Literature DB >> 21398533

Catabolite repression of the Bacillus subtilis FadR regulon, which is involved in fatty acid catabolism.

Shigeo Tojo1, Takenori Satomura, Hiroshi Matsuoka, Kazutake Hirooka, Yasutaro Fujita.   

Abstract

The Bacillus subtilis fadR regulon involved in fatty acid degradation comprises five operons, lcfA-fadR-fadB-etfB-etfA, lcfB, fadN-fadA-fadE, fadH-fadG, and fadF-acdA-rpoE. Since the lcfA-fadRB-etfBA, lcfB, and fadNAE operons, whose gene products directly participate in the β-oxidation cycle, had been found to be probably catabolite repressed upon genome-wide transcript analysis, we performed Northern blotting, which indicated that they are clearly under CcpA-dependent catabolite repression. So, we searched for catabolite-responsive elements (cre's) to which the complex of CcpA and P-Ser-HPr binds to exert catabolite repression by means of a web-based cis-element search in the B. subtilis genome using known cre sequences, which revealed the respective candidate cre sequences in the lcfA, lcfB, and fadN genes. DNA footprinting indicated that the complex actually interacted with these cre's in vitro. Deletion analysis of each cre using the lacZ fusions with the respective promoter regions of the three operons with and without it, indicated that these cre's are involved in the CcpA-dependent catabolite repression of the operons in vivo.

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Year:  2011        PMID: 21398533      PMCID: PMC3133144          DOI: 10.1128/JB.00016-11

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  25 in total

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2.  REQUIREMENTS FOR TRANSFORMATION IN BACILLUS SUBTILIS.

Authors:  C Anagnostopoulos; J Spizizen
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Journal:  Mol Microbiol       Date:  2005-06       Impact factor: 3.501

4.  Plasmids designed to alter the antibiotic resistance expressed by insertion mutations in Bacillus subtilis, through in vivo recombination.

Authors:  M Steinmetz; R Richter
Journal:  Gene       Date:  1994-05-03       Impact factor: 3.688

5.  Direct and indirect roles of CcpA in regulation of Bacillus subtilis Krebs cycle genes.

Authors:  Hyun-Jin Kim; Agnes Roux; Abraham L Sonenshein
Journal:  Mol Microbiol       Date:  2002-07       Impact factor: 3.501

6.  Isolation and properties of a Bacillus subtilis mutant unable to produce fructose-bisphosphatase.

Authors:  Y Fujita; E Freese
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Journal:  Biosci Biotechnol Biochem       Date:  2009-02-07       Impact factor: 2.043

9.  Fatty acid degradation in Escherichia coli: requirement of cyclic adenosine monophosphate and cyclic adenosine monophosphate receptor protein for enzyme synthesis.

Authors:  G Pauli; R Ehring; P Overath
Journal:  J Bacteriol       Date:  1974-03       Impact factor: 3.490

10.  Possible function and some properties of the CcpA protein of Bacillus subtilis.

Authors:  Y Miwa; M Saikawa; Y Fujita
Journal:  Microbiology (Reading)       Date:  1994-10       Impact factor: 2.777

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2.  A copper-responsive global repressor regulates expression of diverse membrane-associated transporters and bacterial drug resistance in mycobacteria.

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3.  DarR, a TetR-like transcriptional factor, is a cyclic di-AMP-responsive repressor in Mycobacterium smegmatis.

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4.  Sequential evolution of virulence and resistance during clonal spread of community-acquired methicillin-resistant Staphylococcus aureus.

Authors:  Richard Copin; William E Sause; Yi Fulmer; Divya Balasubramanian; Sophie Dyzenhaus; Jamil M Ahmed; Krishan Kumar; John Lees; Anna Stachel; Jason C Fisher; Karl Drlica; Michael Phillips; Jeffrey N Weiser; Paul J Planet; Anne-Catrin Uhlemann; Deena R Altman; Robert Sebra; Harm van Bakel; Jennifer Lighter; Victor J Torres; Bo Shopsin
Journal:  Proc Natl Acad Sci U S A       Date:  2019-01-11       Impact factor: 11.205

5.  Machine learning uncovers independently regulated modules in the Bacillus subtilis transcriptome.

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Review 6.  Role of fatty acids in Bacillus environmental adaptation.

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Journal:  Front Microbiol       Date:  2015-08-05       Impact factor: 5.640

7.  Transcriptional Profile of Bacillus subtilis sigF-Mutant during Vegetative Growth.

Authors:  Wout Overkamp; Oscar P Kuipers
Journal:  PLoS One       Date:  2015-10-27       Impact factor: 3.240

8.  Effect of bodily fluids from honey bee (Apis mellifera) larvae on growth and genome-wide transcriptional response of the causal agent of American Foulbrood disease (Paenibacillus larvae).

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  8 in total

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