Literature DB >> 12733986

Structure of xylose reductase bound to NAD+ and the basis for single and dual co-substrate specificity in family 2 aldo-keto reductases.

Kathryn L Kavanagh1, Mario Klimacek, Bernd Nidetzky, David K Wilson.   

Abstract

The co-ordinates reported have been submitted to the Protein Data Bank under accession number 1MI3. Xylose reductase (XR; AKR2B5) is an unusual member of aldo-keto reductase superfamily, because it is one of the few able to efficiently utilize both NADPH and NADH as co-substrates in converting xylose into xylitol. In order to better understand the basis for this dual specificity, we have determined the crystal structure of XR from the yeast Candida tenuis in complex with NAD(+) to 1.80 A resolution (where 1 A=0.1 nm) with a crystallographic R -factor of 18.3%. A comparison of the NAD(+)- and the previously determined NADP(+)-bound forms of XR reveals that XR has the ability to change the conformation of two loops. To accommodate both the presence and absence of the 2'-phosphate, the enzyme is able to adopt different conformations for several different side chains on these loops, including Asn(276), which makes alternative hydrogen-bonding interactions with the adenosine ribose. Also critical is the presence of Glu(227) on a short rigid helix, which makes hydrogen bonds to both the 2'- and 3'-hydroxy groups of the adenosine ribose. In addition to changes in hydrogen-bonding of the adenosine, the ribose unmistakably adopts a 3'- endo conformation rather than the 2'- endo conformation seen in the NADP(+)-bound form. These results underscore the importance of tight adenosine binding for efficient use of either NADH or NADPH as a co-substrate in aldo-keto reductases. The dual specificity found in XR is also an important consideration in designing a high-flux xylose metabolic pathway, which may be improved with an enzyme specific for NADH.

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Year:  2003        PMID: 12733986      PMCID: PMC1223518          DOI: 10.1042/BJ20030286

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  32 in total

1.  The aldo-keto reductase (AKR) superfamily: an update.

Authors:  J M Jez; T M Penning
Journal:  Chem Biol Interact       Date:  2001-01-30       Impact factor: 5.192

2.  Crystallization and aldo-keto reductase activity of Gcy1p from Saccharomyces cerevisiae.

Authors:  E Hur; D K Wilson
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2000-06

Review 3.  Metabolic engineering of Saccharomyces cerevisiae for xylose utilization.

Authors:  B Hahn-Hägerdal; C F Wahlbom; M Gárdonyi; W H van Zyl; R R Cordero Otero; L J Jönsson
Journal:  Adv Biochem Eng Biotechnol       Date:  2001       Impact factor: 2.635

4.  D-Xylose metabolism by Candida intermedia: isolation and characterisation of two forms of aldose reductase with different coenzyme specificities.

Authors:  P Mayr; K Brüggler; K D Kulbe; B Nidetzky
Journal:  J Chromatogr B Biomed Sci Appl       Date:  2000-01-14

5.  The crystal structure of the GCY1 protein from S. cerevisiae suggests a divergent aldo-keto reductase catalytic mechanism.

Authors:  E Hur; D K Wilson
Journal:  Chem Biol Interact       Date:  2001-01-30       Impact factor: 5.192

6.  Structural and functional properties of aldose xylose reductase from the D-xylose-metabolizing yeast Candida tenuis.

Authors:  B Nidetzky; P Mayr; W Neuhauser; M Puchberger
Journal:  Chem Biol Interact       Date:  2001-01-30       Impact factor: 5.192

7.  Alteration of the specificity of the cofactor-binding pocket of Corynebacterium 2,5-diketo-D-gluconic acid reductase A.

