Biosynthesis of UDP-Xylose. Cloning and Characterization of a Novel Arabidopsis Gene Family, UXS, Encoding Soluble and Putative Membrane-Bound UDP-Glucuronic Acid Decarboxylase Isoforms
- 1 December 2002
- journal article
- Published by Oxford University Press (OUP) in Plant Physiology
- Vol. 130 (4) , 2188-2198
- https://doi.org/10.1104/pp.009654
Abstract
UDP-xylose (Xyl) is an important sugar donor for the synthesis of glycoproteins, polysaccharides, various metabolites, and oligosaccharides in animals, plants, fungi, and bacteria. UDP-Xyl also feedback inhibits upstream enzymes (UDP-glucose [Glc] dehydrogenase, UDP-Glc pyrophosphorylase, and UDP-GlcA decarboxylase) and is involved in its own synthesis and the synthesis of UDP-arabinose. In plants, biosynthesis of UDP-Xyl is catalyzed by different membrane-bound and soluble UDP-GlcA decarboxylase (UDP-GlcA-DC) isozymes, all of which convert UDP-GlcA to UDP-Xyl. Because synthesis of UDP-Xyl occurs both in the cytosol and in membranes, it is not known which source of UDP-Xyl the different Golgi-localized xylosyltransferases are utilizing. Here, we describe the identification of several distinct Arabidopsis genes (named AtUXS for UDP-Xyl synthase) that encode functional UDP-GlcA-DC isoforms. The Arabidopsis genome contains fiveUXS genes and their protein products can be subdivided into three isozyme classes (A–C), one soluble and two distinct putative membrane bound. AtUxs from each class, when expressed inEscherichia coli, generate active UDP-GlcA-DC that converts UDP-GlcA to UDP-Xyl. Members of this gene family have a large conserved C-terminal catalytic domain (approximately 300 amino acids long) and an N-terminal variable domain differing in sequence and size (30–120 amino acids long). Isoforms of class A and B appear to encode putative type II membrane proteins with their catalytic domains facing the lumen (like Golgi-glycosyltransferases) and their N-terminal variable domain facing the cytosol. Uxs class C is likely a cytosolic isoform. The characteristics of the plant Uxs support the hypothesis that unique UDP-GlcA-DCs with distinct subcellular localizations are required for specific xylosylation events.Keywords
This publication has 48 references indexed in Scilit:
- Galactosyl- and fucosyltransferases in etiolated pea epicotyls: product identification and sub-cellular localisationJournal of Plant Physiology, 2001
- Molecular Cloning and Expression of Human UDP-d-Xylose:Proteoglycan Core Protein β-d-Xylosyltransferase and its First Isoform XT-IIJournal of Molecular Biology, 2000
- Molecular cloning and functional expression of β1,2‐xylosyltransferase cDNA from Arabidopsis thaliana1FEBS Letters, 2000
- Gapped BLAST and PSI-BLAST: a new generation of protein database search programsNucleic Acids Research, 1997
- Cloning of an Enzyme That Synthesizes a Key Nucleotide-Sugar Precursor of Hemicellulose Biosynthesis from Soybean:UDP-Glucose DehydrogenasePlant Physiology, 1996
- Synthesis of a New Photoaffinity Probe, 5‐Azido‐[32P]UDPxylose, by UDPglucuronate Carboxylyase from Wheat GermEuropean Journal of Biochemistry, 1995
- Expansion of the mammalian 3β‐hydroxysteroid dehydrogenase/plant dihydroflavonol reductase superfamily to include a bacterial cholesterol dehydrogenase, a bacterial UDP‐galactose‐4‐epimerase, and open reading frames in vaccinia virus and fish lymphocystis disease virusFEBS Letters, 1992
- Spatial organization of the assembly pathways of glycoproteins and complex polysaccharides in the Golgi apparatus of plants.The Journal of cell biology, 1991
- Prediction of the occurrence of the ADP-binding βαβ-fold in proteins, using an amino acid sequence fingerprintJournal of Molecular Biology, 1986
- ENZYMATIC CONVERSION OF URIDINE DIPHOSPHATE D-GLUCURONIC ACID TO URIDINE DIPHOSPHATE GALACTURONIC ACID, URIDINE DIPHOSPHATE XYLOSE, AND URIDINE DIPHOSPHATE ARABINOSE1,2Journal of the American Chemical Society, 1958