithelial-Mesenchymal Transition (EMT) Markers and Adhesion of Epithelial and Tumor Cells , 2019, Neoplasia.
[15] Changwei Qiu,et al. Targeting the ROS/PI3K/AKT/HIF‐1α/HK2 axis of breast cancer cells: Combined administration of Polydatin and 2‐Deoxy‐d‐glucose , 2019, Journal of cellular and molecular medicine.
[16] Jeffrey T. Chang,et al. GSK3β regulates epithelial-mesenchymal transition and cancer stem cell properties in triple-negative breast cancer , 2019, Breast Cancer Research.
[17] Dirk Mossmann,et al. mTOR signalling and cellular metabolism are mutual determinants in cancer , 2018, Nature Reviews Cancer.
[18] F. Fröhlich,et al. Rab GTPase Function in Endosome and Lysosome Biogenesis. , 2018, Trends in cell biology.
[19] L. Meng,et al. Stigmasterol exhibits potent antitumor effects in human gastric cancer cells mediated via inhibition of cell migration, cell cycle arrest, mitochondrial mediated apoptosis and inhibition of JAK/STAT signalling pathway. , 2018, Journal of B.U.ON. : official journal of the Balkan Union of Oncology.
[20] P. Houghton,et al. ETV7 is an essential component of a rapamycin-insensitive mTOR complex in cancer , 2018, Science Advances.
[21] Shanfeng Zhang,et al. Lutein inhibits proliferation, invasion and migration of hypoxic breast cancer cells via downregulation of HES1. , 2018, International journal of oncology.
[22] K. Wong,et al. Immunomodulatory effects of a bioactive fraction of Strobilanthes crispus in NMU-induced rat mammary tumor model. , 2018, Journal of ethnopharmacology.
[23] R. Arora,et al. Overexpression of hypoxia-inducible factor and metabolic pathways: possible targets of cancer , 2017, Cell & Bioscience.
[24] Joel s. Brown,et al. The Warburg effect as an adaptation of cancer cells to rapid fluctuations in energy demand , 2017, PloS one.
[25] J. Debnath,et al. Autophagy-Dependent Shuttling of TBC1D5 Controls Plasma Membrane Translocation of GLUT1 and Glucose Uptake. , 2017, Molecular cell.
[26] L. Cantley,et al. Phosphorylation of TXNIP by AKT Mediates Acute Influx of Glucose in Response to Insulin. , 2017, Cell reports.
[27] D. Sabatini,et al. mTOR Signaling in Growth, Metabolism, and Disease , 2017, Cell.
[28] I. Shin,et al. Glut1 promotes cell proliferation, migration and invasion by regulating epidermal growth factor receptor and integrin signaling in triple-negative breast cancer cells , 2017, BMB reports.
[29] Abigail Hielscher,et al. Fibronectin: How Its Aberrant Expression in Tumors May Improve Therapeutic Targeting , 2017, Journal of Cancer.
[30] Jing Yang,et al. Epithelial–mesenchymal transition in tumor metastasis , 2016, Molecular oncology.
[31] T. Minamoto,et al. Glycogen synthase kinase‐3β is a pivotal mediator of cancer invasion and resistance to therapy , 2016, Cancer science.
[32] M. Cilli,et al. A highly invasive subpopulation of MDA-MB-231 breast cancer cells shows accelerated growth, differential chemoresistance, features of apocrine tumors and reduced tumorigenicity in vivo , 2016, Oncotarget.
[33] Yan Luo,et al. Oncogenic activation of the PI3K/Akt pathway promotes cellular glucose uptake by downregulating the expression of thioredoxin-interacting protein. , 2016, Cellular signalling.
[34] J. Locasale,et al. The Warburg Effect: How Does it Benefit Cancer Cells? , 2016, Trends in biochemical sciences.
[35] G. Coceano,et al. Glucose is a key driver for GLUT1-mediated nanoparticles internalization in breast cancer cells , 2016, Scientific Reports.
[36] Lewis C Cantley,et al. Metabolic Reprogramming by the PI3K-Akt-mTOR Pathway in Cancer. , 2016, Recent results in cancer research. Fortschritte der Krebsforschung. Progres dans les recherches sur le cancer.
