Complexation and molecular modeling studies of europium(III)-gallic acid-amino acid complexes.
暂无分享,去创建一个
[1] Petrie F. Roodbol. Expert , 2018, Older People: Improving Health and Social Care.
[2] J. M. Salas,et al. Lanthanide complexes containing 5-methyl-1,2,4-triazolo[1,5-a] pyrimidin-7(4H)-one and their therapeutic potential to fight leishmaniasis and Chagas disease. , 2014, Journal of inorganic biochemistry.
[3] N. Russo,et al. Radical scavenging ability of gallic acid toward OH and OOH radicals. Reaction mechanism and rate constants from the density functional theory. , 2014, The journal of physical chemistry. B.
[4] C. Orvig,et al. Improved separation of the curcuminoids, syntheses of their rare earth complexes, and studies of potential antiosteoporotic activity. , 2014, Journal of inorganic biochemistry.
[5] B. de Las Rivas,et al. Uncovering the Lactobacillus plantarum WCFS1 Gallate Decarboxylase Involved in Tannin Degradation , 2013, Applied and Environmental Microbiology.
[6] A. Sureda,et al. Protective Role of Gallic Acid Isolated from Peltiphyllum Peltatum Against Sodium Fluoride-Induced Oxidative Stress in Rat’s Heart , 2013 .
[7] C. Liang,et al. Gallic acid induces the apoptosis of human osteosarcoma cells in vitro and in vivo via the regulation of mitogen-activated protein kinase pathways. , 2012, Cancer biotherapy & radiopharmaceuticals.
[8] Y. Ju,et al. Cu(II), Co(II), and Ni(II)–Antioxidative Phenolate–Glycine Peptide Systems: An Insight into Its Equilibrium Solution Study , 2012 .
[9] Xin Liu,et al. Synthesis, DNA binding, photo-induced DNA cleavage and cell cytotoxicity studies of a family of light rare earth complexes. , 2012, Journal of inorganic biochemistry.
[10] J. Van Loco,et al. Migration of 18 trace elements from ceramic food contact material: influence of pigment, pH, nature of acid and temperature. , 2012, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[11] A. Sureda,et al. Protective effect of gallic acid isolated from Peltiphyllum peltatum against sodium fluoride-induced oxidative stress in rat’s kidney , 2012, Molecular and Cellular Biochemistry.
[12] T. Deligeorgiev,et al. Europium Coordination Complexes as Potential Anticancer Drugs: Their Partitioning and Permeation Into Lipid Bilayers as Revealed by Pyrene Fluorescence Quenching , 2012, Journal of Fluorescence.
[13] A. Davies,et al. Synthesis and evaluation of the europium(III) and zinc(II) complexes as luminescent bioprobes in high content cell-imaging analysis. , 2011, Journal of inorganic biochemistry.
[14] T. Chou,et al. Complex Formation Between Ferric(III), Chromium(III), and Cupric(II) Metal Ions and (O,N) and (O,O) Donor Ligands with Biological Relevance in Aqueous Solution , 2011 .
[15] Jai-Sing Yang,et al. Gallic acid suppresses the migration and invasion of PC-3 human prostate cancer cells via inhibition of matrix metalloproteinase-2 and -9 signaling pathways. , 2011, Oncology reports.
[16] T. Deligeorgiev,et al. Europium complexes of 1,10-phenanthrolines: Their inclusion in liposomes and cytotoxicity , 2011, Russian Journal of Bioorganic Chemistry.
[17] Anupama Sharma,et al. Surface modified dendrimers: synthesis and characterization for cancer targeted drug delivery. , 2011, Bioorganic & medicinal chemistry.
[18] W. Park,et al. Gallic acid-induced lung cancer cell death is accompanied by ROS increase and glutathione depletion , 2011, Molecular and Cellular Biochemistry.
