Anti-aging Effects of Antioxidant Rare-Earth Orthovanadate Nanoparticles in Wistar Rats
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A. I. Bozhkov | Y. Nikitchenko | S. Yefimova | V. Klochkov | N. Kavok | N. Karpenko | I. V. Nikitchenko | Kateryna A Averchenko
[1] A. I. Bozhkov,et al. Age-Related Effects of Orthovanadate Nanoparticles Involve Activation of GSH-Dependent Antioxidant System in Liver Mitochondria , 2020, Biological Trace Element Research.
[2] V. Lesovoy,et al. Orally administered gadolinium orthovanadate GdVO4:Eu3+ nanoparticles do not affect the hydrophobic region of cell membranes of leukocytes , 2020, Wiener Medizinische Wochenschrift.
[3] V. P. Semynozhenko,et al. Gadolinium orthovanadate nanoparticles increase survival of old rats , 2020 .
[4] S. Rizvi,et al. Molecular Basis and Emerging Strategies for Anti-aging Interventions , 2020, Springer Singapore.
[5] Y. Malyukin,et al. Janus-Faced Redox Activity of LnVO4:Eu3+ (Ln = Gd, Y, and La) Nanoparticles , 2019, The Journal of Physical Chemistry C.
[6] J. Hardy,et al. Effect of Morphology and Concentration on Crossover between Antioxidant and Pro-oxidant Activity of MgO Nanostructures. , 2018, Inorganic chemistry.
[7] S. Yefimova,et al. The role of serum proteins in the stabilization of colloidal LnVO4:Eu3+ (Ln = La, Gd, Y) and CeO2 nanoparticles , 2017 .
[8] T. Hagen,et al. Glutathione maintenance mitigates age-related susceptibility to redox cycling agents , 2016, Redox biology.
[9] Z. Chai,et al. Crossover between Anti- and Pro-oxidant Activities of Graphene Quantum Dots in the Absence or Presence of Light. , 2016, ACS nano.
[10] V. Klochkov,et al. The influence of the rare-earth metals nanoparticles on the rat's males reprductive function in the descending stage of ontogenesis , 2016 .
[11] Polina Mamoshina,et al. Geroprotectors.org: a new, structured and curated database of current therapeutic interventions in aging and age-related disease , 2015, Aging.
[12] G. Mugesh,et al. An antioxidant nanozyme that uncovers the cytoprotective potential of vanadia nanowires , 2014, Nature Communications.
[13] Y. Malyukin,et al. Chemiluminescent Diagnostics of Free-Radical Processes in an Abiotic System and in Liver Cells in the Presence of Nanoparticles Based on Rare-Earth Elements nReVO4:Eu3+ (Re = Gd, Y, La) and CeO2 , 2014 .
[14] Y. Malyukin,et al. Chemiluminescent Diagnostics of Free-Radical Processes in an Abiotic System and in Liver Cells in the Presence of Nanoparticles Based on Rare-Earth Elements nReVO4:Eu3+ (Re = Gd, Y, La) and CeO2 , 2014, Journal of Applied Spectroscopy.
[15] Thierry Gacoin,et al. Multifunctional rare-Earth vanadate nanoparticles: luminescent labels, oxidant sensors, and MRI contrast agents. , 2014, ACS nano.
[16] Jun Lin,et al. Recent progress in rare earth micro/nanocrystals: soft chemical synthesis, luminescent properties, and biomedical applications. , 2014, Chemical reviews.
[17] H. H. Park,et al. Pleiotropic functions of antioxidant nanoparticles for longevity and medicine. , 2013, Advances in colloid and interface science.
[18] Y. Malyukin,et al. Characteristics of nLnvo4:Eu3+ (Ln = La, Gd, Y, Sm) sols with nanoparticles of different shapes and sizes , 2012 .
[19] K. Kang,et al. Jeju Ground Water Containing Vanadium Enhances Antioxidant Systems in Human Liver Cells , 2012, Biological Trace Element Research.
[20] K. Kang,et al. Increased Glutathione Synthesis Following Nrf2 Activation by Vanadyl Sulfate in Human Chang Liver Cells , 2011, International journal of molecular sciences.