[37] K. Wong,et al. Cell Cycle Modulation of MCF-7 and MDA-MB-231 by a Sub- Fraction of Strobilanthes crispus and its Combination with Tamoxifen. , 2016, Asian Pacific journal of cancer prevention : APJCP.
[38] Y. Song,et al. Cancer‐specific interruption of glucose metabolism by resveratrol is mediated through inhibition of Akt/GLUT1 axis in ovarian cancer cells , 2015, Molecular carcinogenesis.
[39] A. Ghasemzadeh,et al. Phytochemical constituents and biological activities of different extracts of Strobilanthes crispus (L.) Bremek leaves grown in different locations of Malaysia , 2015, BMC Complementary and Alternative Medicine.
[40] S. Khalifa,et al. Evaluation of chemopreventive potential of Strobilanthes crispus against colon cancer formation in vitro and in vivo , 2015, BMC Complementary and Alternative Medicine.
[41] Shuihong Zhou,et al. Inhibiting GLUT-1 expression and PI3K/Akt signaling using apigenin improves the radiosensitivity of laryngeal carcinoma in vivo. , 2015, Oncology reports.
[42] Jing Ma,et al. A Protein Kinase C Phosphorylation Motif in GLUT1 Affects Glucose Transport and is Mutated in GLUT1 Deficiency Syndrome. , 2015, Molecular cell.
[43] J. Rathmell,et al. PKCs Sweeten Cell Metabolism by Phosphorylation of Glut1. , 2015, Molecular cell.
[44] S. Miyamoto,et al. HK2/hexokinase-II integrates glycolysis and autophagy to confer cellular protection , 2015, Autophagy.
[45] N. Yaacob,et al. Anti-Tumor Action, Clinical Biochemistry Profile and Phytochemical Constituents of a Pharmacologically Active Fraction of S. crispus in NMU-Induced Rat Mammary Tumour Model , 2015, PloS one.
[46] Adam L Cohen,et al. Metabolic reprogramming in triple-negative breast cancer through Myc suppression of TXNIP , 2015, Proceedings of the National Academy of Sciences.
[47] M. Bryś,et al. Glucose-dependent glucose transporter 1 expression and its impact on viability of thyroid cancer cells. , 2015, Oncology reports.
[48] Judy Yan,et al. PKM2 contributes to cancer metabolism. , 2015, Cancer letters.
[49] M. Tan,et al. The Warburg effect in tumor progression: mitochondrial oxidative metabolism as an anti-metastasis mechanism. , 2015, Cancer letters.
[50] G. Semenza,et al. Hypoxia-inducible factor 1 and breast cancer metastasis , 2015, Journal of Zhejiang University-SCIENCE B.
[51] P. Vaupel,et al. GLUT-1 expression is largely unrelated to both hypoxia and the Warburg phenotype in squamous cell carcinomas of the vulva , 2014, BMC Cancer.
[52] Li-Ju Chang,et al. Hexokinase 2-mediated Warburg effect is required for PTEN- and p53-deficiency-driven prostate cancer growth. , 2014, Cell reports.
[53] A. Klip,et al. Reciprocal regulation of endocytosis and metabolism. , 2014, Cold Spring Harbor perspectives in biology.
[54] Hui-Kuan Lin,et al. Akt: a new activation mechanism , 2014, Cell Research.
[55] Samy Lamouille,et al. Molecular mechanisms of epithelial–mesenchymal transition , 2014, Nature Reviews Molecular Cell Biology.
[56] N. Yousif. Fibronectin promotes migration and invasion of ovarian cancer cells through up‐regulation of FAK–PI3K/Akt pathway , 2014, Cell biology international.
[57] J. Schwarzbauer,et al. Mammary epithelial cell interactions with fibronectin stimulate epithelial-mesenchymal transition , 2013, Oncogene.
[58] J. G. Pastorino,et al. Akt inhibition promotes hexokinase 2 redistribution and glucose uptake in cancer cells , 2013, Journal of cellular physiology.
[59] A. Shaywitz,et al. AMPK-dependent degradation of TXNIP upon energy stress leads to enhanced glucose uptake via GLUT1. , 2013, Molecular cell.
