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PMID: 12057962 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Multiple pathways of Spx (YjbD) proteolysis in Bacillus subtilis.

Journal of bacteriology ·Vol. 184 ·No. 13 ·2002-07-00 ·Pages 3664-70

Nakano S, Zheng G, Nakano MM, Zuber P

Abstract

ATP-dependent proteases degrade denatured or misfolded proteins and are recruited for the controlled removal of proteins that block activation of regulatory pathways. Among the ATP-dependent proteases, those of the Clp family are particularly important for the growth and development of Bacillus subtilis. Proteolytic subunit ClpP, together with regulatory ATPase subunit ClpC or ClpX, is required for the normal response to stress, for development of genetic competence, and for sporulation. The spx (formally yjbD) gene was previously identified as a site of mutations that suppress defects in competence conferred by clpP and clpX. The level of Spx in wild-type cells grown in competence medium is low, and that in clpP mutants is high. This suggests that the Spx protein is a substrate for ClpP-containing proteases and that accumulation of Spx might be partly responsible for the observed pleiotropic phenotype resulting from the clpP mutation. In this study we examined, both in vivo and in vitro, which ClpP protease is responsible for degradation of Spx. Western blot analysis showed that Spx accumulated in clpX mutant to the same level as that observed in the clpP mutant. In contrast, a very low concentration of Spx was detected in a clpC mutant. An in vitro proteolysis experiment using purified proteins demonstrated that Spx was degraded by ClpCP but only in the presence of one of the ClpC adapter proteins, MecA or YpbH. However, ClpXP, either in the presence or in the absence of MecA and YpbH, was unable to degrade Spx. Transcription of spx, as measured by expression of spx-lacZ, was slightly increased by the clpX mutation. To exclude a possible effect of clpX and clpP on spx transcription, the spx gene was placed under the control of the IPTG (isopropyl-beta-D-thiogalactopyranoside)-inducible Pspac promoter. In this strain, Spx accumulated when ClpX or ClpP was absent, suggesting that ClpX and ClpP are required for degradation of Spx. Taken together, these results suggest that Spx is degraded by both ClpCP and ClpXP. The putative proteolysis by ClpXP might require another adapter protein. Spx probably is degraded by ClpCP under as yet unidentified conditions. This study suggests that the level of Spx is tightly controlled by two different ClpP proteases.

