Leukotriene biosynthesis inhibitor MK886 impedes DNA polymerase activity.
暂无分享,去创建一个
M. Egli | R. Lloyd | Leena Maddukuri | Surajit Banerjee | Amit D Ketkar | M. Zafar | R. Eoff | Kinrin Yamanaka | Jeong-Yun Choi
[1] R. G. Lloyd,et al. Functions of Translesion DNA Polymerases: Implications for Cancer Risk and Opportunities as Therapeutic Targets , 2013 .
[2] C. Canman,et al. REV1 and DNA polymerase zeta in DNA interstrand crosslink repair , 2012, Environmental and molecular mutagenesis.
[3] A. Jadhav,et al. A Comprehensive Strategy to Discover Inhibitors of the Translesion Synthesis DNA Polymerase κ , 2012, PloS one.
[4] N. Makridakis,et al. Translesion DNA Polymerases and Cancer , 2012, Front. Gene..
[5] M. Egli,et al. A nucleotide-analogue-induced gain of function corrects the error-prone nature of human DNA polymerase iota. , 2012, Journal of the American Chemical Society.
[6] Teruya Nakamura,et al. Watching DNA polymerase η make a phosphodiester bond , 2012, Nature.
[7] Robert E. Johnson,et al. Human DNA polymerase η is pre-aligned for dNTP binding and catalysis. , 2012, Journal of molecular biology.
[8] Aurélien Grosdidier,et al. Fast docking using the CHARMM force field with EADock DSS , 2011, J. Comput. Chem..
[9] R. Eoff,et al. Roles of the Four DNA Polymerases of the Crenarchaeon Sulfolobus solfataricus and Accessory Proteins in DNA Replication* , 2011, The Journal of Biological Chemistry.
[10] Aurélien Grosdidier,et al. SwissDock, a protein-small molecule docking web service based on EADock DSS , 2011, Nucleic Acids Res..
[11] J. Bartek,et al. Replication stress and oxidative damage contribute to aberrant constitutive activation of DNA damage signalling in human gliomas , 2010, Oncogene.
[12] D. Lu,et al. Analysis of specialized DNA polymerases expression in human gliomas: association with prognostic significance. , 2010, Neuro-oncology.
[13] Robert E. Johnson,et al. Structural basis for the suppression of skin cancers by DNA polymerase η , 2010, Nature.
[14] S. Broyde,et al. The Chemical Biology of DNA Damage , 2010 .
[15] Jae Young Lee,et al. Structure and Mechanism of Human DNA Polymerase η , 2010, Nature.
[16] Ju-Ri Jung,et al. MK886-induced apoptosis depends on the 5-LO expression level in human malignant glioma cells , 2010, Journal of Neuro-Oncology.
[17] F. Sugawara,et al. 3-O-Methylfunicone, a Selective Inhibitor of Mammalian Y-Family DNA Polymerases from an Australian Sea Salt Fungal Strain , 2009, Marine drugs.
[18] Samuel H. Wilson,et al. A real-time fluorescence method for enzymatic characterization of specialized human DNA polymerases , 2009, Nucleic acids research.
[19] M. Egli,et al. Structural and Functional Elucidation of the Mechanism Promoting Error-prone Synthesis by Human DNA Polymerase κ Opposite the 7,8-Dihydro-8-oxo-2′-deoxyguanosine Adduct* , 2009, The Journal of Biological Chemistry.
[20] F. Guengerich,et al. Conformational Changes during Nucleotide Selection by Sulfolobus solfataricus DNA Polymerase Dpo4* , 2009, The Journal of Biological Chemistry.
[21] I. Kuntz,et al. DOCK 6: combining techniques to model RNA-small molecule complexes. , 2009, RNA.
[22] G. Schneider,et al. MK-886, an inhibitor of the 5-lipoxygenase-activating protein, inhibits cyclooxygenase-1 activity and suppresses platelet aggregation. , 2009, European journal of pharmacology.
[23] F. Sugawara,et al. Penicilliols A and B, novel inhibitors specific to mammalian Y-family DNA polymerases. , 2009, Bioorganic & medicinal chemistry.
[24] M. Egli,et al. Versatility of Y-family Sulfolobus solfataricus DNA Polymerase Dpo4 in Translesion Synthesis Past Bulky N2-Alkylguanine Adducts* , 2009, Journal of Biological Chemistry.
[25] G. Scagliotti,et al. Polymerase η mRNA Expression Predicts Survival of Non–Small Cell Lung Cancer Patients Treated with Platinum-Based Chemotherapy , 2009, Clinical Cancer Research.
[26] K. Cimprich,et al. DNA damage tolerance: when it's OK to make mistakes. , 2009, Nature chemical biology.
[27] F. Guengerich,et al. Kinetic Analysis of Correct Nucleotide Insertion by a Y-family DNA Polymerase Reveals Conformational Changes Both Prior to and following Phosphodiester Bond Formation as Detected by Tryptophan Fluorescence* , 2008, Journal of Biological Chemistry.
[28] J. Arnold,et al. Nucleic acid polymerases employ a general acid for nucleotidyl transfer , 2008, Nature Structural &Molecular Biology.
[29] R. Woodgate,et al. What a difference a decade makes: Insights into translesion DNA synthesis , 2007, Proceedings of the National Academy of Sciences.
