Vorholter_2008_J.Biotechnol_134_33

Reference

Title : The genome of Xanthomonas campestris pv. campestris B100 and its use for the reconstruction of metabolic pathways involved in xanthan biosynthesis - Vorholter_2008_J.Biotechnol_134_33
Author(s) : Vorholter FJ , Schneiker S , Goesmann A , Krause L , Bekel T , Kaiser O , Linke B , Patschkowski T , Ruckert C , Schmid J , Sidhu VK , Sieber V , Tauch A , Watt SA , Weisshaar B , Becker A , Niehaus K , Puhler A
Ref : J Biotechnol , 134 :33 , 2008
Abstract :

The complete genome sequence of the Xanthomonas campestris pv. campestris strain B100 was established. It consisted of a chromosome of 5,079,003bp, with 4471 protein-coding genes and 62 RNA genes. Comparative genomics showed that the genes required for the synthesis of xanthan and xanthan precursors were highly conserved among three sequenced X. campestris pv. campestris genomes, but differed noticeably when compared to the remaining four Xanthomonas genomes available. For the xanthan biosynthesis genes gumB and gumK earlier translational starts were proposed, while gumI and gumL turned out to be unique with no homologues beyond the Xanthomonas genomes sequenced. From the genomic data the biosynthesis pathways for the production of the exopolysaccharide xanthan could be elucidated. The first step of this process is the uptake of sugars serving as carbon and energy sources wherefore genes for 15 carbohydrate import systems could be identified. Metabolic pathways playing a role for xanthan biosynthesis could be deduced from the annotated genome. These reconstructed pathways concerned the storage and metabolization of the imported sugars. The recognized sugar utilization pathways included the Entner-Doudoroff and the pentose phosphate pathway as well as the Embden-Meyerhof pathway (glycolysis). The reconstruction indicated that the nucleotide sugar precursors for xanthan can be converted from intermediates of the pentose phosphate pathway, some of which are also intermediates of glycolysis or the Entner-Doudoroff pathway. Xanthan biosynthesis requires in particular the nucleotide sugars UDP-glucose, UDP-glucuronate, and GDP-mannose, from which xanthan repeat units are built under the control of the gum genes. The updated genome annotation data allowed reconsidering and refining the mechanistic model for xanthan biosynthesis.

PubMedSearch : Vorholter_2008_J.Biotechnol_134_33
PubMedID: 18304669
Gene_locus related to this paper: xanax-ENTF2 , xanax-GAA , xanax-PTRB , xanax-XAC0515 , xanax-XAC0628 , xanax-XAC0736 , xanax-XAC0753 , xanax-XAC1713 , xanca-acvB , xanca-BIOH , xanca-CATD , xanca-CPO , xanca-estA1 , xanca-impep , xanca-METX , xanca-XCC0080 , xanca-XCC0180 , xanca-XCC0266 , xanca-XCC0843 , xanca-XCC1105 , xanca-XCC1734 , xanca-XCC2285 , xanca-XCC2374 , xanca-XCC2397 , xanca-XCC2405 , xanca-XCC2566 , xanca-XCC2722 , xanca-XCC2817 , xanca-XCC3028 , xanca-XCC3164 , xanca-XCC3219 , xanca-XCC3514 , xanca-XCC3548 , xanca-XCC3555 , xanca-XCC3961 , xanca-XCC3970 , xanca-XCC4016 , xanca-XCC4180 , xanca-XYNB2 , xancb-b0rna3 , xancb-b0rq23

Related information

Gene_locus xanax-ENTF2    xanax-GAA    xanax-PTRB    xanax-XAC0515    xanax-XAC0628    xanax-XAC0736    xanax-XAC0753    xanax-XAC1713    xanca-acvB    xanca-BIOH    xanca-CATD    xanca-CPO    xanca-estA1    xanca-impep    xanca-METX    xanca-XCC0080    xanca-XCC0180    xanca-XCC0266    xanca-XCC0843    xanca-XCC1105    xanca-XCC1734    xanca-XCC2285    xanca-XCC2374    xanca-XCC2397    xanca-XCC2405    xanca-XCC2566    xanca-XCC2722    xanca-XCC2817    xanca-XCC3028    xanca-XCC3164    xanca-XCC3219    xanca-XCC3514    xanca-XCC3548    xanca-XCC3555    xanca-XCC3961    xanca-XCC3970    xanca-XCC4016    xanca-XCC4180    xanca-XYNB2    xancb-b0rna3    xancb-b0rq23
Gene_locus_frgt xanca-XCC1566

Citations formats

Vorholter FJ, Schneiker S, Goesmann A, Krause L, Bekel T, Kaiser O, Linke B, Patschkowski T, Ruckert C, Schmid J, Sidhu VK, Sieber V, Tauch A, Watt SA, Weisshaar B, Becker A, Niehaus K, Puhler A (2008)
The genome of Xanthomonas campestris pv. campestris B100 and its use for the reconstruction of metabolic pathways involved in xanthan biosynthesis
J Biotechnol 134 :33

Vorholter FJ, Schneiker S, Goesmann A, Krause L, Bekel T, Kaiser O, Linke B, Patschkowski T, Ruckert C, Schmid J, Sidhu VK, Sieber V, Tauch A, Watt SA, Weisshaar B, Becker A, Niehaus K, Puhler A (2008)
J Biotechnol 134 :33