[60] G. Kerr,et al. GSK3β and cyclin D1 expression predicts outcome in early breast cancer patients , 2012, Breast Cancer Research and Treatment.
[61] B. Hemmings,et al. PI3K-PKB/Akt pathway. , 2012, Cold Spring Harbor perspectives in biology.
[62] G. Semenza. Hypoxia-inducible factors: mediators of cancer progression and targets for cancer therapy. , 2012, Trends in pharmacological sciences.
[63] Ming Tan,et al. Glucose Oxidation Modulates Anoikis and Tumor Metastasis , 2012, Molecular and Cellular Biology.
[64] Yong‐Nyun Kim,et al. Anoikis Resistance: An Essential Prerequisite for Tumor Metastasis , 2012, International journal of cell biology.
[65] Qiang Yu,et al. TXNIP (VDUP-1, TBP-2): a major redox regulator commonly suppressed in cancer by epigenetic mechanisms. , 2011, The international journal of biochemistry & cell biology.
[66] Matthew P. Jacobson,et al. Dysregulated pH: a perfect storm for cancer progression , 2011, Nature Reviews Cancer.
[67] P. Sutphin,et al. Targeting GLUT1 and the Warburg Effect in Renal Cell Carcinoma by Chemical Synthetic Lethality , 2011, Science Translational Medicine.
[68] R. Weinberg,et al. A Perspective on Cancer Cell Metastasis , 2011, Science.
[69] V. Navaratnam,et al. Anticancer activity of a sub-fraction of dichloromethane extract of Strobilanthes crispus on human breast and prostate cancer cells in vitro , 2010, BMC complementary and alternative medicine.
[70] I. Fidler,et al. AACR centennial series: the biology of cancer metastasis: historical perspective. , 2010, Cancer research.
[71] Erik W Thompson,et al. Epithelial to mesenchymal transition and breast cancer , 2009, Breast Cancer Research.
[72] Raghu Kalluri,et al. The basics of epithelial-mesenchymal transition. , 2009, The Journal of clinical investigation.
[73] Raghu Kalluri,et al. EMT: when epithelial cells decide to become mesenchymal-like cells. , 2009, The Journal of clinical investigation.
[74] J. Rathmell,et al. An essential role for the Glut1 PDZ-binding motif in growth factor regulation of Glut1 degradation and trafficking. , 2009, The Biochemical journal.
[75] D. Bentrem,et al. Apigenin Inhibits the GLUT-1 Glucose Transporter and the Phosphoinositide 3-Kinase/Akt Pathway in Human Pancreatic Cancer Cells , 2008, Pancreas.
[76] N. Denko,et al. Hypoxia, HIF1 and glucose metabolism in the solid tumour , 2008, Nature Reviews Cancer.
[77] S. Miyamoto,et al. Akt mediates mitochondrial protection in cardiomyocytes through phosphorylation of mitochondrial hexokinase-II , 2008, Cell Death and Differentiation.
[78] David M. Blodgett,et al. Structural basis of GLUT1 inhibition by cytoplasmic ATP. , 2007, The Journal of general physiology.
[79] A. Tee,et al. Hypoxia-inducible Factor 1α Is Regulated by the Mammalian Target of Rapamycin (mTOR) via an mTOR Signaling Motif* , 2007, Journal of Biological Chemistry.
[80] R. Deberardinis,et al. The transcription factor HIF-1alpha plays a critical role in the growth factor-dependent regulation of both aerobic and anaerobic glycolysis. , 2007, Genes & development.
[81] Allan Vaag,et al. TXNIP Regulates Peripheral Glucose Metabolism in Humans , 2007, PLoS medicine.
[82] Pilar Herrero,et al. Hxk2 Regulates the Phosphorylation State of Mig1 and Therefore Its Nucleocytoplasmic Distribution* , 2007, Journal of Biological Chemistry.
[83] Soo-Hyun Park,et al. The involvement of phosphatidylinositol 3-kinase /Akt signaling in high glucose-induced downregulation of GLUT-1 expression in ARPE cells. , 2007, Life sciences.
