Plant-derived chelators and ionophores as potential therapeutics for metabolic diseases.
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[1] Lei Wu,et al. The role of iron metabolism in chronic diseases related to obesity , 2022, Molecular Medicine.
[2] V. Oliveri. Selective Targeting of Cancer Cells by Copper Ionophores: An Overview , 2022, Frontiers in Molecular Biosciences.
[3] M. Nasr-Esfahani,et al. Insulin-Related Liver Pathways and the Therapeutic Effects of Aerobic Training, Green Coffee, and Chlorogenic Acid Supplementation in Prediabetic Mice , 2022, Oxidative medicine and cellular longevity.
[4] A. F. de Medeiros,et al. Hydrolyzed Proteins and Vegetable Peptides: Anti-Inflammatory Mechanisms in Obesity and Potential Therapeutic Targets , 2022, Nutrients.
[5] M. Kowalska,et al. Management of validation of HPLC method for determination of acetylsalicylic acid impurities in a new pharmaceutical product , 2022, Scientific Reports.
[6] Hongwei Gao,et al. Fe-Curcumin Nanozyme-Mediated Reactive Oxygen Species Scavenging and Anti-Inflammation for Acute Lung Injury , 2021, ACS central science.
[7] Noah Dephoure,et al. Copper depletion modulates mitochondrial oxidative phosphorylation to impair triple negative breast cancer metastasis , 2021, Nature Communications.
[8] A. Casini,et al. Connecting copper and cancer: from transition metal signalling to metalloplasia , 2021, Nature Reviews Cancer.
[9] C. Xue,et al. Latest developments in food-grade delivery systems for probiotics: A systematic review , 2021, Critical reviews in food science and nutrition.
[10] W. Priebe,et al. Plant-Derived and Dietary Hydroxybenzoic Acids—A Comprehensive Study of Structural, Anti-/Pro-Oxidant, Lipophilic, Antimicrobial, and Cytotoxic Activity in MDA-MB-231 and MCF-7 Cell Lines , 2021, Nutrients.
[11] R. Ramos-Payán,et al. Antioxidant and anti-inflammatory properties of novel peptides from Moringa oleifera Lam. leaves , 2021 .
[12] C. Fischbach,et al. Tetrathiomolybdate (TM)-associated copper depletion influences collagen remodeling and immune response in the pre-metastatic niche of breast cancer , 2021, NPJ breast cancer.
[13] S. Prasad,et al. Metal–Curcumin Complexes in Therapeutics: An Approach to Enhance Pharmacological Effects of Curcumin , 2021, International journal of molecular sciences.
[14] Lei Dong,et al. Chlorogenic Acid Improves NAFLD by Regulating gut Microbiota and GLP-1 , 2021, Frontiers in Pharmacology.
[15] Xinyue Wu,et al. The Therapeutic Effects and Mechanisms of Quercetin on Metabolic Diseases: Pharmacological Data and Clinical Evidence , 2021, Oxidative medicine and cellular longevity.
[16] J. G. Angeles,et al. Legumes as Functional Food for Cardiovascular Disease , 2021, Applied Sciences.
[17] C. I. Chukwuma,et al. Vanillic acid-Zn(II) complex: a novel complex with antihyperglycaemic and anti-oxidative activity. , 2021, The Journal of pharmacy and pharmacology.
[18] D. Mcclements,et al. A brief review of the science behind the design of healthy and sustainable plant-based foods , 2021, npj Science of Food.
[19] Genu George,et al. Vanillic acid retains redox status in HepG2 cells during hyperinsulinemic shock using the mitochondrial pathway , 2021 .
[20] A. Passantino,et al. D-Penicillamine: The State of the Art in Humans and in Dogs from a Pharmacological and Regulatory Perspective , 2021, Antibiotics.
[21] Tiffany Tsang,et al. Copper biology , 2021, Current Biology.
[22] H. Poustchi,et al. Effects of supplementation with main coffee components including caffeine and/or chlorogenic acid on hepatic, metabolic, and inflammatory indices in patients with non-alcoholic fatty liver disease and type 2 diabetes: a randomized, double-blind, placebo-controlled, clinical trial , 2021, Nutrition Journal.
[23] K. Raghu,et al. Vanillic acid mitigates the impairments in glucose metabolism in HepG2 cells through BAD–GK interaction during hyperinsulinemia , 2021, Journal of biochemical and molecular toxicology.
