Proteasome inhibition mediates p53 reactivation and anti-cancer activity of 6-Gingerol in cervical cancer cells
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Durga Prasad Mishra | Namrata Rastogi | Rakesh Maurya | V. Srivastava | D. P. Mishra | M. Bhatt | Shivali Duggal | Shailendra Kumar Singh | Konica Porwal | Vikas Kumar Srivastava | Madan L.B. Bhatt | R. Maurya | Shivali Duggal | N. Rastogi | Konica Porwal | D. Mishra
[1] K. Pandey,et al. Plant polyphenols as dietary antioxidants in human health and disease , 2009, Oxidative medicine and cellular longevity.
[2] Jing Wen,et al. [6]-Gingerol Induces Cell Cycle Arrest and Cell Death of Mutant p53-expressing Pancreatic Cancer Cells , 2006, Yonsei medical journal.
[3] B. Das,et al. Prospects and prejudices of human papillomavirus vaccines in India. , 2008, Vaccine.
[4] K. Bishayee,et al. [6]-Gingerol induces caspase 3 dependent apoptosis and autophagy in cancer cells: drug-DNA interaction and expression of certain signal genes in HeLa cells. , 2012, European journal of pharmacology.
[5] W. Vanden Berghe. Epigenetic impact of dietary polyphenols in cancer chemoprevention: lifelong remodeling of our epigenomes. , 2012, Pharmacological research.
[6] D. DiMaio,et al. Repression of the Human Papillomavirus E6 Gene Initiates p53-Dependent, Telomerase-Independent Senescence and Apoptosis in HeLa Cervical Carcinoma Cells , 2004, Journal of Virology.
[7] P. Pelicci,et al. Oxidative stress activates a specific p53 transcriptional response that regulates cellular senescence and aging , 2013, Aging cell.
[8] G. Tsay,et al. 6-Gingerol Inhibits Growth of Colon Cancer Cell LoVo via Induction of G2/M Arrest , 2012, Evidence-based complementary and alternative medicine : eCAM.
[9] D. P. Mishra,et al. (6)-Gingerolinduced myeloid leukemia cell death is initiated by reactive oxygen species and activation of miR-27b expression. , 2014, Free radical biology & medicine.
[10] R. Roden,et al. Stressing the Ubiquitin-Proteasome System without 20S Proteolytic Inhibition Selectively Kills Cervical Cancer Cells , 2011, PloS one.
[11] Dietrich Büsselberg,et al. Cisplatin as an Anti-Tumor Drug: Cellular Mechanisms of Activity, Drug Resistance and Induced Side Effects , 2011, Cancers.
[12] Hong Sun,et al. Reactive oxygen species-mediated apoptosis contributes to chemosensitization effect of saikosaponins on cisplatin-induced cytotoxicity in cancer cells , 2010, Journal of experimental & clinical cancer research : CR.
[13] D. M. Parkin,et al. Early detection of cervical cancer with visual inspection methods: a summary of completed and on-going studies in India. , 2003, Salud publica de Mexico.
[14] Di Chen,et al. Dietary flavonoids as proteasome inhibitors and apoptosis inducers in human leukemia cells. , 2005, Biochemical pharmacology.
[15] J. Estrela,et al. Natural polyphenols in cancer therapy , 2011, Critical reviews in clinical laboratory sciences.
[16] H. Mukhtar,et al. Nanoformulation of natural products for prevention and therapy of prostate cancer. , 2013, Cancer letters.
[17] M. Blagosklonny,et al. Yeast-like chronological senescence in mammalian cells: phenomenon, mechanism and pharmacological suppression , 2011, Aging.
[18] Q Ping Dou,et al. Inhibition of proteasome activity by the dietary flavonoid apigenin is associated with growth inhibition in cultured breast cancer cells and xenografts , 2007, Breast Cancer Research.
[19] Jee-Hye Choi,et al. Selective death of cancer cells by preferential induction of reactive oxygen species in response to (-)-epigallocatechin-3-gallate. , 2012, Biochemical and biophysical research communications.
[20] S. Zick,et al. Pharmacokinetics of 6-Gingerol, 8-Gingerol, 10-Gingerol, and 6-Shogaol and Conjugate Metabolites in Healthy Human Subjects , 2008, Cancer Epidemiology Biomarkers & Prevention.
[21] T. Soucy,et al. Characterization of a new series of non-covalent proteasome inhibitors with exquisite potency and selectivity for the 20S β5-subunit , 2010, The Biochemical journal.
[22] G. Filomeni,et al. Reactive Oxygen Species Mediate p53 Activation and Apoptosis Induced by Sodium Nitroprusside in SH-SY5Y Cells , 2008, Molecular Pharmacology.
[23] Shin-Jeong Lee,et al. [6]-Gingerol, a pungent ingredient of ginger, inhibits angiogenesis in vitro and in vivo. , 2005, Biochemical and biophysical research communications.
[24] Durga Prasad Mishra,et al. Therapeutic targeting of cancer cell cycle using proteasome inhibitors , 2012, Cell Division.
[25] Y. Surh,et al. Cancer chemoprevention with dietary phytochemicals , 2003, Nature Reviews Cancer.
[26] Kwun Chuen Gary Chan,et al. Combination of Proteasome and HDAC Inhibitors for Uterine Cervical Cancer Treatment , 2009, Clinical Cancer Research.
[27] B. Das,et al. Anti-human papillomavirus therapeutics: facts & future. , 2009, The Indian journal of medical research.
[28] A. Oyagbemi,et al. Molecular targets of [6]‐gingerol: Its potential roles in cancer chemoprevention , 2010, BioFactors.
[29] R. Medema,et al. p21 Inhibits Thr161 Phosphorylation of Cdc2 to Enforce the G2 DNA Damage Checkpoint* , 2000, The Journal of Biological Chemistry.
