Literature DB >> 12705826

Dual coenzyme specificity of photosynthetic glyceraldehyde-3-phosphate dehydrogenase interpreted by the crystal structure of A4 isoform complexed with NAD.

Giuseppe Falini1, Simona Fermani, Alberto Ripamonti, Piera Sabatino, Francesca Sparla, Paolo Pupillo, Paolo Trost.   

Abstract

Photosynthetic glyceraldehyde-3-phosphate dehydrogenase (GAPDH) of Spinacia oleracea belongs to a wide group of GAPDHs found in most organisms displaying oxygenic photosynthesis, including cyanobacteria, green and red algae, and higher plants. As a major catalytic difference with respect to glycolytic GAPDH, photosynthetic GAPDH exhibits dual cofactor specificity toward pyridine nucleotides with a preference for NADP(H). Here we report the crystal structure of NAD-complexed recombinant A(4)-GAPDH (NAD-A(4)-GAPDH) from Spinacia oleracea, expressed in Escherichia coli. Its superimposition onto native A(4)-GAPDH complexed with NADP (NADP-A(4)-GAPDH) pinpoints specific conformational changes resulting from cofactor replacement. In photosynthetic NAD-A(4)-GAPDH, the side chain of Asp32 is oriented toward the coenzyme to interact with the adenine ribose diol, similar to glycolytic GAPDHs (NAD-specific). On the contrary, in NADP-A(4)-GAPDH Asp32 moves away to accommodate the additional 2'-phosphate group of the coenzyme and to minimize electrostatic repulsion. Asp32 rotation is allowed by the presence of the small residue Ala40, conserved in most photosynthetic GAPDHs, replacing bulky amino acid side chains in glycolytic GAPDHs. While in NADP-A(4)-GAPDH two amino acids, Thr33 and Ser188, are involved in hydrogen bonds with the 2'-phosphate group of NADP, in the NAD-complexed enzyme these interactions are lacking. The crystallographic structure of NAD-A(4)-GAPDH highlights that four residues, Thr33, Ala40, Ser188, and Ala187 (Leu, Leu, Pro, and Leu respectively, in glycolytic Bacillus stearothermophilus GAPDH sequence) are of primary importance for the dual cofactor specificity of photosynthetic GAPDH. These modifications seem to trace the minimum evolutionary route for a primitive NAD-specific GAPDH to be converted into the NADP-preferring enzyme of oxygenic photosynthetic organisms.

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Year:  2003        PMID: 12705826     DOI: 10.1021/bi0272149

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


  13 in total

1.  Expression, purification, crystallization and preliminary X-ray analysis of wild-type and of an active-site mutant of glyceraldehyde-3-phosphate dehydrogenase from Campylobacter jejuni.

Authors:  David S Tourigny; Paul R Elliott; Louise J Edgell; Gregg M Hudson; Peter C E Moody
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2010-12-22

2.  Structural Basis of Redox Signaling in Photosynthesis: Structure and Function of Ferredoxin:thioredoxin Reductase and Target Enzymes.

Authors:  Shaodong Dai; Kenth Johansson; Myroslawa Miginiac-Maslow; Peter Schürmann; Hans Eklund
Journal:  Photosynth Res       Date:  2004       Impact factor: 3.573

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.  Structure of apo-glyceraldehyde-3-phosphate dehydrogenase from Synechococcus PCC7942.

Authors:  Tomoya Kitatani; Yoshihiro Nakamura; Kei Wada; Takayoshi Kinoshita; Masahiro Tamoi; Shigeru Shigeoka; Toshiji Tada
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2006-07-29

Review 5.  Thioredoxin-dependent regulation of photosynthetic glyceraldehyde-3-phosphate dehydrogenase: autonomous vs. CP12-dependent mechanisms.

Authors:  P Trost; S Fermani; L Marri; M Zaffagnini; G Falini; S Scagliarini; P Pupillo; F Sparla
Journal:  Photosynth Res       Date:  2006-09-22       Impact factor: 3.573

6.  Regulation of photosynthetic GAPDH dissected by mutants.

Authors:  Francesca Sparla; Mirko Zaffagnini; Norbert Wedel; Renate Scheibe; Paolo Pupillo; Paolo Trost
Journal:  Plant Physiol       Date:  2005-07-29       Impact factor: 8.340

7.  Structure of photosynthetic glyceraldehyde-3-phosphate dehydrogenase (isoform A4) from Arabidopsis thaliana in complex with NAD.

Authors:  Simona Fermani; Francesca Sparla; Lucia Marri; Anton Thumiger; Paolo Pupillo; Giuseppe Falini; Paolo Trost
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2010-05-25

8.  Molecular mechanism of thioredoxin regulation in photosynthetic A2B2-glyceraldehyde-3-phosphate dehydrogenase.

Authors:  S Fermani; F Sparla; G Falini; P L Martelli; R Casadio; P Pupillo; A Ripamonti; P Trost
Journal:  Proc Natl Acad Sci U S A       Date:  2007-06-15       Impact factor: 11.205

9.  Structure of NADP-dependent glyceraldehyde-3-phosphate dehydrogenase from Synechococcus PCC7942 complexed with NADP.

Authors:  Tomoya Kitatani; Yoshihiro Nakamura; Kei Wada; Takayoshi Kinoshita; Masahiro Tamoi; Shigeru Shigeoka; Toshiji Tada
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2006-03-10

10.  Crystal structures of rice (Oryza sativa) glyceraldehyde-3-phosphate dehydrogenase complexes with NAD and sulfate suggest involvement of Phe37 in NAD binding for catalysis.

Authors:  Yueh-Chu Tien; Phimonphan Chuankhayan; Yen-Chieh Huang; Chung-De Chen; Jahan Alikhajeh; Shou-Lin Chang; Chun-Jung Chen
Journal:  Plant Mol Biol       Date:  2012-08-18       Impact factor: 4.076

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