[24] Carotenoids: Structure and Function in the Human Body , 2021 .
[25] H. A. Salem,et al. Protocatechuic acid improves hepatic insulin resistance and restores vascular oxidative status in type-2 diabetic rats. , 2020, Environmental toxicology and pharmacology.
[26] M. Lim,et al. Reactivity of Flavonoids Containing a Catechol or Pyrogallol Moiety with Metal‐Free and Metal‐Associated Amyloid‐β , 2020, Bulletin of the Korean Chemical Society.
[27] V. Patrone,et al. Lignans and Gut Microbiota: An Interplay Revealing Potential Health Implications , 2020, Molecules.
[28] J. Mellem,et al. In vitro anticancer and antioxidant potential of Amaranthus cruentus protein and its hydrolysates , 2020, Food Science and Technology.
[29] T. Gade,et al. Altered copper homeostasis underlies sensitivity of hepatocellular carcinoma to copper chelation. , 2020, Metallomics : integrated biometal science.
[30] V. Seidel. Plant-Derived Chemicals: A Source of Inspiration for New Drugs , 2020, Plants.
[31] Wentao Xu,et al. Caffeic acid reduces body weight by regulating gut microbiota in diet-induced-obese mice , 2020 .
[32] I. Volitakis,et al. Copper Ionophores as Novel Antiobesity Therapeutics , 2020, Molecules.
[33] S. Nabavi,et al. The what and who of dietary lignans in human health: Special focus on prooxidant and antioxidant effects , 2020 .
[34] Ana Paula da Fonseca Machado,et al. Extraction of Flavonoids From Natural Sources Using Modern Techniques , 2020, Frontiers in Chemistry.
[35] T. J. Ashaolu. Soy bioactive peptides and the gut microbiota modulation , 2020, Applied Microbiology and Biotechnology.
[36] Gengjun Chen,et al. Production and Characterization of Antioxidative Hydrolysates and Peptides from Corn Gluten Meal Using Papain, Ficin, and Bromelain , 2020, Molecules.
[37] D. Q. Dao,et al. Iron ions chelation-based antioxidant potential vs. pro-oxidant risk of ferulic acid: A DFT study in aqueous phase , 2020 .
[38] W. Lewandowski,et al. Zn(II) Complex of Plant Phenolic Chlorogenic Acid: Antioxidant, Antimicrobial and Structural Studies , 2020, Materials.
[39] M. Kucińska,et al. More Than Resveratrol: New Insights into Stilbene-Based Compounds , 2020, Biomolecules.
[40] I. Sakaida,et al. Invasion inhibition in pancreatic cancer using the oral iron chelating agent deferasirox , 2020, BMC Cancer.
[41] R. Capasso,et al. Coumarins and Coumarin-Related Compounds in Pharmacotherapy of Cancer , 2020, Cancers.
[42] M. Linder. Copper Homeostasis in Mammals, with Emphasis on Secretion and Excretion. A Review , 2020, International journal of molecular sciences.
[43] J. Pedroche,et al. Evaluation of Anti-Inflammatory and Atheroprotective Properties of Wheat Gluten Protein Hydrolysates in Primary Human Monocytes , 2020, Foods.
[44] M. Karaś,et al. Current Trends of Bioactive Peptides—New Sources and Therapeutic Effect , 2020, Foods.
[45] J. Rizk,et al. Cefiderocol: A Siderophore Cephalosporin , 2020, The Annals of pharmacotherapy.
[46] Ji Chen,et al. The molecular mechanisms of copper metabolism and its roles in human diseases , 2020, Pflügers Archiv - European Journal of Physiology.
[47] Hao-Jie Zhong,et al. Cirrhosis in Wilson Disease is characterized by Impaired Hepatic Synthesis, Leukopenia and Thrombocytopenia , 2020, International journal of medical sciences.
[48] Hailing Li,et al. Dual anti/pro-oxidant behaviors of flavonoids pertained to Cu (II) catalyzed tyrosine nitration of insulin receptor kinase domain in the anti-diabetic study. , 2020, Journal of agricultural and food chemistry.
[49] J. Pedroche,et al. Hemp (Cannabis sativa L.) Protein Hydrolysates Promote Anti-Inflammatory Response in Primary Human Monocytes , 2020, Biomolecules.
