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MecB of Bacillus subtilis, a member of the ClpC ATPase family, is a pleiotropic regulator controlling competence gene expression and growth at high temperature.
Proc Natl Acad Sci U S A. 1994 Jun 21;91(13):5788-92
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Role of lon and ClpX in the post-translational regulation of a sigma subunit of RNA polymerase required for cellular differentiation in Bacillus subtilis.
Mol Microbiol. 1999 Jul;33(2):415-28
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Identification of comS, a gene of the srfA operon that regulates the establishment of genetic competence in Bacillus subtilis.
Proc Natl Acad Sci U S A. 1994 Sep 27;91(20):9397-401
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A molecular chaperone, ClpA, functions like DnaK and DnaJ.
Proc Natl Acad Sci U S A. 1994 Dec 6;91(25):12218-22
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C-terminal extension of truncated recombinant proteins in Escherichia coli with a 10Sa RNA decapeptide.
J Biol Chem. 1995 Apr 21;270(16):9322-6
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Addiction protein Phd of plasmid prophage P1 is a substrate of the ClpXP serine protease of Escherichia coli.
Proc Natl Acad Sci U S A. 1995 Apr 11;92(8):3274-7
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A small gene, designated comS, located within the coding region of the fourth amino acid-activation domain of srfA, is required for competence development in Bacillus subtilis.
Mol Microbiol. 1995 Jan;15(1):55-63
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comK encodes the competence transcription factor, the key regulatory protein for competence development in Bacillus subtilis.
Mol Microbiol. 1995 Feb;15(3):455-62
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Disassembly of the Mu transposase tetramer by the ClpX chaperone.
Genes Dev. 1995 Oct 1;9(19):2399-408
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Regulation of Escherichia coli starvation sigma factor (sigma s) by ClpXP protease.
J Bacteriol. 1996 Jan;178(2):470-6
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An Escherichia coli chromosomal "addiction module" regulated by guanosine [corrected] 3',5'-bispyrophosphate: a model for programmed bacterial cell death.
Proc Natl Acad Sci U S A. 1996 Jun 11;93(12):6059-63
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Single-column purification of free recombinant proteins using a self-cleavable affinity tag derived from a protein splicing element.
Gene. 1997 Jun 19;192(2):271-81
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ClpP of Bacillus subtilis is required for competence development, motility, degradative enzyme synthesis, growth at high temperature and sporulation.
Mol Microbiol. 1998 Mar;27(5):899-914
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The ClpXP and ClpAP proteases degrade proteins with carboxy-terminal peptide tails added by the SsrA-tagging system.
Genes Dev. 1998 May 1;12(9):1338-47
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Stress induction of the Bacillus subtilis clpP gene encoding a homologue of the proteolytic component of the Clp protease and the involvement of ClpP and ClpX in stress tolerance.
Mol Microbiol. 1998 May;28(4):787-802
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ClpC regulates the fate of a sporulation initiation sigma factor, sigmaH protein, in Bacillus subtilis at elevated temperatures.
Mol Microbiol. 1998 Jul;29(2):505-13
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Competence in Bacillus subtilis is controlled by regulated proteolysis of a transcription factor.
EMBO J. 1998 Nov 16;17(22):6730-8
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New insights into the ATP-dependent Clp protease: Escherichia coli and beyond.
Mol Microbiol. 1999 May;32(3):449-58
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ClpE, a novel type of HSP100 ATPase, is part of the CtsR heat shock regulon of Bacillus subtilis.
Mol Microbiol. 1999 May;32(3):581-93
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Mutational analysis of ComS: evidence for the interaction of ComS and MecA in the regulation of competence development in Bacillus subtilis.
Mol Microbiol. 1999 May;32(4):799-812
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Posttranslational quality control: folding, refolding, and degrading proteins.
Science. 1999 Dec 3;286(5446):1888-93
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The response regulator RssB, a recognition factor for sigmaS proteolysis in Escherichia coli, can act like an anti-sigmaS factor.
Mol Microbiol. 2000 Feb;35(3):657-66
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Protein folding and unfolding by Escherichia coli chaperones and chaperonins.
Curr Opin Microbiol. 2000 Apr;3(2):197-202
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The clp proteases of Bacillus subtilis are directly involved in degradation of misfolded proteins.
