Literature DB >> 1510919

Crystal structure of chicken liver dihydrofolate reductase complexed with NADP+ and biopterin.

M A McTigue1, J F Davies, B T Kaufman, J Kraut.   

Abstract

The 2.2-A crystal structure of chicken liver dihydrofolate reductase (EC 1.5.1.3, DHFR) has been solved as a ternary complex with NADP+ and biopterin (a poor substrate). The space group and unit cell are isomorphous with the previously reported structure of chicken liver DHFR complexed with NADPH and phenyltriazine [Volz, K. W., Matthews, D. A., Alden, R. A., Freer, S. T., Hansch, C., Kaufman, B. T., & Kraut, J. (1982) J. Biol. Chem. 257, 2528-2536]. The structure contains an ordered water molecule hydrogen-bonded to both hydroxyls of the biopterin dihydroxypropyl group as well as to O4 and N5 of the biopterin pteridine ring. This water molecule, not observed in previously determined DHFR structures, is positioned to complete a proposed route for proton transfer from the side-chain carboxylate of E30 to N5 of the pteridine ring. Protonation of N5 is believed to occur during the reduction of dihydropteridine substrates. The positions of the NADP+ nicotinamide and biopterin pteridine rings are quite similar to the nicotinamide and pteridine ring positions in the Escherichia coli DHFR.NADP+.folate complex [Bystroff, C., Oatley, S. J., & Kraut, J. (1990) Biochemistry 29, 3263-3277], suggesting that the reduction of biopterin and the reduction of folate occur via similar mechanisms, that the binding geometry of the nicotinamide and pteridine rings is conserved between DHFR species, and that the p-aminobenzoylglutamate moiety of folate is not required for correct positioning of the pteridine ring in ground-state ternary complexes. Instead, binding of the p-aminobenzoylglutamate moiety of folate may induce the side chain of residue 31 (tyrosine or phenylalanine) in vertebrate DHFRs to adopt a conformation in which the opening to the pteridine binding site is too narrow to allow the substrate to diffuse away rapidly. A reverse conformational change of residue 31 is proposed to be required for tetrahydrofolate release.

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Year:  1992        PMID: 1510919     DOI: 10.1021/bi00147a009

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  12 in total

1.  Conformational change of the methionine 20 loop of Escherichia coli dihydrofolate reductase modulates pKa of the bound dihydrofolate.

Authors:  Ilja V Khavrutskii; Daniel J Price; Jinhyuk Lee; Charles L Brooks
Journal:  Protein Sci       Date:  2007-05-01       Impact factor: 6.725

2.  Statistical potential for modeling and ranking of protein-ligand interactions.

Authors:  Hao Fan; Dina Schneidman-Duhovny; John J Irwin; Guangqiang Dong; Brian K Shoichet; Andrej Sali
Journal:  J Chem Inf Model       Date:  2011-11-21       Impact factor: 4.956

3.  Isolation and characterization of a dihydrofolate reductase gene mutation in methotrexate-resistant Drosophila cells.

Authors:  H Hao; M G Tyshenko; V K Walker
Journal:  Gene Expr       Date:  1996

4.  High-resolution structures of the bifunctional enzyme and transcriptional coactivator DCoH and its complex with a product analogue.

Authors:  J D Cronk; J A Endrizzi; T Alber
Journal:  Protein Sci       Date:  1996-10       Impact factor: 6.725

5.  Role of water in the catalytic cycle of E. coli dihydrofolate reductase.

Authors:  Paul Shrimpton; Rudolf K Allemann
Journal:  Protein Sci       Date:  2002-06       Impact factor: 6.725

6.  Computer-aided drug design: a free energy perturbation study on the binding of methyl-substituted pterins and N5-deazapterins to dihydrofolate reductase.

Authors:  P L Cummins; J E Gready
Journal:  J Comput Aided Mol Des       Date:  1993-10       Impact factor: 3.686

7.  Activation of dihydrofolate reductase following thiol modification involves a conformational change at the active site.

Authors:  Y X Fan; Z Y Li; L Zhu; J M Zhou
Journal:  Biochem J       Date:  1998-11-01       Impact factor: 3.857

8.  Identification and energetic ranking of possible docking sites for pterin on dihydrofolate reductase.

Authors:  A A Bliznyuk; J E Gready
Journal:  J Comput Aided Mol Des       Date:  1998-07       Impact factor: 3.686

9.  Multiple conformers in active site of human dihydrofolate reductase F31R/Q35E double mutant suggest structural basis for methotrexate resistance.

Authors:  Jordan P Volpato; Brahm J Yachnin; Jonathan Blanchet; Vanessa Guerrero; Lucie Poulin; Elena Fossati; Albert M Berghuis; Joelle N Pelletier
Journal:  J Biol Chem       Date:  2009-05-28       Impact factor: 5.157

10.  Capturing the Catalytic Proton of Dihydrofolate Reductase: Implications for General Acid-Base Catalysis.

Authors:  Qun Wan; Brad C Bennett; Troy Wymore; Zhihong Li; Mark A Wilson; Charles L Brooks; Paul Langan; Andrey Kovalevsky; Chris G Dealwis
Journal:  ACS Catal       Date:  2021-04-28       Impact factor: 13.084

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