[50] Jianbo Xiao,et al. Advances on the antioxidant peptides from edible plant sources , 2020 .
[51] P. Leedman,et al. Altered Iron Metabolism and Impact in Cancer Biology, Metastasis, and Immunology , 2020, Frontiers in Oncology.
[52] S. Baldari,et al. Current Biomedical Use of Copper Chelation Therapy , 2020, International journal of molecular sciences.
[53] J. Bogie,et al. Fatty acid metabolism in the progression and resolution of CNS disorders. , 2020, Advanced drug delivery reviews.
[54] P. Wittung-Stafshede,et al. Single-cell tracking demonstrates copper chaperone Atox1 to be required for breast cancer cell migration , 2020, Proceedings of the National Academy of Sciences.
[55] B. Lawal,et al. Antioxidant and hepatoprotective potentials of curcuminoid isolates from turmeric (Curcuma longa) rhizome on CCl4-induced hepatic damage in Wistar rats , 2020, Journal of Taibah University for Science.
[56] G. Gardner,et al. Alternative cutting methods and dry aging reduce the shear force of hot boned beef striploin in Bos indicus cattle. , 2019, Meat science.
[57] Muhammad Umair,et al. Genetic Disorders Associated with Metal Metabolism , 2019, Cells.
[58] S. Shaji,et al. Oxyresveratrol drives caspase-independent apoptosis-like cell death in MDA-MB-231 breast cancer cells through the induction of ROS. , 2019, Biochemical pharmacology.
[59] M. Pan,et al. Resveratrol And Oxyresveratrol Activate Thermogenesis Via Different Transcriptional Co-Activators In High-Fat Diet-Induced Obese Mice. , 2019, Journal of agricultural and food chemistry.
[60] Shounan Lu,et al. Zinc chelator TPEN induces pancreatic cancer cell death through causing oxidative stress and inhibiting cell autophagy , 2019, Journal of cellular physiology.
[61] D. Feldser,et al. Copper is an essential regulator of the autophagic kinases ULK1/2 to drive lung adenocarcinoma , 2019, bioRxiv.
[62] J. Morrow,et al. Metals in Biology: From Metallomics to Trafficking. , 2019, Inorganic chemistry.
[63] G. Mazzone. On the Inhibition of Hydroxyl Radical Formation by Hydroxycinnamic Acids: The Case of Caffeic Acid as Promising Chelating Ligand of Ferrous Ion. , 2019, The journal of physical chemistry. A.
[64] M. Bally,et al. Characterization of a liposomal copper(II)-quercetin formulation suitable for parenteral use , 2019, Drug Delivery and Translational Research.
[65] G. Yen,et al. Quercetin facilitates cell death and chemosensitivity through RAGE/PI3K/AKT/mTOR axis in human pancreatic cancer cells , 2019, Journal of food and drug analysis.
[66] Naresh Kumar,et al. Phenolic acids: Natural versatile molecules with promising therapeutic applications , 2019, Biotechnology reports.
[67] M. A. Alam. Anti-hypertensive Effect of Cereal Antioxidant Ferulic Acid and Its Mechanism of Action , 2019, Front. Nutr..
[68] L. Soldati,et al. Curcumin and Type 2 Diabetes Mellitus: Prevention and Treatment , 2019, Nutrients.
[69] K. Kalia,et al. Plant-Derived Bioactive Peptides: A Treatment to Cure Diabetes , 2019, International Journal of Peptide Research and Therapeutics.
[70] Q. Syed,et al. Natural product coumarins: biological and pharmacological perspectives , 2019, Biologia.
[71] J. García-Alonso,et al. Nutritional Importance of Carotenoids and Their Effect on Liver Health: A Review , 2019, Antioxidants.
[72] G. Lamas,et al. Potential Role of Metal Chelation to Prevent the Cardiovascular Complications of Diabetes. , 2019, The Journal of clinical endocrinology and metabolism.
[73] F. Lu,et al. A Systematic Review and Meta-analysis of Randomized Controlled Trials on the Effects of Turmeric and Curcuminoids on Blood Lipids in Adults with Metabolic Diseases. , 2019, Advances in nutrition.
[74] K. Tuschl,et al. Genetic Disorders of Manganese Metabolism , 2019, Current Neurology and Neuroscience Reports.
[75] K. Christensen,et al. Dietary Carotenoids and Non-Alcoholic Fatty Liver Disease among US Adults, NHANES 2003–2014 , 2019, Nutrients.