[30] S. D. Pena,et al. Characterization of promoter regulatory elements involved in downexpression of the DNA polymerase κ in colorectal cancer , 2007, Oncogene.
[31] M. Egli,et al. Molecular Basis of Selectivity of Nucleoside Triphosphate Incorporation Opposite O6-Benzylguanine by Sulfolobus solfataricus DNA Polymerase Dpo4 , 2007, Journal of Biological Chemistry.
[32] Robert E. Johnson,et al. Human DNA Polymerase κ Encircles DNA: Implications for Mismatch Extension and Lesion Bypass , 2007 .
[33] F. Cianchi,et al. Inhibition of 5-lipoxygenase by MK886 augments the antitumor activity of celecoxib in human colon cancer cells , 2006, Molecular Cancer Therapeutics.
[34] I. Fijalkowska,et al. Translesion synthesis DNA polymerases and control of genome stability. , 2006, Frontiers in bioscience : a journal and virtual library.
[35] F. Guengerich,et al. Translesion Synthesis across Bulky N2-Alkyl Guanine DNA Adducts by Human DNA Polymerase κ* , 2006, Journal of Biological Chemistry.
[36] F. Hanaoka,et al. A Novel Role of DNA Polymerase η in Modulating Cellular Sensitivity to Chemotherapeutic Agents , 2006, Molecular Cancer Research.
[37] R. Wood,et al. DNA polymerases and somatic hypermutation of immunoglobulin genes , 2005, EMBO reports.
[38] Robert E. Johnson,et al. Eukaryotic translesion synthesis DNA polymerases: specificity of structure and function. , 2005, Annual review of biochemistry.
[39] M. Radman. SOS replication: a distinct DNA replication mechanism which is induced by DNA-damaging treatments? 1970. , 2005, DNA repair.
[40] M. Albertella,et al. The overexpression of specialized DNA polymerases in cancer. , 2005, DNA repair.
[41] T. Ørntoft,et al. DNA damage response as a candidate anti-cancer barrier in early human tumorigenesis , 2005, Nature.
[42] Satya Prakash,et al. Replication by human DNA polymerase-ι occurs by Hoogsteen base-pairing , 2004, Nature.
[43] D. Jerina,et al. Crystal structure of a benzo[a]pyrene diol epoxide adduct in a ternary complex with a DNA polymerase. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[44] Y. Shinkai,et al. Polκ protects mammalian cells against the lethal and mutagenic effects of benzo[a]pyrene , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[45] M. Radman,et al. Specialized DNA Polymerases, Cellular Survival, and the Genesis of Mutations , 2002, Science.
[46] S. Biswal,et al. Inhibition of peroxisome-proliferator-activated receptor (PPAR)α by MK886 , 2001 .
[47] Robert E. Johnson,et al. Roles of yeast DNA polymerases delta and zeta and of Rev1 in the bypass of abasic sites. , 2001, Genes & development.
[48] Chikahide Masutani,et al. The XPV (xeroderma pigmentosum variant) gene encodes human DNA polymerase η , 1999, Nature.
[49] S. Biswal,et al. The 5-lipoxygenase-activating protein (FLAP) inhibitor, MK886, induces apoptosis independently of FLAP. , 1999, The Biochemical journal.
[50] Robert E. Johnson,et al. Efficient bypass of a thymine-thymine dimer by yeast DNA polymerase, Poleta. , 1999, Science.
[51] S. Charleson,et al. 5‐lipoxygenase‐activating protein is an arachidonate binding protein , 1993, FEBS letters.
[52] H E Morton,et al. MK886, a potent and specific leukotriene biosynthesis inhibitor blocks and reverses the membrane association of 5-lipoxygenase in ionophore-challenged leukocytes. , 1990, The Journal of biological chemistry.
[53] D. Denis,et al. L-663,536 (MK-886) (3-[1-(4-chlorobenzyl)-3-t-butyl-thio-5-isopropylindol-2-yl]-2,2 - dimethylpropanoic acid), a novel, orally active leukotriene biosynthesis inhibitor. , 1989, Canadian journal of physiology and pharmacology.
[54] A. Sarasin,et al. Both XPA and DNA polymerase eta are necessary for the repair of doxorubicin-induced DNA lesions. , 2012, Cancer letters.
[55] M. R. Miller,et al. Down-regulation of vinculin upon MK886-induced apoptosis in LN18 glioblastoma cells. , 2007, Neoplasma.
[56] M. Goodman. Error-prone repair DNA polymerases in prokaryotes and eukaryotes. , 2002, Annual review of biochemistry.
[57] G. Walker,et al. The SOS response: recent insights into umuDC-dependent mutagenesis and DNA damage tolerance. , 2000, Annual review of genetics.
[58] K. Dittmann,et al. MK-886, a leukotriene biosynthesis inhibitor, induces antiproliferative effects and apoptosis in HL-60 cells. , 1998, Leukemia research.
[59] M. Murcko,et al. Crystal Structure of HIV-1 Protease in Complex with Vx-478, a Potent and Orally Bioavailable Inhibitor of the Enzyme , 1995 .
[60] C. Canman,et al. DNA Polymerase zeta is a major determinant of resistance to platinum-based chemotherapeutic agents , 2022 .