Diverse pathways for salicin utilization in Shigella sonnei and Escherichia coli carrying an impaired bgl operon

被引:12
作者
Desai, Stuti K. [1 ]
Nandimath, Krithi [1 ]
Mahadevan, S. [1 ]
机构
[1] Indian Inst Sci, Dept Mol Reprod Dev & Genet, Bangalore 560012, Karnataka, India
关键词
Silent genes; Beta-glucosides; Transcriptional activation; BETA-GLUCOSIDE UTILIZATION; SUBSP CAROTOVORUM LY34; NUCLEOTIDE-SEQUENCE; NEGATIVE REGULATION; STATIONARY-PHASE; ASC OPERON; CEL OPERON; SYSTEM; GENES; ELEMENTS;
D O I
10.1007/s00203-010-0610-8
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Utilization of the aryl-beta-glucosides salicin or arbutin in most wild-type strains of E. coli is achieved by a single-step mutational activation of the bgl operon. Shigella sonnei, a branch of the diverse E. coli strain tree, requires two sequential mutational steps for achieving salicin utilization as the bglB gene, encoding the phospho-beta-glucosidase B, harbors an inactivating insertion. We show that in a natural isolate of S. sonnei, transcriptional activation of the gene SSO1595, encoding a phospho-beta-glucosidase, enables salicin utilization with the permease function being provided by the activated bgl operon. SSO1595 is absent in most commensal strains of E. coli, but is present in extra-intestinal pathogens as bgcA, a component of the bgc operon that enables beta-glucoside utilization at low temperature. Salicin utilization in an E. coli bglB laboratory strain also requires a two-step activation process leading to expression of BglF, the PTS-associated permease encoded by the bgl operon and AscB, the phospho-beta-glucosidase B encoded by the silent asc operon. BglF function is needed since AscF is unable to transport beta-glucosides as it lacks the IIA domain involved in phopho-relay. Activation of the asc operon in the Sal(+) mutant is by a promoter-up mutation and the activated operon is subject to induction. The pathway to achieve salicin utilization is therefore diverse in these two evolutionarily related organisms; however, both show cooperation between two silent genetic systems to achieve a new metabolic capability under selection.
引用
收藏
页码:821 / 833
页数:13
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