[21] Kui Wang,et al. Vanadium compounds induced mitochondria permeability transition pore (PTP) opening related to oxidative stress. , 2010, Journal of inorganic biochemistry.
[22] B. Martín-Castillo,et al. Metformin and cancer: Doses, mechanisms and the dandelion and hormetic phenomena , 2010, Cell cycle.
[23] A. Colell,et al. Mitochondrial glutathione, a key survival antioxidant. , 2009, Antioxidants & redox signaling.
[24] S. Cortassa,et al. Sequential Opening of Mitochondrial Ion Channels as a Function of Glutathione Redox Thiol Status* , 2007, Journal of Biological Chemistry.
[25] S. S. Soares,et al. Decavanadate induces mitochondrial membrane depolarization and inhibits oxygen consumption. , 2007, Journal of inorganic biochemistry.
[26] R. Franco,et al. The central role of glutathione in the pathophysiology of human diseases , 2007, Archives of physiology and biochemistry.
[27] W. Dröge. Oxidative stress and ageing: is ageing a cysteine deficiency syndrome? , 2005, Philosophical Transactions of the Royal Society B: Biological Sciences.
[28] B. Rzigalinski. Nanoparticles and Cell Longevity , 2005, Technology in cancer research & treatment.
[29] D. Nebert,et al. Glutathione Redox State Regulates Mitochondrial Reactive Oxygen Production* , 2005, Journal of Biological Chemistry.
[30] P. Maher. The effects of stress and aging on glutathione metabolism , 2005, Ageing Research Reviews.
[31] Minyoung Lee,et al. AMP-activated protein kinase activity is required for vanadate-induced hypoxia-inducible factor 1alpha expression in DU145 cells. , 2004, Carcinogenesis.
[32] M. Roden,et al. Thiazolidinediones, like metformin, inhibit respiratory complex I: a common mechanism contributing to their antidiabetic actions? , 2004, Diabetes.
[33] T. Hagen,et al. Decline in transcriptional activity of Nrf2 causes age-related loss of glutathione synthesis, which is reversible with lipoic acid. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[34] D. Harman. Aging: Overview , 2001, Annals of the New York Academy of Sciences.
[35] M. Chatterjee,et al. Vanadium chemoprevention of 7,12-dimethylbenz(a)anthracene-induced rat mammary carcinogenesis: probable involvement of representative hepatic phase I and II xenobiotic metabolizing enzymes , 2000, Breast Cancer Research and Treatment.
[36] Edward J Masoro,et al. Caloric restriction and aging: an update , 2000, Experimental Gerontology.
[37] M. Rigoulet,et al. Dimethylbiguanide Inhibits Cell Respiration via an Indirect Effect Targeted on the Respiratory Chain Complex I* , 2000, The Journal of Biological Chemistry.
[38] M. Chatterjee,et al. Time course effects of vanadium supplement on cytosolic reduced glutathione level and glutathione S-transferase activity , 1995, Biological Trace Element Research.
[39] X. Shi,et al. Glutathione reductase functions as vanadate(V) reductase. , 1990, Archives of biochemistry and biophysics.
[40] R. J. Keller,et al. Oxidation of NADH by vanadium compounds in the presence of thiols. , 1989, Archives of biochemistry and biophysics.
[41] O. Aruoma,et al. The deoxyribose method: a simple "test-tube" assay for determination of rate constants for reactions of hydroxyl radicals. , 1987, Analytical biochemistry.
[42] F. C. Jager. Determination of vitamin E requirement in rats by means of spontaneous haemolysis in vitro. , 1968, Nutritio et dieta; European review of nutrition and dietetics.
[43] A. Ścibior,et al. Vanadium and Oxidative Stress Markers - In Vivo Model: a review. , 2019, Current medicinal chemistry.
[44] Y. Malyukin,et al. Radioprotective Effect of CeO2 and GdEuVO4 Nanoparticles in “In Vivo” Experiments , 2015 .
[45] I. V. Nikitchenko,et al. [The effect of three different hypocaloric diets on oxidative phosphorylation and activity of enzymatic antioxidant system in rat liver mitochondria]. , 2008, Advances in gerontology = Uspekhi gerontologii.