Literature DB >> 372492

Transfer of a gene for sucrose utilization into Escherichia coli K12, and consequent failure of expression of genes for D-serine utilization.

N G Alaeddinoglu, H P Charles.   

Abstract

As the first stage in investigating the genetic basis of natural variation in Escherichia coli, the gene(s) conferring the ability to use sucrose as a carbon and energy source (given the symbol sac+) was transferred from a wild strain to K12, which does not use sucrose. The sac+ region was transferred by two different methods. On both occasions it took a chromosomal location at minute 50.5 on the linkage map, between aroC and supN, in the region of the dsd genes, which confer the ability to use D-serine as a carbon and energy source. When the sac+ region was present in the K12 chromosome the bacteria were unable to use D-serine as a carbon and energy source. In F' sac+/dsd+ diploids, the dsd+ genes were similarly not expressed. Strain K12(sac+) bacteria were sensitive to inhibition by D-serine; they mutated to D-serine resistance with much greater frequency than did a dsd mutant of K12. Such bacteria also mutated frequently to use raffinose. Strain K12(sac+) bacteria did not utilize sucrose when they carried a mutation affecting the phosphotransferase system.

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Year:  1979        PMID: 372492     DOI: 10.1099/00221287-110-1-47

Source DB:  PubMed          Journal:  J Gen Microbiol        ISSN: 0022-1287


  10 in total

1.  Characterization of a chromosomally encoded, non-PTS metabolic pathway for sucrose utilization in Escherichia coli EC3132.

Authors:  J Bockmann; H Heuel; J W Lengeler
Journal:  Mol Gen Genet       Date:  1992-10

Review 2.  Linkage map of Escherichia coli K-12, edition 10: the traditional map.

Authors:  M K Berlyn
Journal:  Microbiol Mol Biol Rev       Date:  1998-09       Impact factor: 11.056

Review 3.  Phosphoenolpyruvate:carbohydrate phosphotransferase system of bacteria.

Authors:  P W Postma; J W Lengeler
Journal:  Microbiol Rev       Date:  1985-09

4.  Phosphoenolpyruvate-dependent phosphotransferase system enzyme III and plasmid-encoded sucrose transport in Escherichia coli K-12.

Authors:  J W Lengeler; R J Mayer; K Schmid
Journal:  J Bacteriol       Date:  1982-07       Impact factor: 3.490

5.  Acquisition of a sucrose utilization system in Escherichia coli K-12 derivatives and its application to industry.

Authors:  H Tsunekawa; S Azuma; M Okabe; R Okamoto; S Aiba
Journal:  Appl Environ Microbiol       Date:  1992-06       Impact factor: 4.792

6.  Evidence for the transport of maltose by the sucrose permease, CscB, of Escherichia coli.

Authors:  Yang Peng; Sanath Kumar; Ricardo L Hernandez; Suzanna E Jones; Kathleen M Cadle; Kenneth P Smith; Manuel F Varela
Journal:  J Membr Biol       Date:  2009-03-18       Impact factor: 1.843

7.  Adaptation of sucrose metabolism in the Escherichia coli wild-type strain EC3132.

Authors:  Knut Jahreis; Lars Bentler; Jürgen Bockmann; Stephan Hans; Astrid Meyer; Jörg Siepelmeyer; Joseph W Lengeler
Journal:  J Bacteriol       Date:  2002-10       Impact factor: 3.490

8.  The genome sequence of E. coli W (ATCC 9637): comparative genome analysis and an improved genome-scale reconstruction of E. coli.

Authors:  Colin T Archer; Jihyun F Kim; Haeyoung Jeong; Jin Hwan Park; Claudia E Vickers; Sang Yup Lee; Lars K Nielsen
Journal:  BMC Genomics       Date:  2011-01-06       Impact factor: 3.969

9.  The host metabolite D-serine contributes to bacterial niche specificity through gene selection.

Authors:  James P R Connolly; Robert J Goldstone; Karl Burgess; Richard J Cogdell; Scott A Beatson; Waldemar Vollmer; David G E Smith; Andrew J Roe
Journal:  ISME J       Date:  2015-03-17       Impact factor: 10.302

10.  Diverse Horizontally-Acquired Gene Clusters Confer Sucrose Utilization to Different Lineages of the Marine Pathogen Photobacterium damselae subsp. damselae.

Authors:  Saqr Abushattal; Ana Vences; Alba V Barca; Carlos R Osorio
Journal:  Genes (Basel)       Date:  2020-10-22       Impact factor: 4.096

  10 in total

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