[19] I. A. A. El-Gawad,et al. Comparison of the Coordination Tendency of Amino Acids, Nucleobases, or Mononucleotides Toward the Monomeric and Dimeric Lanthanide Complexes with Biologically Important Compounds , 2011 .
[20] T. Deligeorgiev,et al. Fluorescence Study of Lipid Bilayer Interactions of Eu(III) Coordination Complexes , 2011, Journal of Fluorescence.
[21] Yu-Jen Chen,et al. Gallic acid induces G2/M phase arrest of breast cancer cell MCF-7 through stabilization of p27(Kip1) attributed to disruption of p27(Kip1)/Skp2 complex. , 2011, Journal of agricultural and food chemistry.
[22] W. Park,et al. The effects of mitogen-activated protein kinase inhibitors or small interfering RNAs on gallic acid-induced HeLa cell death in relation to reactive oxygen species and glutathione. , 2011, Journal of agricultural and food chemistry.
[23] D. Maurya,et al. Anticancer property of gallic acid in A549, a human lung adenocarcinoma cell line, and possible mechanisms , 2010, Journal of clinical biochemistry and nutrition.
[24] Hue Lee,et al. Gallic acid induces G2/M phase cell cycle arrest via regulating 14-3-3β release from Cdc25C and Chk2 activation in human bladder transitional carcinoma cells. , 2010, Molecular nutrition & food research.
[25] H. Azab,et al. Fluorescence and Electrochemical Probing of N-Acetylamino Acids, Nucleotides, and DNA by the Eu(III)−Bathophenanthroline Complex , 2010 .
[26] G. Buettner,et al. Free radicals produced by the oxidation of gallic acid: An electron paramagnetic resonance study , 2010, Chemistry Central journal.
[27] Jai-Sing Yang,et al. Gallic acid induces apoptosis in A375.S2 human melanoma cells through caspase-dependent and -independent pathways. , 2010, International journal of oncology.
[28] R. Kiss,et al. Simple di- and trivanillates exhibit cytostatic properties toward cancer cells resistant to pro-apoptotic stimuli. , 2010, Bioorganic & medicinal chemistry.
[29] W. Park,et al. Gallic acid inhibits the growth of HeLa cervical cancer cells via apoptosis and/or necrosis. , 2010, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[30] Kyung-Chul Choi,et al. Gallic Acid Suppresses Lipopolysaccharide-Induced Nuclear Factor-κB Signaling by Preventing RelA Acetylation in A549 Lung Cancer Cells , 2009, Molecular Cancer Research.
[31] R. Yunes,et al. Gallic acid ester derivatives induce apoptosis and cell adhesion inhibition in melanoma cells: The relationship between free radical generation, glutathione depletion and cell death. , 2009, Chemico-biological interactions.
[32] L. Pettit,et al. A more realistic approach to speciation using the IUPAC Stability Constants Database , 2009 .
[33] Guowen Zhang,et al. Spectroscopic studies on the interaction of morin–Eu(III) complex with calf thymus DNA , 2009 .
[34] Y. Ju,et al. Iron Complexation Studies of Gallic Acid , 2009 .
[35] Jincai Wu,et al. Fluorescence and Biological Evaluation of the La(III) and Eu(III) Complexes with 7-methoxychromone-3-carbaldehyde Benzoyl Hydrazone Schiff Base , 2009, Journal of Fluorescence.
[36] I. Kang,et al. Inhibitory effect of methyl gallate and gallic acid on oral bacteria , 2008, The Journal of Microbiology.
[37] R. Yunes,et al. Evaluation of anti-HSV-2 activity of gallic acid and pentyl gallate. , 2008, Biological & pharmaceutical bulletin.
[38] Ruijun Hu,et al. Synthesis, characterization and DNA-binding studies on La(III) and Ce(III) complexes containing ligand of N-phenyl-2-pyridinecarboxamide. , 2007, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[39] H. Kuwano,et al. Anticancer effects of gallic acid isolated from Indonesian herbal medicine, Phaleria macrocarpa (Scheff.) Boerl, on human cancer cell lines. , 2007, International journal of oncology.
