Literature DB >> 11258886

The role for an invariant aspartic acid in hypoxanthine phosphoribosyltransferases is examined using saturation mutagenesis, functional analysis, and X-ray crystallography.

B Canyuk1, P J Focia, A E Eakin.   

Abstract

The role of an invariant aspartic acid (Asp137) in hypoxanthine phosphoribosyltransferases (HPRTs) was examined by site-directed and saturation mutagenesis, functional analysis, and X-ray crystallography using the HPRT from Trypanosoma cruzi. Alanine substitution (D137A) resulted in a 30-fold decrease of k(cat), suggesting that Asp137 participates in catalysis. Saturation mutagenesis was used to generate a library of mutant HPRTs with random substitutions at position 137, and active enzymes were identified by complementation of a bacterial purine auxotroph. Functional analyses of the mutants, including determination of steady-state kinetic parameters and pH-rate dependence, indicate that glutamic acid or glutamine can replace the wild-type aspartate. However, the catalytic efficiency and pH-rate profile for the structural isosteric mutant, D137N, were similar to the D137A mutant. Crystal structures of four of the mutant enzymes were determined in ternary complex with substrate ligands. Structures of the D137E and D137Q mutants reveal potential hydrogen bonds, utilizing several bound water molecules in addition to protein atoms, that position these side chains within hydrogen bond distance of the bound purine analogue, similar in position to the aspartate in the wild-type structure. The crystal structure of the D137N mutant demonstrates that the Asn137 side chain does not form interactions with the purine substrate but instead forms novel interactions that cause the side chain to adopt a nonfunctional rotamer. The results from these structural and functional analyses demonstrate that HPRTs do not require a general base at position 137 for catalysis. Instead, hydrogen bonding sufficiently stabilizes the developing partial positive charge at the N7-atom of the purine substrate in the transition-state to promote catalysis.

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Year:  2001        PMID: 11258886     DOI: 10.1021/bi001195q

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


  6 in total

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Authors:  Hua Deng; Robert Callender; Vern L Schramm; Charles Grubmeyer
Journal:  Biochemistry       Date:  2010-03-30       Impact factor: 3.162

2.  Protein engineering of the 4-methyl-5-nitrocatechol monooxygenase from Burkholderia sp. strain DNT for enhanced degradation of nitroaromatics.

Authors:  Thammajun Leungsakul; Glenn R Johnson; Thomas K Wood
Journal:  Appl Environ Microbiol       Date:  2006-06       Impact factor: 4.792

3.  The role of aspartic acid 143 in E. coli tRNA-guanine transglycosylase: insights from mutagenesis studies and computational modeling.

Authors:  Katherine Abold Todorov; Xiao-Jian Tan; Susanne T Nonekowski; George A Garcia; Heather A Carlson
Journal:  Biophys J       Date:  2005-06-10       Impact factor: 4.033

4.  Structures of hypoxanthine-guanine phosphoribosyltransferase (TTHA0220) from Thermus thermophilus HB8.

Authors:  Mayumi Kanagawa; Seiki Baba; Akio Ebihara; Akeo Shinkai; Ken Hirotsu; Ryosuke Mega; Kwang Kim; Seiki Kuramitsu; Gen-ichi Sampei; Gota Kawai
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2010-07-27

5.  Protein engineering of the transcriptional activator FhlA To enhance hydrogen production in Escherichia coli.

Authors:  Viviana Sanchez-Torres; Toshinari Maeda; Thomas K Wood
Journal:  Appl Environ Microbiol       Date:  2009-07-06       Impact factor: 4.792

6.  Kinetic Characterization and Inhibition of Trypanosoma cruzi Hypoxanthine-Guanine Phosphoribosyltransferases.

Authors:  Kayla Glockzin; Demetrios Kostomiris; Yacoba V T Minnow; Kajitha Suthagar; Keith Clinch; Sinan Gai; Joshua N Buckler; Vern L Schramm; Peter C Tyler; Thomas D Meek; Ardala Katzfuss
Journal:  Biochemistry       Date:  2022-09-15       Impact factor: 3.321

  6 in total

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