Affiliation:
1. Université de Lyon, Université Lyon 1, INSA Lyon, Microbiologie Adaptation et Pathogénie CNRS UMR5240, Domaine Scientifique de la Doua, 69622 Villeurbanne Cedex, France
Abstract
ABSTRACT
Erwinia chrysanthemi
(
Dickeya dadantii
) is a plant pathogenic bacterium that has a large capacity to degrade the plant cell wall polysaccharides. The present study reports the metabolic pathways used by
E. chrysanthemi
to assimilate the oligosaccharides sucrose and raffinose, which are particularly abundant plant sugars.
E. chrysanthemi
is able to use sucrose, raffinose, or melibiose as a sole carbon source for growth. The two gene clusters
scrKYABR
and
rafRBA
are necessary for their catabolism. The phenotypic analysis of
scr
and
raf
mutants revealed cross-links between the assimilation pathways of these oligosaccharides. Sucrose catabolism is mediated by the genes
scrKYAB
. While the
raf
cluster is sufficient to catabolize melibiose, it is incomplete for raffinose catabolism, which needs two additional steps that are provided by
scrY
and
scrB
. The
scr
and
raf
clusters are controlled by specific repressors, ScrR and RafR, respectively. Both clusters are controlled by the global activator of carbohydrate catabolism, the cyclic AMP receptor protein (CRP).
E. chrysanthemi
growth with lactose is possible only for mutants with a derepressed nonspecific lactose transport system, which was identified as RafB. RafR inactivation allows the bacteria to the assimilate the novel substrates lactose, lactulose, stachyose, and melibionic acid. The
raf
genes also are involved in the assimilation of α- and β-methyl-
d
-galactosides. Mutations in the
raf
or
scr
genes did not significantly affect
E. chrysanthemi
virulence. This could be explained by the large variety of carbon sources available in the plant tissue macerated by
E. chrysanthemi
.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Reference34 articles.
1. Nucleotide sequences and operon structure of plasmid-borne genes mediating uptake and utilization of raffinose in Escherichia coli
2. Aulkemeyer, P., R. Ebner, G. Heilenmann, K. Jahreis, K. Schmid, S. Wrieden, and J. W. Lengeler. 1991. Molecular analysis of two fructokinases involved in sucrose metabolism of enteric bacteria. Mol. Microbiol. 5 : 2913-2922.
3. Bardonnet, N., and C. Blanco. 1992. uidA antibiotic resistance cassettes for insertion mutagenesis, gene fusion and genetic constructions. FEMS Microbiol. Lett. 93 : 243-248.
4. Bochner, B. R. 2009. Global phenotypic characterization of bacteria. FEMS Microbiol. Rev. 33 : 191-205.
5. Blot, N., C. Berrier, N. Hugouvieux-Cotte-Pattat, A. Ghazi, and G. Condemine. 2002. The oligogalacturonate-specific porin KdgM of Erwinia chrysanthemi 3937 belongs to a new porin family. J. Biol. Chem. 277 : 7936-7944.
Cited by
19 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献