[40] T. Deligeorgiev,et al. Evaluation of the cytotoxic and pro-apoptotic activities of Eu(III) complexes with appended DNA intercalators in a panel of human malignant cell lines. , 2006, Medicinal chemistry (Shariqah (United Arab Emirates)).
[41] Andreas Klamt,et al. Accurate prediction of basicity in aqueous solution with COSMO‐RS , 2006, J. Comput. Chem..
[42] B D Hammock,et al. Application of europium(III) chelate-dyed nanoparticle labels in a competitive atrazine fluoroimmunoassay on an ITO waveguide. , 2006, Biosensors & bioelectronics.
[43] Leslie D. Pettit,et al. The IUPAC stability constants database , 2006 .
[44] I. Kostova. Lanthanides as anticancer agents. , 2005, Current medicinal chemistry. Anti-cancer agents.
[45] I. Hemmilä,et al. Progress in Lanthanides as Luminescent Probes , 2005, Journal of Fluorescence.
[46] A. Hutchison,et al. Lanthanum carbonate for the treatment of hyperphosphataemia in renal failure and dialysis patients , 2005, Expert opinion on pharmacotherapy.
[47] Andreas Klamt,et al. First Principles Calculations of Aqueous pKa Values for Organic and Inorganic Acids Using COSMO-RS Reveal an Inconsistency in the Slope of the pKa Scale. , 2003, The journal of physical chemistry. A.
[48] Kui Wang,et al. Cell responses to lanthanides and potential pharmacological actions of lanthanides. , 2003, Metal ions in biological systems.
[49] Takahiko Nojima,et al. Fluorescent lanthanide chelates for biological systems , 2002 .
[50] M. Bradbury,et al. Sorption of Eu on Na- and Ca-montmorillonites: Experimental investigations and modelling with cation exchange and surface complexation , 2002 .
[51] P. Gans,et al. GLEE, a new computer program for glass electrode calibration. , 2000, Talanta.
[52] Andreas Klamt,et al. COSMO Implementation in TURBOMOLE: Extension of an efficient quantum chemical code towards liquid systems , 2000 .
[53] C. Giandomenico,et al. Current status of platinum-based antitumor drugs. , 1999, Chemical reviews.
[54] P. Gans,et al. Hyperquad simulation and speciation (HySS): a utility program for the investigation of equilibria involving soluble and partially soluble species , 1999 .
[55] A. Klamt,et al. Refinement and Parametrization of COSMO-RS , 1998 .
[56] T. Hambley. The influence of structure on the activity and toxicity of Pt anti-cancer drugs , 1997 .
[57] P. Gans,et al. Investigation of equilibria in solution. Determination of equilibrium constants with the HYPERQUAD suite of programs. , 1996, Talanta.
[58] A. Klamt. Conductor-like Screening Model for Real Solvents: A New Approach to the Quantitative Calculation of Solvation Phenomena , 1995 .
[59] Michael Dolg,et al. Energy-adjusted pseudopotentials for the rare earth elements , 1989 .
[60] C. Evans. Interesting and useful biochemical properties of lanthanides , 1983 .
[61] M. C. Taylor,et al. Interactions of iron(II) and iron(III) with gallic acid and its homologues: a potentiometric and spectrophotometric study , 1982 .
[62] D. N. Hume. Stability constants of metal-ion complexes. Part B: Organic ligands, (IUPAC chemical data series - no. 22) , 1979 .
[63] D. D. Perrin,et al. Stability constants of metal-ion complexes , 1979 .
[64] M. Wilson,et al. Thermodynamics of the interactions of catechol with transition metals. Part I. Free energy, enthalpy, and entropy changes for the ionisation of catechol at 25 °C. Comparison of the temperature-coefficient method with direct calorimetry , 1972 .