Literature DB >> 9305964

Purine nucleoside phosphorylase. 3. Reversal of purine base specificity by site-directed mutagenesis.

J D Stoeckler1, A F Poirot, R M Smith, R E Parks, S E Ealick, K Takabayashi, M D Erion.   

Abstract

Human purine nucleoside phosphorylase (PNP) is highly specific for 6-oxopurine nucleosides with a catalytic efficiency (kcat/KM) for inosine 350000-fold greater than for adenosine. Crystallographic studies identified Asn243 and Glu201 as the residues largely responsible for the substrate specificity. Results from mutagenesis studies demonstrated that the side chains for both residues were also essential for efficient catalysis [Erion, M. D., et al. (1997a) Biochemistry 36, 11725-11734]. Additional mechanistic studies predicted that Asn243 participated in catalysis by stabilizing the transition state structure through hydrogen bond donation to N7 of the purine base [Erion, M. D., et al. (1997b) Biochemistry 36, 11735-11748]. In an effort to alter the substrate specificity of human PNP, mutants of Asn243 and Glu201 were designed to reverse hydrogen bond donor and acceptor interactions with the purine base. Replacement of Asn243 with Asp, but not with other amino acids, led to a 5000-fold increase in kcat for adenosine and a 4300-fold increase in overall catalytic efficiency. Furthermore, the Asn243Asp mutant showed a 2.4-fold preference for adenosine relative to inosine and a 800000-fold change in substrate specificity (kcat/KM) relative to wild-type PNP. The double mutant, Asn243Asp::Glu201Gln, exhibited a 190-fold increase in catalytic efficiency with adenosine relative to wild-type PNP, a 480-fold preference for adenosine relative to inosine, and a 1.7 x 10(8)-fold change in preference for adenosine over inosine relative to wild-type PNP. The Asn243Asp mutant was also shown to synthesize 2,6-diaminopurine riboside with a catalytic efficiency (1.4 x 10(6) M-1 s-1) on the same order of magnitude as wild-type PNP with its natural substrates hypoxanthine and guanine. The Asn243Asp mutants represent examples in which protein engineering significantly altered substrate specificity while maintaining high catalytic efficiency.

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Year:  1997        PMID: 9305964     DOI: 10.1021/bi961971n

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


  22 in total

1.  Identification of the tautomeric form of formycin A in its complex with Escherichia coli purine nucleoside phosphorylase based on the effect of enzyme-ligand binding on fluorescence and phosphorescence.

Authors:  Jakub Włodarczyk; Gerasim Stoychev Galitonov; Borys Kierdaszuk
Journal:  Eur Biophys J       Date:  2003-12-04       Impact factor: 1.733

2.  Methylthioinosine phosphorylase from Pseudomonas aeruginosa. Structure and annotation of a novel enzyme in quorum sensing.

Authors:  Rong Guan; Meng-Chiao Ho; Steven C Almo; Vern L Schramm
Journal:  Biochemistry       Date:  2011-01-25       Impact factor: 3.162

3.  Structural and kinetic evidence for an extended hydrogen-bonding network in catalysis of methyl group transfer. Role of an active site asparagine residue in activation of methyl transfer by methyltransferases.

Authors:  Tzanko I Doukov; Hisashi Hemmi; Catherine L Drennan; Stephen W Ragsdale
Journal:  J Biol Chem       Date:  2006-12-15       Impact factor: 5.157

4.  Structural basis of the substrate specificity of Bacillus cereus adenosine phosphorylase.

Authors:  Paola Dessanti; Yang Zhang; Simone Allegrini; Maria Grazia Tozzi; Francesco Sgarrella; Steven E Ealick
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2012-02-14

5.  YLR209c encodes Saccharomyces cerevisiae purine nucleoside phosphorylase.

Authors:  K Lecoq; I Belloc; C Desgranges; M Konrad; B Daignan-Fornier
Journal:  J Bacteriol       Date:  2001-08       Impact factor: 3.490

Review 6.  Structural analyses reveal two distinct families of nucleoside phosphorylases.

Authors:  Matthew J Pugmire; Steven E Ealick
Journal:  Biochem J       Date:  2002-01-01       Impact factor: 3.857

7.  Unique substrate specificity of purine nucleoside phosphorylases from Thermus thermophilus.

Authors:  Fumiaki Tomoike; Seiki Kuramitsu; Ryoji Masui
Journal:  Extremophiles       Date:  2013-04-02       Impact factor: 2.395

8.  Use of E. coli Purine Nucleoside Phosphorylase in the Treatment of Solid Tumors.

Authors:  William B Parker; Eric J Sorscher
Journal:  Curr Pharm Des       Date:  2017-11-08       Impact factor: 3.116

9.  Structure of a mutant human purine nucleoside phosphorylase with the prodrug, 2-fluoro-2'-deoxyadenosine and the cytotoxic drug, 2-fluoroadenine.

Authors:  Sepideh Afshar; Michael R Sawaya; Sherie L Morrison
Journal:  Protein Sci       Date:  2009-05       Impact factor: 6.725

10.  Characterization of an engineered human purine nucleoside phosphorylase fused to an anti-her2/neu single chain Fv for use in ADEPT.

Authors:  Sepideh Afshar; Tove Olafsen; Anna M Wu; Sherie L Morrison
Journal:  J Exp Clin Cancer Res       Date:  2009-12-03
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