These tools will no longer be maintained as of December 31, 2024. Archived website can be found here. PubMed4Hh GitHub repository can be found here. Contact NLM Customer Service if you have questions.
154 related articles for article (PubMed ID: 4030761)
1. Glycation of amino groups in protein. Studies on the specificity of modification of RNase by glucose. Watkins NG; Thorpe SR; Baynes JW J Biol Chem; 1985 Sep; 260(19):10629-36. PubMed ID: 4030761 [TBL] [Abstract][Full Text] [Related]
2. Effect of phosphate on the kinetics and specificity of glycation of protein. Watkins NG; Neglia-Fisher CI; Dyer DG; Thorpe SR; Baynes JW J Biol Chem; 1987 May; 262(15):7207-12. PubMed ID: 3584112 [TBL] [Abstract][Full Text] [Related]
3. Proteomic analysis of the site specificity of glycation and carboxymethylation of ribonuclease. Brock JW; Hinton DJ; Cotham WE; Metz TO; Thorpe SR; Baynes JW; Ames JM J Proteome Res; 2003; 2(5):506-13. PubMed ID: 14582647 [TBL] [Abstract][Full Text] [Related]
4. Glycation and inactivation of human Cu-Zn-superoxide dismutase. Identification of the in vitro glycated sites. Arai K; Maguchi S; Fujii S; Ishibashi H; Oikawa K; Taniguchi N J Biol Chem; 1987 Dec; 262(35):16969-72. PubMed ID: 3680284 [TBL] [Abstract][Full Text] [Related]
5. Kinetics of nonenzymatic glycation of ribonuclease A leading to advanced glycation end products. Paradoxical inhibition by ribose leads to facile isolation of protein intermediate for rapid post-Amadori studies. Khalifah RG; Todd P; Booth AA; Yang SX; Mott JD; Hudson BG Biochemistry; 1996 Apr; 35(15):4645-54. PubMed ID: 8664253 [TBL] [Abstract][Full Text] [Related]
6. Helical peptide models for protein glycation: proximity effects in catalysis of the Amadori rearrangement. Venkatraman J; Aggarwal K; Balaram P Chem Biol; 2001 Jul; 8(7):611-25. PubMed ID: 11451663 [TBL] [Abstract][Full Text] [Related]
7. 13C NMR investigation of nonenzymatic glucosylation of protein. Model studies using RNase A. Neglia CI; Cohen HJ; Garber AR; Ellis PD; Thorpe SR; Baynes JW J Biol Chem; 1983 Dec; 258(23):14279-83. PubMed ID: 6643480 [TBL] [Abstract][Full Text] [Related]
8. Aldimine to ketoamine isomerization (Amadori rearrangement) potential at the individual nonenzymic glycation sites of hemoglobin A: preferential inhibition of glycation by nucleophiles at sites of low isomerization potential. Acharya AS; Roy RP; Dorai B J Protein Chem; 1991 Jun; 10(3):345-58. PubMed ID: 1910466 [TBL] [Abstract][Full Text] [Related]
9. Gramicidin S: a peptide model for protein glycation and reversal of glycation using nucleophilic amines. Shakkottai VG; Sudha R; Balaram P J Pept Res; 2002 Aug; 60(2):112-20. PubMed ID: 12102724 [TBL] [Abstract][Full Text] [Related]
10. Nonenzymatic glycation of type I collagen. The effects of aging on preferential glycation sites. Reiser KM; Amigable MA; Last JA J Biol Chem; 1992 Dec; 267(34):24207-16. PubMed ID: 1447170 [TBL] [Abstract][Full Text] [Related]
11. Modification of bovine pancreatic ribonuclease A with 6-chloropurine riboside. Alonso J; Nogués MV; Cuchillo CM Arch Biochem Biophys; 1986 May; 246(2):681-9. PubMed ID: 3707127 [TBL] [Abstract][Full Text] [Related]
12. In vitro kinetic studies of formation of antigenic advanced glycation end products (AGEs). Novel inhibition of post-Amadori glycation pathways. Booth AA; Khalifah RG; Todd P; Hudson BG J Biol Chem; 1997 Feb; 272(9):5430-7. PubMed ID: 9038143 [TBL] [Abstract][Full Text] [Related]
13. The reversibility of the ketoamine linkages of aldoses with proteins. Acharya AS; Sussman LG J Biol Chem; 1984 Apr; 259(7):4372-8. PubMed ID: 6707011 [TBL] [Abstract][Full Text] [Related]
14. Analysis of the structure of ribonuclease A in native and partially denatured states by time-resolved noradiative dynamic excitation energy transfer between site-specific extrinsic probes. Buckler DR; Haas E; Scheraga HA Biochemistry; 1995 Dec; 34(49):15965-78. PubMed ID: 8519753 [TBL] [Abstract][Full Text] [Related]
15. Characterization of glycated proteins by 13C NMR spectroscopy. Identification of specific sites of protein modification by glucose. Neglia CI; Cohen HJ; Garber AR; Thorpe SR; Baynes JW J Biol Chem; 1985 May; 260(9):5406-10. PubMed ID: 2985592 [TBL] [Abstract][Full Text] [Related]
16. Glycation of a lysine-containing tetrapeptide by D-glucose and D-fructose--influence of different reaction conditions on the formation of Amadori/Heyns products. Jakas A; Katić A; Bionda N; Horvat S Carbohydr Res; 2008 Sep; 343(14):2475-80. PubMed ID: 18656854 [TBL] [Abstract][Full Text] [Related]
17. The binding of acetaldehyde to the active site of ribonuclease: alterations in catalytic activity and effects of phosphate. Mauch TJ; Tuma DJ; Sorrell MF Alcohol Alcohol; 1987; 22(2):103-12. PubMed ID: 3651178 [TBL] [Abstract][Full Text] [Related]
18. [Interaction of pyridoxal-5-phosphate with human serum albumin and pancreatic ribonuclease]. Moroz AR; Kondakov VI; Stepuro II; Iaroshevich NA Biokhimiia; 1987 Apr; 52(4):550-61. PubMed ID: 3593789 [TBL] [Abstract][Full Text] [Related]
19. Residues involved in the catalysis, base specificity, and cytotoxicity of ribonuclease from Rana catesbeiana based upon mutagenesis and X-ray crystallography. Leu YJ; Chern SS; Wang SC; Hsiao YY; Amiraslanov I; Liaw YC; Liao YD J Biol Chem; 2003 Feb; 278(9):7300-9. PubMed ID: 12499382 [TBL] [Abstract][Full Text] [Related]
20. Identification of modification sites on human serum albumin and human hemoglobin adducts with houttuynin using liquid chromatography coupled with mass spectrometry. Deng Z; Zhong D; Chen X Biomed Chromatogr; 2012 Nov; 26(11):1377-85. PubMed ID: 22334394 [TBL] [Abstract][Full Text] [Related] [Next] [New Search]