[76] A. Tsopmo,et al. Peptidomic analysis of hydrolyzed oat bran proteins, and their in vitro antioxidant and metal chelating properties. , 2019, Food chemistry.
[77] C. Lammi,et al. Multifunctional peptides for the prevention of cardiovascular disease: A new concept in the area of bioactive food-derived peptides , 2019, Journal of Functional Foods.
[78] S. Maiti,et al. Flavonoids green tea against oxidant stress and inflammation with related human diseases , 2019, Clinical Nutrition Experimental.
[79] Ajay Kumar,et al. Kinetics of complex formation of Fe(III) with caffeic acid: Experimental and theoretical study. , 2019, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[80] W. Hermann. Classification and differential diagnosis of Wilson's disease. , 2019, Annals of translational medicine.
[81] Subash C. Gupta,et al. Health benefits of resveratrol: Evidence from clinical studies , 2019, Medicinal research reviews.
[82] Qianchun Deng,et al. Sinapic acid and resveratrol alleviate oxidative stress with modulation of gut microbiota in high-fat diet-fed rats. , 2019, Food research international.
[83] M. Piras,et al. Liver pathology in Wilson's disease: From copper overload to cirrhosis. , 2019, Journal of inorganic biochemistry.
[84] G. D. da Rocha,et al. Occurrence of the potent mutagens 2- nitrobenzanthrone and 3-nitrobenzanthrone in fine airborne particles , 2019, Scientific Reports.
[85] G. Meng,et al. Estimated daily quercetin intake and association with the prevalence of type 2 diabetes mellitus in Chinese adults , 2019, European Journal of Nutrition.
[86] Kyung-A Hwang,et al. Oxyresveratrol Increases Energy Expenditure through Foxo3a-Mediated Ucp1 Induction in High-Fat-Diet-Induced Obese Mice , 2018, International journal of molecular sciences.
[87] G. Ramanjaneyulu,et al. Syringic acid (SA) ‒ A Review of Its Occurrence, Biosynthesis, Pharmacological and Industrial Importance. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[88] K. Majumder,et al. Food-Derived Bioactive Peptides in Human Health: Challenges and Opportunities , 2018, Nutrients.
[89] Marie C. Heffern,et al. A Modular Ionophore Platform for Liver-Directed Copper Supplementation in Cells and Animals. , 2018, Journal of the American Chemical Society.
[90] J. Rybakowski,et al. Wilson disease , 2018, Nature Reviews Disease Primers.
[91] Yitao Wang,et al. Pulmonary , gastrointestinal and urogenital pharmacology Honokiol protects hepatocytes from oxidative injury through mitochondrial deacetylase SIRT 3 , 2018 .
[92] Rangappa S. Keri,et al. Development of coumarin–benzofuran hybrids as versatile multitargeted compounds for the treatment of Alzheimer’s Disease , 2018, Chemical biology & drug design.
[93] C. Maier,et al. Isolation and Identification of Tyrosinase-Inhibitory and Copper-Chelating Peptides from Hydrolyzed Rice-Bran-Derived Albumin. , 2018, Journal of agricultural and food chemistry.
[94] Xinhua Xiao,et al. Curcumin, A Polyphenolic Curcuminoid With Its Protective Effects and Molecular Mechanisms in Diabetes and Diabetic Cardiomyopathy , 2018, Front. Pharmacol..
[95] Jianping Wu,et al. Immunomodulatory and anticancer protein hydrolysates (peptides) from food proteins: A review. , 2018, Food chemistry.
[96] Chi-Tang Ho,et al. Stilbenes: Chemistry and Molecular Mechanisms of Anti-obesity , 2018, Current Pharmacology Reports.
[97] Changfu Zhu,et al. A global perspective on carotenoids: Metabolism, biotechnology, and benefits for nutrition and health. , 2018, Progress in lipid research.
[98] Y. Son,et al. A coumarin-derived Cu2+-fluorescent chemosensor and its direct application in aqueous media. , 2018, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[99] F. Haj,et al. (-)-Epicatechin protects the intestinal barrier from high fat diet-induced permeabilization: Implications for steatosis and insulin resistance , 2017, Redox biology.
[100] R. Shankar,et al. Metal chelating ability and antioxidant properties of Curcumin-metal complexes - A DFT approach. , 2018, Journal of molecular graphics & modelling.