[30] L. Szekely,et al. Rescue of p53 function by small-molecule RITA in cervical carcinoma by blocking E6-mediated degradation. , 2010, Cancer research.
[31] David P Lane,et al. p53-based cancer therapy. , 2010, Cold Spring Harbor perspectives in biology.
[32] M. Scheffner,et al. The HPV-16 E6 and E6-AP complex functions as a ubiquitin-protein ligase in the ubiquitination of p53 , 1993, Cell.
[33] Z. Bi,et al. The effects of 6-gingerol on proliferation, differentiation, and maturation of osteoblast-like MG-63 cells , 2015, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[34] E. Sen,et al. Kaempferol induces apoptosis in glioblastoma cells through oxidative stress , 2007, Molecular Cancer Therapeutics.
[35] Di Chen,et al. Celastrol, a triterpene extracted from the Chinese "Thunder of God Vine," is a potent proteasome inhibitor and suppresses human prostate cancer growth in nude mice. , 2006, Cancer research.
[36] A. Levine,et al. The first 30 years of p53: growing ever more complex , 2009, Nature Reviews Cancer.
[37] J. Peto,et al. Human papillomavirus is a necessary cause of invasive cervical cancer worldwide , 1999, The Journal of pathology.
[38] N. Chattopadhyay,et al. [6]-Gingerol induces bone loss in ovary intact adult mice and augments osteoclast function via the transient receptor potential vanilloid 1 channel. , 2012, Molecular nutrition & food research.
[39] A. Jemal,et al. Global cancer statistics , 2011, CA: a cancer journal for clinicians.
[40] F. Di Domenico,et al. Antioxidants in cervical cancer: chemopreventive and chemotherapeutic effects of polyphenols. , 2012, Biochimica et biophysica acta.
[41] Nihal Ahmad,et al. Dose translation from animal to human studies revisited , 2007, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[42] Seong-ho Lee,et al. Multiple mechanisms are involved in 6‐gingerol‐induced cell growth arrest and apoptosis in human colorectal cancer cells , 2008, Molecular carcinogenesis.
[43] R. Mason,et al. Recent advances in curcumin nanoformulation for cancer therapy , 2014, Expert opinion on drug delivery.
[44] Guoqing Shi,et al. The Tumor Proteasome Is a Primary Target for the Natural Anticancer Compound Withaferin A Isolated from “Indian Winter Cherry” , 2007, Molecular Pharmacology.
[45] M. Patankar,et al. Terpenoids from Zingiber officinale (Ginger) Induce Apoptosis in Endometrial Cancer Cells through the Activation of p53 , 2012, PloS one.
[46] Xiao-Ming Yin,et al. Cyanidin-3-rutinoside, a Natural Polyphenol Antioxidant, Selectively Kills Leukemic Cells by Induction of Oxidative Stress* , 2007, Journal of Biological Chemistry.
[47] E. D. de Vries,et al. Anticancer drugs aimed at E6 and E7 activity in HPV-positive cervical cancer. , 2012, Current cancer drug targets.
[48] B. Gabrielli,et al. RNA Interference against Human Papillomavirus Oncogenes in Cervical Cancer Cells Results in Increased Sensitivity to Cisplatin , 2005, Molecular Pharmacology.
[49] C. Lv,et al. Wentilactone A as a novel potential antitumor agent induces apoptosis and G2/M arrest of human lung carcinoma cells, and is mediated by HRas-GTP accumulation to excessively activate the Ras/Raf/ERK/p53-p21 pathway , 2013, Cell Death and Disease.
[50] D. Kuhn,et al. Proteasome Inhibitors in Cancer Therapy: Lessons from the First Decade , 2008, Clinical Cancer Research.
[51] G. Achanta,et al. Role of p53 in Sensing Oxidative DNA Damage in Response to Reactive Oxygen Species-Generating Agents , 2004, Cancer Research.
[52] J. Jassem,et al. Concurrent weekly cisplatin and radiotherapy in routine management of cervical cancer: a report on patient compliance and acute toxicity. , 2004, International journal of radiation oncology, biology, physics.
[53] T. Das,et al. Restoration of tumor suppressor p53 by differentially regulating pro- and anti-p53 networks in HPV-18-infected cervical cancer cells , 2012, Oncogene.
[54] Tae Won Kim,et al. Bortezomib induces G2-M arrest in human colon cancer cells through ROS-inducible phosphorylation of ATM-CHK1. , 2012, International journal of oncology.
[55] K. Landis-Piwowar,et al. Natural compounds with proteasome inhibitory activity for cancer prevention and treatment. , 2008, Current protein & peptide science.
[56] P. Chumakov,et al. [Transcriptional inhibition of human papilloma virus in cervical carcinoma cells reactivates functions of the tumor suppressor p53]. , 2007, Молекулярная биология.
[57] A. Jemal,et al. Global Cancer Statistics , 2011 .
[58] J. Keller,et al. Natural polyphenols as proteasome modulators and their role as anti‐cancer compounds , 2008, The FEBS journal.
[59] Ramesh C. Gupta,et al. Withaferin A induces p53-dependent apoptosis by repression of HPV oncogenes and upregulation of tumor suppressor proteins in human cervical cancer cells. , 2011, Carcinogenesis.
[60] Y. Shukla,et al. Tea polyphenols enhance cisplatin chemosensitivity in cervical cancer cells via induction of apoptosis. , 2013, Life sciences.
[61] K. Friese,et al. Bortezomib targets the caspase-like proteasome activity in cervical cancer cells, triggering apoptosis that can be enhanced by nelfinavir. , 2011, Current cancer drug targets.
[62] Sowmyanarayanan Sadagopan,et al. IT in India , 2012, IT Professional.