2‐keto‐3‐deoxy‐6‐phosphogluconate (KDPG) aldolase

Author(s):  
C.‐H. Wong
Keyword(s):  
2003 ◽  
Vol 59 (8) ◽  
pp. 1454-1458 ◽  
Author(s):  
B. J. Bell ◽  
L. Watanabe ◽  
J. L. Rios-Steiner ◽  
A. Tulinsky ◽  
L. Lebioda ◽  
...  
Keyword(s):  

2009 ◽  
Vol 192 (4) ◽  
pp. 964-974 ◽  
Author(s):  
Matthias Reher ◽  
Tobias Fuhrer ◽  
Michael Bott ◽  
Peter Schönheit

ABSTRACT The pathway of glucose degradation in the thermoacidophilic euryarchaeon Picrophilus torridus has been studied by in vivo labeling experiments and enzyme analyses. After growth of P. torridus in the presence of [1-13C]- and [3-13C]glucose, the label was found only in the C-1 and C-3 positions, respectively, of the proteinogenic amino acid alanine, indicating the exclusive operation of an Entner-Doudoroff (ED)-type pathway in vivo. Cell extracts of P. torridus contained all enzyme activities of a nonphosphorylative ED pathway, which were not induced by glucose. Two key enzymes, gluconate dehydratase (GAD) and a novel 2-keto-3-deoxygluconate (KDG)-specific aldolase (KDGA), were characterized. GAD is a homooctamer of 44-kDa subunits, encoded by Pto0485. KDG aldolase, KDGA, is a homotetramer of 32-kDa subunits. This enzyme was highly specific for KDG with up to 2,000-fold-higher catalytic efficiency compared to 2-keto-3-deoxy-6-phosphogluconate (KDPG) and thus differs from the bifunctional KDG/KDPG aldolase, KD(P)GA of crenarchaea catalyzing the conversion of both KDG and KDPG with a preference for KDPG. The KDGA-encoding gene, kdgA, was identified by matrix-assisted laser desorption ionization-time of flight (MALDI-TOF) mass spectrometry (MS) as Pto1279, and the correct translation start codon, an ATG 24 bp upstream of the annotated start codon of Pto1279, was determined by N-terminal amino acid analysis. The kdgA gene was functionally overexpressed in Escherichia coli. Phylogenetic analysis revealed that KDGA is only distantly related to KD(P)GA, both enzymes forming separate families within the dihydrodipicolinate synthase superfamily. From the data we conclude that P. torridus degrades glucose via a strictly nonphosphorylative ED pathway with a novel KDG-specific aldolase, thus excluding the operation of the branched ED pathway involving a bifunctional KD(P)GA as a key enzyme.


1999 ◽  
Vol 55 (11) ◽  
pp. 1946-1948 ◽  
Author(s):  
Louise V. Buchanan ◽  
Nupur Mehta ◽  
Luka Pocivavsek ◽  
S. Niranjanakumari ◽  
Eric J. Toone ◽  
...  

2-Keto-3-deoxy-6-phosphogluconate aldolase (KDPG aldolase, E.C. 4.1.2.14) is a member of the pyruvate/phosphoenolpyruvate aldolase family. It is also a synthetically useful enzyme, capable of catalyzing the stereoselective aldol addition of pyruvate to a range of unnatural electrophilic substrates. The recombinant protein was purified by a two-step HPLC protocol involving anion-exchange and hydrophobic chromatography. Dynamic light-scattering experiments indicated the protein to be monodisperse. Crystals were obtained using the sitting-drop vapour-diffusion method, with PEG 6K as precipitant. Diffraction data were collected on a frozen crystal to a resolution of 2.26 Å on station PX9.6 at the Daresbury synchrotron. The crystal belongs to space group P212121, with unit-cell parameters a = 53.2, b = 77.9, c = 146.8 Å.


2006 ◽  
Vol 14 (9) ◽  
pp. 3002-3010 ◽  
Author(s):  
Stephen W.B. Fullerton ◽  
Jennifer S. Griffiths ◽  
Alexandra B. Merkel ◽  
Manoj Cheriyan ◽  
Nathan J. Wymer ◽  
...  
Keyword(s):  
Class I ◽  

1983 ◽  
Vol 16 (2) ◽  
pp. 270-273
Author(s):  
L. Lebioda ◽  
M. H. Hatada ◽  
A. Tulinsky

The Kendrew-model coordinates of KDPG aldolase have been measured with the use of two theodolites which are improved versions of a conventional surveyor's transit. The four angular measurements are converted to Cartesian coordinates and a minimum-error estimate with a minicomputer interfaced to the theodolites. The positions of 1677 atoms of the asymmetric unit of KDPG aldolase were measured by two of the authors in four working days or at the rate of about 60 atoms h−1. The standard deviations of the bond distances and angles of the model obtained were ± 0.04 Å and about 7°, respectively. The mathematics of the various conversions are presented.


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