[101] Bei Sun,et al. Honokiol protects pancreatic β cell against high glucose and intermittent hypoxia-induced injury by activating Nrf2/ARE pathway in vitro and in vivo. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[102] Chi-Tang Ho,et al. Antiobesity molecular mechanisms of action: Resveratrol and pterostilbene , 2018, BioFactors.
[103] Jian Zhao,et al. In vitro digestion of rice bran proteins produces peptides with potent inhibitory effects on α-glucosidase and angiotensin I converting enzyme. , 2018, Journal of the science of food and agriculture.
[104] Xi Xie,et al. Quercetin Improves Glucose and Lipid Metabolism of Diabetic Rats: Involvement of Akt Signaling and SIRT1 , 2017, Journal of diabetes research.
[105] V. Křen,et al. The Stoichiometry of Isoquercitrin Complex with Iron or Copper Is Highly Dependent on Experimental Conditions , 2017, Nutrients.
[106] A. Belló-Klein,et al. Pterostilbene reduces oxidative stress, prevents hypertrophy and preserves systolic function of right ventricle in cor pulmonale model , 2017, British journal of pharmacology.
[107] C. Balsano,et al. Non-Alcoholic Fatty Liver Disease and Nutritional Implications: Special Focus on Copper , 2017, Nutrients.
[108] D. Koya,et al. The Effect of Piceatannol from Passion Fruit (Passiflora edulis) Seeds on Metabolic Health in Humans , 2017, Nutrients.
[109] Bo Zhou,et al. Structural basis, chemical driving forces and biological implications of flavones as Cu(II) ionophores , 2017, Free radical biology & medicine.
[110] M. Iranshahi,et al. Carotenoids in the treatment of diabetes mellitus and its complications: A mechanistic review. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[111] Xiaosheng Tang,et al. Molecular Structure–Affinity Relationship of Flavonoids in Lotus Leaf (Nelumbo nucifera Gaertn.) on Binding to Human Serum Albumin and Bovine Serum Albumin by Spectroscopic Method , 2017, Molecules.
[112] P. Nisha,et al. Quercetin, a Lead Compound against Type 2 Diabetes Ameliorates Glucose Uptake via AMPK Pathway in Skeletal Muscle Cell Line , 2017, Front. Pharmacol..
[113] J. Vernarelli,et al. Flavonoid intake is inversely associated with obesity and C-reactive protein, a marker for inflammation, in US adults , 2017, Nutrition & diabetes.
[114] Kee-Hong Kim,et al. The Therapeutic Potential of Piceatannol, a Natural Stilbene, in Metabolic Diseases: A Review. , 2017, Journal of medicinal food.
[115] J. Arthur,et al. Siderophore‐mediated iron acquisition and modulation of host‐bacterial interactions , 2017, Free radical biology & medicine.
[116] L. Cisneros-Zevallos,et al. Chlorogenic Acid: Recent Advances on Its Dual Role as a Food Additive and a Nutraceutical against Metabolic Syndrome , 2017, Molecules.
[117] M. Samsonowicz,et al. Spectroscopic study of molecular structure, antioxidant activity and biological effects of metal hydroxyflavonol complexes. , 2017, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[118] Mingfu Wang,et al. Oxyresveratrol Supplementation to C57bl/6 Mice Fed with a High-Fat Diet Ameliorates Obesity-Associated Symptoms , 2017, Nutrients.
[119] Priscylla Andrade Volkart,et al. Antitumor activity of resveratrol is independent of Cu ( II ) complex formation in MCF-7 cell line , 2017 .
[120] Mårten Fryknäs,et al. Iron chelators target both proliferating and quiescent cancer cells , 2016, Scientific Reports.
[121] M. Elhabiri,et al. In Vitro Antioxidant versus Metal Ion Chelating Properties of Flavonoids: A Structure-Activity Investigation , 2016, PloS one.
[122] N. Sheibani,et al. Antioxidant and Anticancer Activities of Walnut (Juglans regia L.) Protein Hydrolysates Using Different Proteases , 2016, Plant Foods for Human Nutrition.
[123] Mahesh Hegde,et al. Quercetin, a Natural Flavonoid Interacts with DNA, Arrests Cell Cycle and Causes Tumor Regression by Activating Mitochondrial Pathway of Apoptosis , 2016, Scientific Reports.
