UDP-glucose dehydrogenases of maize: a role in cell wall pentose biosynthesis

Author:

Kärkönen Anna1,Murigneux Alain2,Martinant Jean-Pierre2,Pepey Elodie2,Tatout Christophe2,Dudley Bernard J.1,Fry Stephen C.1

Affiliation:

1. The Edinburgh Cell Wall Group, Institute of Molecular Plant Sciences, School of Biological Sciences, The University of Edinburgh, Daniel Rutherford Building, The King's Buildings, Edinburgh EH9 3JH, U.K.

2. BIOGEMMA, Campus Universitaire des Cézeaux, 24, Avenue des Landais, 63170 Aubière, France

Abstract

UDPGDH (UDP-D-glucose dehydrogenase) oxidizes UDP-Glc (UDP-D-glucose) to UDP-GlcA (UDP-D-glucuronate), the precursor of UDP-D-xylose and UDP-L-arabinose, major cell wall polysaccharide precursors. Maize (Zea mays L.) has at least two putative UDPGDH genes (A and B), according to sequence similarity to a soya bean UDPGDH gene. The predicted maize amino acid sequences have 95% similarity to that of soya bean. Maize mutants with a Mu-element insertion in UDPGDH-A or UDPGDH-B were isolated (udpgdh-A1 and udpgdh-B1 respectively) and studied for changes in wall polysaccharide biosynthesis. The udpgdh-A1 and udpgdh-B1 homozygotes showed no visible phenotype but exhibited 90 and 60–70% less UDPGDH activity respectively than wild-types in a radiochemical assay with 30 μM UDP-glucose. Ethanol dehydrogenase (ADH) activity varied independently of UDPGDH activity, supporting the hypothesis that ADH and UDPGDH activities are due to different enzymes in maize. When extracts from wild-types and udpgdh-A1 homozygotes were assayed with increasing concentrations of UDP-Glc, at least two isoforms of UDPGDH were detected, having Km values of approx. 380 and 950 μM for UDP-Glc. Leaf and stem non-cellulosic polysaccharides had lower Ara/Gal and Xyl/Gal ratios in udpgdh-A1 homozygotes than in wild-types, whereas udpgdh-B1 homozygotes exhibited more variability among individual plants, suggesting that UDPGDH-A activity has a more important role than UDPGDH-B in UDP-GlcA synthesis. The fact that mutation of a UDPGDH gene interferes with polysaccharide synthesis suggests a greater importance for the sugar nucleotide oxidation pathway than for the myo-inositol pathway in UDP-GlcA biosynthesis during post-germinative growth of maize.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

Reference22 articles.

1. Sugar nucleotide transformations in plants;Feingold,1980

2. Biosynthesis of pectins;Mohnen,2002

3. Nucleotide sugar interconversions and cell wall biosynthesis: how to bring the inside to the outside;Seifert;Curr. Opin. Plant Biol.,2004

4. Structure and biogenesis of the cell walls of grasses;Carpita;Annu. Rev. Plant Physiol. Plant Mol. Biol.,1996

5. The myo-inositol oxidation pathway to cell wall polysaccharides;Loewus,1973

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