Authors:  Scott Banta; Barbara A Swanson; Shan Wu; Alisha Jarnagin; Stephen Anderson
Journal:  Protein Eng       Date:  2002-02

8.  Structural assembly of the active site in an aldo-keto reductase by NADPH cofactor.

Authors:  G Sanli; M Blaber
Journal:  J Mol Biol       Date:  2001-06-22       Impact factor: 5.469

9.  Xylose utilisation: cloning and characterisation of the Xylose reductase from Candida tenuis.

Authors:  B Häcker; A Habenicht; M Kiess; R Mattes
Journal:  Biol Chem       Date:  1999-12       Impact factor: 3.915

10.  Controlled transient changes reveal differences in metabolite production in two Candida yeasts.

Authors:  T Granström; M Leisola
Journal:  Appl Microbiol Biotechnol       Date:  2002-02-01       Impact factor: 4.813

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  23 in total

1.  Identification of a novel NADH-specific aldo-keto reductase using sequence and structural homologies.

Authors:  Eric Di Luccio; Robert A Elling; David K Wilson
Journal:  Biochem J       Date:  2006-11-15       Impact factor: 3.857

2.  Computational design of Candida boidinii xylose reductase for altered cofactor specificity.

Authors:  George A Khoury; Hossein Fazelinia; Jonathan W Chin; Robert J Pantazes; Patrick C Cirino; Costas D Maranas
Journal:  Protein Sci       Date:  2009-10       Impact factor: 6.725

3.  Cofactor specificity motifs and the induced fit mechanism in class I ketol-acid reductoisomerases.

Authors:  Jackson K B Cahn; Sabine Brinkmann-Chen; Thomas Spatzal; Jared A Wiig; Andrew R Buller; Oliver Einsle; Yilin Hu; Markus W Ribbe; Frances H Arnold
Journal:  Biochem J       Date:  2015-04-07       Impact factor: 3.857

4.  Investigation of the role of a conserved glycine motif in the Saccharomyces cerevisiae xylose reductase.

Authors:  Byron C H Chu; Hung Lee
Journal:  Curr Microbiol       Date:  2006-06-26       Impact factor: 2.188

Review 5.  Genetic improvement of native xylose-fermenting yeasts for ethanol production.

Authors:  Nicole K Harner; Xin Wen; Paramjit K Bajwa; Glen D Austin; Chi-Yip Ho; Marc B Habash; Jack T Trevors; Hung Lee
Journal:  J Ind Microbiol Biotechnol       Date:  2014-11-18       Impact factor: 3.346

6.  Electrostatic stabilization in a pre-organized polar active site: the catalytic role of Lys-80 in Candida tenuis xylose reductase (AKR2B5) probed by site-directed mutagenesis and functional complementation studies.

Authors:  Regina Kratzer; Bernd Nidetzky
Journal:  Biochem J       Date:  2005-07-15       Impact factor: 3.857

7.  Multiple steps determine the overall rate of the reduction of 5alpha-dihydrotestosterone catalyzed by human type 3 3alpha-hydroxysteroid dehydrogenase: implications for the elimination of androgens.

Authors:  Yi Jin; Trevor M Penning
Journal:  Biochemistry       Date:  2006-10-31       Impact factor: 3.162

8.  The coenzyme specificity of Candida tenuis xylose reductase (AKR2B5) explored by site-directed mutagenesis and X-ray crystallography.

Authors:  Barbara Petschacher; Stefan Leitgeb; Kathryn L Kavanagh; David K Wilson; Bernd Nidetzky
Journal:  Biochem J       Date:  2005-01-01       Impact factor: 3.857

9.  Xylose reductase from the thermophilic fungus Talaromyces emersonii: cloning and heterologous expression of the native gene (Texr) and a double mutant (TexrK271R + N273D) with altered coenzyme specificity.

Authors:  Sara Fernandes; Maria G Tuohy; Patrick G Murray
Journal:  J Biosci       Date:  2009-12       Impact factor: 1.826

10.  Structural alteration of cofactor specificity in Corynebacterium 2,5-diketo-D-gluconic acid reductase.

Authors:  Gulsah Sanli; Scott Banta; Stephen Anderson; Michael Blaber
Journal:  Protein Sci       Date:  2004-01-10       Impact factor: 6.725

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