[124] J. Choi,et al. Anti-Alzheimer's disease potential of coumarins from Angelica decursiva and Artemisia capillaris and structure-activity analysis. , 2016, Asian Pacific journal of tropical medicine.
[125] B. Sarkar,et al. Microbial siderophores and their potential applications: a review , 2016, Environmental Science and Pollution Research.
[126] G. Sturniolo,et al. Wilson's disease: A review of what we have learned. , 2015, World journal of hepatology.
[127] Wen-Chang Chang,et al. Protective Effect of Vanillic Acid against Hyperinsulinemia, Hyperglycemia and Hyperlipidemia via Alleviating Hepatic Insulin Resistance and Inflammation in High-Fat Diet (HFD)-Fed Rats , 2015, Nutrients.
[128] Christopher J. Chang. Searching for harmony in transition-metal signaling. , 2015, Nature chemical biology.
[129] Ferric C Fang,et al. Iron Regulatory Proteins Mediate Host Resistance to Salmonella Infection. , 2015, Cell host & microbe.
[130] Robert R. Henry,et al. Type 2 diabetes mellitus , 2015, Nature Reviews Disease Primers.
[131] J. Choi,et al. Anti-diabetic and anti-Alzheimer’s disease activities of Angelica decursiva , 2015, Archives of pharmacal research.
[132] M. Behari,et al. D-penicillamine Induced Degenerative Dermopathy , 2015, Indian journal of dermatology.
[133] K. Cheng,et al. 1H NMR-Based Metabolomics Investigation of Copper-Laden Rat: A Model of Wilson’s Disease , 2015, PloS one.
[134] S. Kaler. Neurodevelopment and brain growth in classic Menkes disease is influenced by age and symptomatology at initiation of copper treatment. , 2014, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[135] A. Rai,et al. PTP1B inhibitors for type 2 diabetes treatment: a patent review (2011 – 2014) , 2014, Expert opinion on therapeutic patents.
[136] B. Juurlink,et al. Hydroxybenzoic acid isomers and the cardiovascular system , 2014, Nutrition Journal.
[137] S. Kaneko,et al. β-Cryptoxanthin Alleviates Diet-Induced Nonalcoholic Steatohepatitis by Suppressing Inflammatory Gene Expression in Mice , 2014, PloS one.
[138] Y. Tarahovsky,et al. Flavonoid-membrane interactions: involvement of flavonoid-metal complexes in raft signaling. , 2014, Biochimica et biophysica acta.
[139] S. Mikhalovsky,et al. Metal chelation by a plant lignan, secoisolariciresinol diglucoside , 2014, Journal of Inclusion Phenomena and Macrocyclic Chemistry.
[140] M. Kew. Hepatic Iron Overload and Hepatocellular Carcinoma , 2014, Liver Cancer.
[141] K. Kang,et al. Protective effect of esculin on streptozotocin-induced diabetic renal damage in mice. , 2014, Journal of agricultural and food chemistry.
[142] Chan-Min Liu,et al. Hepatoprotective properties of sesamin against CCl4 induced oxidative stress-mediated apoptosis in mice via JNK pathway. , 2014, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[143] M. Valko,et al. Health protective effects of carotenoids and their interactions with other biological antioxidants. , 2013, European journal of medicinal chemistry.
[144] D. Hanahan,et al. Bioavailable copper modulates oxidative phosphorylation and growth of tumors , 2013, Proceedings of the National Academy of Sciences.
[145] K. Franz. Clawing back: broadening the notion of metal chelators in medicine. , 2013, Current opinion in chemical biology.
[146] M. Xiang,et al. Total coumarins from Urtica dentata Hand prevent murine autoimmune diabetes via suppression of the TLR4-signaling pathways. , 2013, Journal of ethnopharmacology.
[147] D. McClain,et al. Iron and diabetes risk. , 2013, Cell metabolism.
[148] J. Choi,et al. Potent α-glucosidase and protein tyrosine phosphatase 1B inhibitors from Artemisia capillaris , 2013, Archives of pharmacal research.
[149] Wei Bao,et al. Dietary iron intake, body iron stores, and the risk of type 2 diabetes: a systematic review and meta-analysis , 2012, BMC Medicine.
[150] M. Núñez,et al. Design and synthesis of a new coumarin-based 'turn-on' fluorescent probe selective for Cu +2 , 2012 .
