The glycation site specificity of human serum transferrin is a determinant for transferrin's functional impairment under elevated glycaemic conditions.
暂无分享,去创建一个
João T. S. Coimbra | P. Fernandes | M. Ramos | P. Domingues | R. Vitorino | J. Coimbra | N. Brás | M. Rangel | André Silva | Paulo R H Sousa
[1] Pedro Domingues,et al. Post-translational modifications and mass spectrometry detection. , 2013, Free radical biology & medicine.
[2] D. McClain,et al. Iron and diabetes risk. , 2013, Cell metabolism.
[3] Pedro Alexandrino Fernandes,et al. Comparative analysis of the performance of commonly available density functionals in the determination of geometrical parameters for zinc complexes , 2009, J. Comput. Chem..
[4] Quan Hao,et al. Iron and bismuth bound human serum transferrin reveals a partially-opened conformation in the N-lobe , 2012, Scientific Reports.
[5] X. López,et al. Molecular dynamics simulations of iron- and aluminum-loaded serum transferrin: protonation of Tyr188 is necessary to prompt metal release. , 2012, Biochemistry.
[6] P. Brissot,et al. Non-transferrin bound iron: a key role in iron overload and iron toxicity. , 2012, Biochimica et biophysica acta.
[7] E. Tajkhorshid,et al. Structural basis for iron piracy by pathogenic Neisseria , 2012, Nature.
[8] E. Kohner,et al. Introduction to diabetes mellitus. , 2012, Advances in experimental medicine and biology.
[9] J. Rosenstock,et al. Contributions of Basal and Postprandial Hyperglycemia Over a Wide Range of A1C Levels Before and After Treatment Intensification in Type 2 Diabetes , 2011, Diabetes Care.
[10] Jan H. Jensen,et al. Improved Treatment of Ligands and Coupling Effects in Empirical Calculation and Rationalization of pKa Values. , 2011, Journal of chemical theory and computation.
[11] William Clarke,et al. Comparison of modification sites formed on human serum albumin at various stages of glycation. , 2011, Clinica chimica acta; international journal of clinical chemistry.
[12] Jan H. Jensen,et al. PROPKA3: Consistent Treatment of Internal and Surface Residues in Empirical pKa Predictions. , 2011, Journal of chemical theory and computation.
[13] V. Basevi. Diagnosis and Classification of Diabetes Mellitus , 2011, Diabetes Care.
[14] J. García-Erce,et al. Disorders of iron metabolism. Part II: iron deficiency and iron overload , 2010, Journal of Clinical Pathology.
[15] Alexander Scherl,et al. Glycation Isotopic Labeling with 13C-Reducing Sugars for Quantitative Analysis of Glycated Proteins in Human Plasma* , 2009, Molecular & Cellular Proteomics.
[16] André M. N. Silva,et al. Influence of non-enzymatic post-translation modifications on the ability of human serum albumin to bind iron. Implications for non-transferrin-bound iron speciation. , 2009, Biochimica et biophysica acta.
[17] F. Hu,et al. The role of iron in type 2 diabetes in humans. , 2009, Biochimica et biophysica acta.
[18] C. Vulpe,et al. Mammalian iron transport , 2009, Cellular and Molecular Life Sciences.
[19] Qibin Zhang,et al. A perspective on the Maillard reaction and the analysis of protein glycation by mass spectrometry: probing the pathogenesis of chronic disease. , 2009, Journal of proteome research.
[20] Jan H. Jensen,et al. Very fast prediction and rationalization of pKa values for protein–ligand complexes , 2008, Proteins.
[21] Richard D. Smith,et al. Analysis of non-enzymatically glycated peptides: neutral-loss-triggered MS(3) versus multi-stage activation tandem mass spectrometry. , 2008, Rapid communications in mass spectrometry : RCM.
[22] Richard D. Smith,et al. Proteomic profiling of nonenzymatically glycated proteins in human plasma and erythrocyte membranes. , 2008, Journal of proteome research.
[23] Karl Nicholas Kirschner,et al. GLYCAM06: A generalizable biomolecular force field. Carbohydrates , 2008, J. Comput. Chem..
[24] V. Hornak,et al. Comparison of multiple Amber force fields and development of improved protein backbone parameters , 2006, Proteins.
[25] S. Brunak,et al. Analysis and prediction of mammalian protein glycation. , 2006, Glycobiology.
[26] S. Everse,et al. The Crystal Structure of Iron-free Human Serum Transferrin Provides Insight into Inter-lobe Communication and Receptor Binding* , 2006, Journal of Biological Chemistry.
[27] C. van Campenhout,et al. A novel method to quantify in vivo transferrin glycation: applications in diabetes mellitus. , 2006, Clinica chimica acta; international journal of clinical chemistry.
[28] C. D. De Block,et al. Iron-binding antioxidant capacity is impaired in diabetes mellitus. , 2006, Free radical biology & medicine.
[29] D. McClain,et al. High prevalence of abnormal glucose homeostasis secondary to decreased insulin secretion in individuals with hereditary haemochromatosis , 2006, Diabetologia.
[30] Jan H. Jensen,et al. Very fast empirical prediction and rationalization of protein pKa values , 2005, Proteins.
[31] Abhay Sankar Chakraborti,et al. Effect of nonenzymatic glycation on functional and structural properties of hemoglobin. , 2005, Biophysical chemistry.
