Cargando…

Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase

Sinorhizobium meliloti is a soil bacterium that fixes nitrogen after being established inside nodules that can form on the roots of several legumes, including Medicago truncatula. A mutation in an S. meliloti gene (lpsB) required for lipopolysaccharide synthesis has been reported to result in defect...

Descripción completa

Detalles Bibliográficos
Autores principales: Gu, Xiaogang, Lee, Sung G., Bar-Peled, Maor
Formato: Texto
Lenguaje:English
Publicado: Microbiology Society 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3068629/
https://www.ncbi.nlm.nih.gov/pubmed/20847005
http://dx.doi.org/10.1099/mic.0.040758-0
_version_ 1782201270078013440
author Gu, Xiaogang
Lee, Sung G.
Bar-Peled, Maor
author_facet Gu, Xiaogang
Lee, Sung G.
Bar-Peled, Maor
author_sort Gu, Xiaogang
collection PubMed
description Sinorhizobium meliloti is a soil bacterium that fixes nitrogen after being established inside nodules that can form on the roots of several legumes, including Medicago truncatula. A mutation in an S. meliloti gene (lpsB) required for lipopolysaccharide synthesis has been reported to result in defective nodulation and an increase in the synthesis of a xylose-containing glycan. Glycans containing xylose as well as arabinose are also formed by other rhizobial species, but little is known about their structures and the biosynthetic pathways leading to their formation. To gain insight into the biosynthesis of these glycans and their biological roles, we report the identification of an operon in S. meliloti 1021 that contains two genes encoding activities not previously described in bacteria. One gene encodes a UDP-xylose synthase (Uxs) that converts UDP-glucuronic acid to UDP-xylose, and the second encodes a UDP-xylose 4-epimerase (Uxe) that interconverts UDP-xylose and UDP-arabinose. Similar genes were also identified in other rhizobial species, including Rhizobium leguminosarum, suggesting that they have important roles in the life cycle of this agronomically important class of bacteria. Functional studies established that recombinant SmUxs1 is likely to be active as a dimer and is inhibited by NADH and UDP-arabinose. SmUxe is inhibited by UDP-galactose, even though this nucleotide sugar is not a substrate for the 4-epimerase. Unambiguous evidence for the conversions of UDP-glucuronic acid to UDP-α-d-xylose and then to UDP-β-l-arabinose (UDP-arabinopyranose) was obtained using real-time (1)H-NMR spectroscopy. Our results provide new information about the ability of rhizobia to form UDP-xylose and UDP-arabinose, which are then used for the synthesis of xylose- and arabinose-containing glycans.
format Text
id pubmed-3068629
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Microbiology Society
record_format MEDLINE/PubMed
spelling pubmed-30686292012-01-01 Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase Gu, Xiaogang Lee, Sung G. Bar-Peled, Maor Microbiology (Reading) Physiology and Biochemistry Sinorhizobium meliloti is a soil bacterium that fixes nitrogen after being established inside nodules that can form on the roots of several legumes, including Medicago truncatula. A mutation in an S. meliloti gene (lpsB) required for lipopolysaccharide synthesis has been reported to result in defective nodulation and an increase in the synthesis of a xylose-containing glycan. Glycans containing xylose as well as arabinose are also formed by other rhizobial species, but little is known about their structures and the biosynthetic pathways leading to their formation. To gain insight into the biosynthesis of these glycans and their biological roles, we report the identification of an operon in S. meliloti 1021 that contains two genes encoding activities not previously described in bacteria. One gene encodes a UDP-xylose synthase (Uxs) that converts UDP-glucuronic acid to UDP-xylose, and the second encodes a UDP-xylose 4-epimerase (Uxe) that interconverts UDP-xylose and UDP-arabinose. Similar genes were also identified in other rhizobial species, including Rhizobium leguminosarum, suggesting that they have important roles in the life cycle of this agronomically important class of bacteria. Functional studies established that recombinant SmUxs1 is likely to be active as a dimer and is inhibited by NADH and UDP-arabinose. SmUxe is inhibited by UDP-galactose, even though this nucleotide sugar is not a substrate for the 4-epimerase. Unambiguous evidence for the conversions of UDP-glucuronic acid to UDP-α-d-xylose and then to UDP-β-l-arabinose (UDP-arabinopyranose) was obtained using real-time (1)H-NMR spectroscopy. Our results provide new information about the ability of rhizobia to form UDP-xylose and UDP-arabinose, which are then used for the synthesis of xylose- and arabinose-containing glycans. Microbiology Society 2011-01 /pmc/articles/PMC3068629/ /pubmed/20847005 http://dx.doi.org/10.1099/mic.0.040758-0 Text en Copyright © 2011, SGM
spellingShingle Physiology and Biochemistry
Gu, Xiaogang
Lee, Sung G.
Bar-Peled, Maor
Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase
title Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase
title_full Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase
title_fullStr Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase
title_full_unstemmed Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase
title_short Biosynthesis of UDP-xylose and UDP-arabinose in Sinorhizobium meliloti 1021: first characterization of a bacterial UDP-xylose synthase, and UDP-xylose 4-epimerase
title_sort biosynthesis of udp-xylose and udp-arabinose in sinorhizobium meliloti 1021: first characterization of a bacterial udp-xylose synthase, and udp-xylose 4-epimerase
topic Physiology and Biochemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3068629/
https://www.ncbi.nlm.nih.gov/pubmed/20847005
http://dx.doi.org/10.1099/mic.0.040758-0
work_keys_str_mv AT guxiaogang biosynthesisofudpxyloseandudparabinoseinsinorhizobiummeliloti1021firstcharacterizationofabacterialudpxylosesynthaseandudpxylose4epimerase
AT leesungg biosynthesisofudpxyloseandudparabinoseinsinorhizobiummeliloti1021firstcharacterizationofabacterialudpxylosesynthaseandudpxylose4epimerase
AT barpeledmaor biosynthesisofudpxyloseandudparabinoseinsinorhizobiummeliloti1021firstcharacterizationofabacterialudpxylosesynthaseandudpxylose4epimerase