MeSH Terms
Adenosine Triphosphatases/genetics,metabolism Bacillus subtilis/genetics,metabolism Bacterial Proteins/metabolism Cell Division Culture Media Endopeptidases/genetics,metabolism Gene Expression Regulation, Bacterial/drug effects Isopropyl Thiogalactoside/pharmacology Mutation Promoter Regions, Genetic Transcription, Genetic
Chemicals
Bacterial Proteins Culture Media mecA protein, Bacillus subtilis Isopropyl Thiogalactoside Endopeptidases Adenosine Triphosphatases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Nakano Shunji
Department of Biochemistry and Molecular Biology, OGI School of Science & Engineering, Oregon Health & Science University, Beaverton, Oregon 97006-8921, USA.
Zheng Guolu
Nakano Michiko M
Zuber Peter
References (50)
50 references, click to expand
  1. 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 PMID: 8016066
  2. 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 PMID: 10411757
  3. 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 PMID: 7937777
  4. A molecular chaperone, ClpA, functions like DnaK and DnaJ.
    Proc Natl Acad Sci U S A. 1994 Dec 6;91(25):12218-22 PMID: 7991609
  5. 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 PMID: 7536743
  6. 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 PMID: 7724551
  7. 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 PMID: 7752896
  8. comK encodes the competence transcription factor, the key regulatory protein for competence development in Bacillus subtilis.
    Mol Microbiol. 1995 Feb;15(3):455-62 PMID: 7783616
  9. Disassembly of the Mu transposase tetramer by the ClpX chaperone.
    Genes Dev. 1995 Oct 1;9(19):2399-408 PMID: 7557391
  10. Regulation of Escherichia coli starvation sigma factor (sigma s) by ClpXP protease.
    J Bacteriol. 1996 Jan;178(2):470-6 PMID: 8550468
  11. 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 PMID: 8650219
  12. 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 PMID: 9224900
  13. 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 PMID: 9535081
  14. 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 PMID: 9573050
  15. 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 PMID: 9643546
  16. 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 PMID: 9720868
  17. Competence in Bacillus subtilis is controlled by regulated proteolysis of a transcription factor.
    EMBO J. 1998 Nov 16;17(22):6730-8 PMID: 9890793
  18. New insights into the ATP-dependent Clp protease: Escherichia coli and beyond.
    Mol Microbiol. 1999 May;32(3):449-58 PMID: 10320569
  19. 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 PMID: 10320580
  20. 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 PMID: 10361283
  21. Posttranslational quality control: folding, refolding, and degrading proteins.
    Science. 1999 Dec 3;286(5446):1888-93 PMID: 10583944
  22. 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 PMID: 10672187
  23. Protein folding and unfolding by Escherichia coli chaperones and chaperonins.
    Curr Opin Microbiol. 2000 Apr;3(2):197-202 PMID: 10745003
  24. The clp proteases of Bacillus subtilis are directly involved in degradation of misfolded proteins.
    J Bacteriol. 2000 Jun;182(11):3259-65 PMID: 10809708
  25. Phosphate starvation-inducible proteins of Bacillus subtilis: proteomics and transcriptional analysis.
    J Bacteriol. 2000 Aug;182(16):4478-90 PMID: 10913081
  26. 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 PMID: 10922051
  27. 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 PMID: 10922052
  28. 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 PMID: 10972808
  29. A specificity-enhancing factor for the ClpXP degradation machine.
    Science. 2000 Sep 29;289(5488):2354-6 PMID: 11009422
  30. 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 PMID: 11069659
  31. 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 PMID: 11112444
  32. Clp-mediated proteolysis in Gram-positive bacteria is autoregulated by the stability of a repressor.
    EMBO J. 2001 Feb 15;20(4):852-63 PMID: 11179229
  33. The RssB response regulator directly targets sigma(S) for degradation by ClpXP.
    Genes Dev. 2001 Mar 1;15(5):627-37 PMID: 11238382
  34. 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 PMID: 11274134
  35. SsrA-mediated tagging in Bacillus subtilis.
    J Bacteriol. 2001 Jul;183(13):3885-9 PMID: 11395451
  36. 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 PMID: 11454203
  37. Global analysis of the general stress response of Bacillus subtilis.
    J Bacteriol. 2001 Oct;183(19):5617-31 PMID: 11544224
  38. 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 PMID: 11684022
  39. 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 PMID: 11703662
  40. Spx (YjbD), a negative effector of competence in Bacillus subtilis, enhances ClpC-MecA-ComK interaction.
    Mol Microbiol. 2002 Jun;44(5):1341-9 PMID: 12028382
  41. Fate of transforming DNA following uptake by competent Bacillus subtilis. I. Formation and properties of the donor-recipient complex.
    J Mol Biol. 1971 Mar 14;56(2):209-21 PMID: 4994568
  42. Use of the Escherichia coli lac repressor and operator to control gene expression in Bacillus subtilis.
    Proc Natl Acad Sci U S A. 1984 Jan;81(2):439-43 PMID: 6420789
  43. Identification of a genetic locus required for biosynthesis of the lipopeptide antibiotic surfactin in Bacillus subtilis.
    J Bacteriol. 1988 Dec;170(12):5662-8 PMID: 2848009
  44. Genetic evidence for interaction of sigma A with two promoters in Bacillus subtilis.
    J Bacteriol. 1991 Jun;173(11):3282-90 PMID: 1904429
  45. Sequence and properties of mecA, a negative regulator of genetic competence in Bacillus subtilis.
    Mol Microbiol. 1993 Jul;9(2):365-73 PMID: 8412687
  46. 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 PMID: 8226769
  47. Stress induction of clpC in Bacillus subtilis and its involvement in stress tolerance.
    J Bacteriol. 1994 Jun;176(11):3360-7 PMID: 8195092
  48. Sequence and transcriptional analysis of clpX, a class-III heat-shock gene of Bacillus subtilis.
    Gene. 1996 Nov 28;181(1-2):77-83 PMID: 8973311
  49. 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.
    Genes Dev. 1997 Jan 1;11(1):119-28 PMID: 9000055
  50. 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.
    J Biol Chem. 1994 Jul 8;269(27):18209-15 PMID: 8027082
Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
2002-07-00
Pages
3664-70
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC135134
Subset
IM
Grants
NIGMS NIH HHS · R01 GM045898 · United States
NIGMS NIH HHS · GM45898 · United States
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