[151] M. Crestoni,et al. Infrared spectroscopy of copper-resveratrol complexes: a joint experimental and theoretical study. , 2012, The Journal of chemical physics.
[152] G. Li Volti,et al. Protocatechuic acid and human disease prevention: biological activities and molecular mechanisms. , 2012, Current medicinal chemistry.
[153] Zhensheng Li,et al. DNA breakage induced by piceatannol and copper(II): Mechanism and anticancer properties. , 2012, Oncology letters.
[154] M. Lim,et al. Metal-associated amyloid-β species in Alzheimer's disease. , 2012, Current opinion in chemical biology.
[155] Aamir Ahmad,et al. The Prooxidant Action of Dietary Antioxidants Leading to Cellular DNA Breakage and Anticancer Effects: Implications for Chemotherapeutic Action Against Cancer , 2013, Cell Biochemistry and Biophysics.
[156] H. Yin,et al. Free radical lipid peroxidation: mechanisms and analysis. , 2011, Chemical reviews.
[157] M. Schaefer,et al. Zinc monotherapy is not as effective as chelating agents in treatment of Wilson disease. , 2011, Gastroenterology.
[158] Y. J. Kang,et al. The significance of copper chelators in clinical and experimental application. , 2011, The Journal of nutritional biochemistry.
[159] D. Hanahan,et al. Hallmarks of Cancer: The Next Generation , 2011, Cell.
[160] A. Defant,et al. A study of resveratrol-copper complexes by electrospray ionization mass spectrometry and density functional theory calculations. , 2011, Rapid communications in mass spectrometry : RCM.
[161] Céline Douat-Casassus,et al. Plant polyphenols: chemical properties, biological activities, and synthesis. , 2011, Angewandte Chemie.
[162] S. Kaler,et al. ATP7A-related copper transport diseases—emerging concepts and future trends , 2011, Nature Reviews Neurology.
[163] M. Behari,et al. Genetics of Wilsons disease. , 2010, Parkinsonism & related disorders.
[164] M. McCullough,et al. Dietary lignans: physiology and potential for cardiovascular disease risk reduction. , 2010, Nutrition reviews.
[165] A. Rodrigues,et al. Antidepressant-like effect of scopoletin, a coumarin isolated from Polygala sabulosa (Polygalaceae) in mice: evidence for the involvement of monoaminergic systems. , 2010, European journal of pharmacology.
[166] V. S. Parmar,et al. In vitro interactions of coumarins with iron. , 2010, Biochimie.
[167] M. Willingham,et al. Ferroportin and Iron Regulation in Breast Cancer Progression and Prognosis , 2010, Science Translational Medicine.
[168] A. Toure,et al. Flaxseed Lignans: Source, Biosynthesis, Metabolism, Antioxidant Activity, Bio-Active Components, and Health Benefits. , 2010, Comprehensive reviews in food science and food safety.
[169] Young Woo Kim,et al. Inhibition of SREBP-1c-mediated hepatic steatosis and oxidative stress by sauchinone, an AMPK-activating lignan in Saururus chinensis. , 2010, Free radical biology & medicine.
[170] Roslyn M. Theisen,et al. Iron(III)-siderophore coordination chemistry: Reactivity of marine siderophores. , 2010, Coordination chemistry reviews.
[171] Z. Tümer,et al. Menkes disease , 2010, European Journal of Human Genetics.
[172] F. Torti,et al. Synthetic and natural iron chelators: therapeutic potential and clinical use. , 2009, Future medicinal chemistry.
[173] Z. Ďuračková,et al. Altered metabolism of copper, zinc, and magnesium is associated with increased levels of glycated hemoglobin in patients with diabetes mellitus. , 2009, Metabolism: clinical and experimental.
[174] F. Hu,et al. The role of iron in type 2 diabetes in humans. , 2009, Biochimica et biophysica acta.
[175] G. Brewer. Zinc and tetrathiomolybdate for the treatment of Wilson's disease and the potential efficacy of anticopper therapy in a wide variety of diseases. , 2009, Metallomics : integrated biometal science.
[176] Nathan R. Perron,et al. A Review of the Antioxidant Mechanisms of Polyphenol Compounds Related to Iron Binding , 2009, Cell Biochemistry and Biophysics.
[177] J. Sales,et al. A comparison of the binding affinity of the common amino acids with different metal cations. , 2008, Dalton transactions.