[32] Nessar Ahmed,et al. Advanced glycation endproducts--role in pathology of diabetic complications. , 2005, Diabetes research and clinical practice.
[33] C. van Campenhout,et al. Effects of in vitro glycation on Fe3+ binding and Fe3+ isoforms of transferrin. , 2004, Clinical chemistry.
[34] V. Jakuš,et al. Advanced glycation end-products and the progress of diabetic vascular complications. , 2004, Physiological research.
[35] A. Cnaan,et al. Survival and complications in patients with thalassemia major treated with transfusion and deferoxamine. , 2004, Haematologica.
[36] Anne Dawnay,et al. Quantitative screening of advanced glycation endproducts in cellular and extracellular proteins by tandem mass spectrometry. , 2003, The Biochemical journal.
[37] Giovanni Scalmani,et al. Energies, structures, and electronic properties of molecules in solution with the C‐PCM solvation model , 2003, J. Comput. Chem..
[38] S. Everse,et al. Investigation of the mechanism of iron release from the C-lobe of human serum transferrin: mutational analysis of the role of a pH sensitive triad. , 2003, Biochemistry.
[39] Claude Colette,et al. Contributions of fasting and postprandial plasma glucose increments to the overall diurnal hyperglycemia of type 2 diabetic patients: variations with increasing levels of HbA(1c). , 2003, Diabetes care.
[40] A. Nitenberg,et al. Coronary microvascular adaptation to myocardial metabolic demand can be restored by inhibition of iron-catalyzed formation of oxygen free radicals in type 2 diabetic patients. , 2002, Diabetes.
[41] P. Balaram,et al. Helical peptide models for protein glycation: proximity effects in catalysis of the Amadori rearrangement. , 2001, Chemistry & biology.
[42] H. Baker,et al. Two high-resolution crystal structures of the recombinant N-lobe of human transferrin reveal a structural change implicated in iron release. , 1998, Biochemistry.
[43] V. Barone,et al. Quantum Calculation of Molecular Energies and Energy Gradients in Solution by a Conductor Solvent Model , 1998 .
[44] K Schulten,et al. VMD: visual molecular dynamics. , 1996, Journal of molecular graphics.
[45] Axel D. Becke,et al. Density‐functional thermochemistry. IV. A new dynamical correlation functional and implications for exact‐exchange mixing , 1996 .
[46] B. Mutus,et al. Identification of the site of non-enzymatic glycation of glutathione peroxidase: rationalization of the glycation-related catalytic alterations on the basis of three-dimensional protein structure. , 1995, Biochimica et biophysica acta.
[47] E. Ganea,et al. Inactivation of glucose-6-phosphate dehydrogenase by glycation. , 1994, Biochemical Society transactions.
[48] R. Campbell,et al. Site specificity of glycation of horse liver alcohol dehydrogenase in vitro. , 1993, European journal of biochemistry.
[49] R. Blakytny,et al. Glycation (non-enzymic glycosylation) inactivates glutathione reductase. , 1992, The Biochemical journal.
[50] W. R. Harris,et al. Site-specific rate constants for iron removal from diferric transferrin by nitrilotris(methylenephosphonic acid) and pyrophosphate. , 1990, Archives of biochemistry and biophysics.
[51] P. Cutler. Deferoxamine Therapy in High-Ferritin Diabetes , 1989, Diabetes.
[52] A. Becke,et al. Density-functional exchange-energy approximation with correct asymptotic behavior. , 1988, Physical review. A, General physics.
[53] Parr,et al. Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. , 1988, Physical review. B, Condensed matter.
[54] S. Fujii,et al. Glycation and inactivation of human Cu-Zn-superoxide dismutase. Identification of the in vitro glycated sites. , 1987, The Journal of biological chemistry.
[55] Michael Dolg,et al. Energy‐adjusted ab initio pseudopotentials for the first row transition elements , 1987 .
[56] M. Cazzola,et al. Transferrin saturation, plasma iron turnover, and transferrin uptake in normal humans. , 1985, Blood.
[57] Michael J. Frisch,et al. Self‐consistent molecular orbital methods 25. Supplementary functions for Gaussian basis sets , 1984 .
[58] W. L. Jorgensen,et al. Comparison of simple potential functions for simulating liquid water , 1983 .
[59] Mark S. Gordon,et al. Self‐consistent molecular orbital methods. XXIII. A polarization‐type basis set for second‐row elements , 1982 .
[60] P. Gallop,et al. Structural heterogeneity of human hemoglobin A due to nonenzymatic glycosylation. , 1979, The Journal of biological chemistry.
[61] G. Ciccotti,et al. Numerical Integration of the Cartesian Equations of Motion of a System with Constraints: Molecular Dynamics of n-Alkanes , 1977 .
[62] P. C. Hariharan,et al. The influence of polarization functions on molecular orbital hydrogenation energies , 1973 .
[63] J. Pople,et al. Self—Consistent Molecular Orbital Methods. XII. Further Extensions of Gaussian—Type Basis Sets for Use in Molecular Orbital Studies of Organic Molecules , 1972 .
[64] J. Pople,et al. Self‐Consistent Molecular‐Orbital Methods. IX. An Extended Gaussian‐Type Basis for Molecular‐Orbital Studies of Organic Molecules , 1971 .