J Bacteriol. 2000 Jun;182(11):3259-65
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Phosphate starvation-inducible proteins of Bacillus subtilis: proteomics and transcriptional analysis.
J Bacteriol. 2000 Aug;182(16):4478-90
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Protein binding and unfolding by the chaperone ClpA and degradation by the protease ClpAP.
Proc Natl Acad Sci U S A. 2000 Aug 1;97(16):8892-7
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Unfolding and internalization of proteins by the ATP-dependent proteases ClpXP and ClpAP.
Proc Natl Acad Sci U S A. 2000 Aug 1;97(16):8898-903
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Mutations conferring amino acid residue substitutions in the carboxy-terminal domain of RNA polymerase alpha can suppress clpX and clpP with respect to developmentally regulated transcription in Bacillus subtilis.
Mol Microbiol. 2000 Aug;37(4):869-84
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A specificity-enhancing factor for the ClpXP degradation machine.
Science. 2000 Sep 29;289(5488):2354-6
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The CtsR regulator of stress response is active as a dimer and specifically degraded in vivo at 37 degrees C.
Mol Microbiol. 2000 Oct;38(2):335-47
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Deficiency of the initiation events of sporulation in Bacillus subtilis clpP mutant can be suppressed by a lack of the Spo0E protein phosphatase.
Biochem Biophys Res Commun. 2000 Dec 9;279(1):229-33
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Clp-mediated proteolysis in Gram-positive bacteria is autoregulated by the stability of a repressor.
EMBO J. 2001 Feb 15;20(4):852-63
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The RssB response regulator directly targets sigma(S) for degradation by ClpXP.
Genes Dev. 2001 Mar 1;15(5):627-37
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Development of a new integration site within the Bacillus subtilis chromosome and construction of compatible expression cassettes.
J Bacteriol. 2001 Apr;183(8):2696-9
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SsrA-mediated tagging in Bacillus subtilis.
J Bacteriol. 2001 Jul;183(13):3885-9
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Inactivation of a gene that is highly conserved in Gram-positive bacteria stimulates degradation of non-native proteins and concomitantly increases stress tolerance in Lactococcus lactis.
Mol Microbiol. 2001 Jul;41(1):93-103
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Global analysis of the general stress response of Bacillus subtilis.
J Bacteriol. 2001 Oct;183(19):5617-31
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Self-reinforcing activation of a cell-specific transcription factor by proteolysis of an anti-sigma factor in B. subtilis.
Mol Cell. 2001 Oct;8(4):873-83
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Loss-of-function mutations in yjbD result in ClpX- and ClpP-independent competence development of Bacillus subtilis.
Mol Microbiol. 2001 Oct;42(2):383-94
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Spx (YjbD), a negative effector of competence in Bacillus subtilis, enhances ClpC-MecA-ComK interaction.
Mol Microbiol. 2002 Jun;44(5):1341-9
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Fate of transforming DNA following uptake by competent Bacillus subtilis. I. Formation and properties of the donor-recipient complex.
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Use of the Escherichia coli lac repressor and operator to control gene expression in Bacillus subtilis.
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Identification of a genetic locus required for biosynthesis of the lipopeptide antibiotic surfactin in Bacillus subtilis.
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Genetic evidence for interaction of sigma A with two promoters in Bacillus subtilis.
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Sequence and properties of mecA, a negative regulator of genetic competence in Bacillus subtilis.
Mol Microbiol. 1993 Jul;9(2):365-73
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Isolation and characterization of ClpX, a new ATP-dependent specificity component of the Clp protease of Escherichia coli.
J Biol Chem. 1993 Oct 25;268(30):22609-17
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Stress induction of clpC in Bacillus subtilis and its involvement in stress tolerance.
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Sequence and transcriptional analysis of clpX, a class-III heat-shock gene of Bacillus subtilis.
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Biochemical characterization of a molecular switch involving the heat shock protein ClpC, which controls the activity of ComK, the competence transcription factor of Bacillus subtilis.
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Processive degradation of proteins by the ATP-dependent Clp protease from Escherichia coli. Requirement for the multiple array of active sites in ClpP but not ATP hydrolysis.
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