[178] A. Ansari. DFT and 1H NMR molecular spectroscopic studies on biologically anti-oxidant active paramagnetic lanthanide(III)-chrysin complexes , 2008 .
[179] Yong Tong,et al. Iron Chelators as Potential Therapeutic Agents for Parkinson's Disease. , 2008, Current bioactive compounds.
[180] J. Millichap. Neonatal Diagnosis and Treatment of Menkes Disease , 2008 .
[181] M. Guo,et al. Iron-binding properties of plant phenolics and cranberry's bio-effects. , 2007, Dalton transactions.
[182] V. Menon,et al. Ferulic Acid: Therapeutic Potential Through Its Antioxidant Property , 2007, Journal of clinical biochemistry and nutrition.
[183] Hyo Jin Kim,et al. Protective Effects of Piceatannol against Beta‐Amyloid–Induced Neuronal Cell Death , 2007, Annals of the New York Academy of Sciences.
[184] Bo Zhou,et al. DNA damage induced by resveratrol and its synthetic analogues in the presence of Cu (II) ions: mechanism and structure-activity relationship. , 2006, Free radical biology & medicine.
[185] S. Kahn,et al. Mechanisms linking obesity to insulin resistance and type 2 diabetes , 2006, Nature.
[186] D. Richardson,et al. A class of iron chelators with a wide spectrum of potent antitumor activity that overcomes resistance to chemotherapeutics , 2006, Proceedings of the National Academy of Sciences.
[187] H. Tsukahara,et al. Relationship Between Oxidative Stress and Antioxidant Systems in the Liver of Patients With Wilson Disease: Hepatic Manifestation in Wilson Disease as a Consequence of Augmented Oxidative Stress , 2006, Pediatric Research.
[188] D. Richardson,et al. The Evolution of Iron Chelators for the Treatment of Iron Overload Disease and Cancer , 2005, Pharmacological Reviews.
[189] I. Cheng,et al. Stability of ferric complexes with 3-hydroxyflavone (flavonol), 5,7-dihydroxyflavone (chrysin), and 3',4'-dihydroxyflavone. , 2005, Journal of agricultural and food chemistry.
[190] M. McCullough,et al. Dietary Lignans: Potential Role in Cancer Prevention , 2005, Nutrition and cancer.
[191] T. Walle,et al. HIGH ABSORPTION BUT VERY LOW BIOAVAILABILITY OF ORAL RESVERATROL IN HUMANS , 2004, Drug Metabolism and Disposition.
[192] D. Richardson,et al. Iron chelators with high antiproliferative activity up-regulate the expression of a growth inhibitory and metastasis suppressor gene: a link between iron metabolism and proliferation. , 2004, Blood.
[193] B. Greene,et al. Iron chelators in cancer chemotherapy. , 2004, Current topics in medicinal chemistry.
[194] S. Azam,et al. Prooxidant property of green tea polyphenols epicatechin and epigallocatechin-3-gallate: implications for anticancer properties. , 2004, Toxicology in vitro : an international journal published in association with BIBRA.
[195] M. Hynes,et al. The kinetics and mechanisms of reactions of iron(III) with caffeic acid, chlorogenic acid, sinapic acid, ferulic acid and naringin. , 2004, Journal of inorganic biochemistry.
[196] Thomas V. O'Halloran,et al. Transition Metal Speciation in the Cell: Insights from the Chemistry of Metal Ion Receptors , 2003, Science.
[197] Rui M. Rocha,et al. Interactions of Flavonoids with Iron and Copper Ions: A Mechanism for their Antioxidant Activity , 2002, Free radical research.
[198] S. Davis,et al. Metallothionein expression in animals: a physiological perspective on function. , 2000, The Journal of nutrition.
[199] B. Neuschwander‐Tetri,et al. Oxidant injury to hepatic mitochondria in patients with Wilson's disease and Bedlington terriers with copper toxicosis. , 1994, Gastroenterology.
[200] H. Offermanns,et al. D-Penicillamine--production and properties. , 1975, Angewandte Chemie.
[201] D A Pyke,et al. Observations on the pathogenesis, complications and treatment of diabetes in 115 cases of haemochromatosis. , 1972, The American journal of medicine.
[202] J. Walshe. Penicillamine, a new oral therapy for Wilson's disease. , 1956, The American journal of medicine.