[84] P. Leder,et al. Attenuation of LDH-A expression uncovers a link between glycolysis, mitochondrial physiology, and tumor maintenance. , 2006, Cancer cell.
[85] O. Fauziah,et al. Effects of Strobilanthes crispus Tea Aqueous Extracts on Glucose and Lipid Profile in Normal and Streptozotocin-Induced Hyperglycemic Rats , 2006, Plant foods for human nutrition.
[86] J. Hoek,et al. Activation of glycogen synthase kinase 3beta disrupts the binding of hexokinase II to mitochondria by phosphorylating voltage-dependent anion channel and potentiates chemotherapy-induced cytotoxicity. , 2005, Cancer research.
[87] D. Guertin,et al. Phosphorylation and Regulation of Akt/PKB by the Rictor-mTOR Complex , 2005, Science.
[88] C. Thompson,et al. Hexokinase-mitochondria interaction mediated by Akt is required to inhibit apoptosis in the presence or absence of Bax and Bak. , 2004, Molecular cell.
[89] P. Gassmann,et al. Role of Tumor Cell Adhesion and Migration in Organ-Specific Metastasis Formation , 2004, Oncology Research and Treatment.
[90] F. Kikkawa,et al. Fibronectin activates matrix metalloproteinase-9 secretion via the MEK1-MAPK and the PI3K-Akt pathways in ovarian cancer cells , 2004, Clinical & Experimental Metastasis.
[91] D. Aebersold,et al. Hypoxia-inducible factor 1 alpha in high-risk breast cancer: an independent prognostic parameter? , 2004, Breast Cancer Research.
[92] J. Swiątecka,et al. Expression of GLUT1 gene in breast cancer cell lines MCF-7 and MDA-MB-231. , 2003, Ginekologia Polska.
[93] J. Schwarzbauer,et al. The ins and outs of fibronectin matrix assembly , 2003, Journal of Cell Science.
[94] P. V. van Diest,et al. Levels of hypoxia‐inducible factor‐1α independently predict prognosis in patients with lymph node negative breast carcinoma , 2003, Cancer.
[95] C. Sawyers,et al. The phosphatidylinositol 3-Kinase–AKT pathway in human cancer , 2002, Nature Reviews Cancer.
[96] P. Ratcliffe,et al. Activation of the HIF pathway in cancer. , 2001, Current opinion in genetics & development.
[97] A. Awad,et al. Phytosterols Reduce In Vitro Metastatic Ability of MDA-MB-231 Human Breast Cancer Cells , 2001, Nutrition and cancer.
[98] D. Lombardo,et al. Glut-1 translocation in FRTL-5 thyroid cells: role of phosphatidylinositol 3-kinase and N-glycosylation. , 2000, Endocrinology.
[99] F. Ismail-Beigi,et al. Regulation of glucose transport by hypoxia. , 1999, American journal of kidney diseases : the official journal of the National Kidney Foundation.
[100] John Eric Wilson,et al. Further studies on the coupling of mitochondrially bound hexokinase to intramitochondrially compartmented ATP, generated by oxidative phosphorylation. , 1998, Archives of biochemistry and biophysics.
[101] K. Saito,et al. Na(+)-glucose cotransporter inhibitors as antidiabetics. I. Synthesis and pharmacological properties of 4'-dehydroxyphlorizin derivatives based on a new concept. , 1996, Chemical & pharmaceutical bulletin.
[102] R. Gopalakrishna,et al. Tamoxifen Modulates Protein Kinase C via Oxidative Stress in Estrogen Receptor-negative Breast Cancer Cells* , 1996, The Journal of Biological Chemistry.
[103] M. Kasuga,et al. Inhibition of the translocation of GLUT1 and GLUT4 in 3T3-L1 cells by the phosphatidylinositol 3-kinase inhibitor, wortmannin. , 1994, The Biochemical journal.
[104] P. Okunieff,et al. Blood flow, oxygen and nutrient supply, and metabolic microenvironment of human tumors: a review. , 1989, Cancer research.
[105] G. Lienhard,et al. Phosphorylation of the glucose transporter in vitro and in vivo by protein kinase C , 1985, Nature.