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The heat shock response of Escherichia coli is regulated by the cellular level and the activity of σ32, an alternative sigma factor for heat shock promoters. FtsH, a membrane-bound AAA-type metalloprotease, degrades σ32 and has a central role in the control of the σ32 level. The ftsH null mutant was isolated, and establishment of the Δ ftsH mutant allowed us to investigate control mechanisms of the stability and the activity of σ32 separately in vivo . Loss of the FtsH function caused marked stabilization and consequent accumulation of σ32 (≈20-fold of the wild type), leading to the impaired downregulation of the level of σ32. Surprisingly, however, Δ ftsH cells express heat shock proteins only two- to threefold higher than wild-type cells, and they also show almost normal heat shock response upon temperature upshift. These results indicate the presence of a control mechanism that downregulates the activity of σ32 when it is accumulated. Overproduction of DnaK/J reduces the activity of σ32 in Δ ftsH cells without any detectable changes in the level of σ32, indicating that the DnaK chaperone system is responsible for the activity control of σ32 in vivo . In addition, CbpA, an analogue of DnaJ, was demonstrated to have overlapping functions with DnaJ in both the activity and the stability control of σ32.  相似文献   

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MucA sequesters extracytoplasmic function (ECF) σ22 ( algT/U encoded) from target promoters including P algD for alginate biosynthesis. We have shown that cell wall stress (e.g. d -cycloserine) is a potent inducer of the algD operon. Here we showed that MucB, encoded by the algT-mucABCD operon, interacts with MucA in the sigma–sequestration complex. We hypothesized that AlgW protease (a DegS homologue) is activated by cell wall stress to cleave MucA and release σ22. When strain PAO1 was exposed to d -cycloserine, MucA was degraded within just 10 min, and σ22 was activated. However, in an algW mutant, MucA was stable with no increased σ22 activity. Studies on a yaeL mutant, defective in an RseP/YaeL homologue, suggest that YaeL protease cleaves MucA only after cleavage by AlgW. A defect in mucD , encoding a periplasmic HtrA/DegP homologue, caused MucA instability, suggesting MucD degrades cell wall stress signals. Overall, these data indicate that cell wall stress signals release σ22 by regulated intramembrane proteolysis (RIP). Microarray analyses identified genes of the early and late cell wall stress stimulon, which included genes for alginate production. The subset of genes in the σ22 regulon was then determined, which included gene products predicted to contribute to recovery from cell wall stress.  相似文献   

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HfIB, also called FtsH, is an essential Escherichia coli protein involved in the proteolysis of the heat-shock regulator σ32 and of the phage regulator λcll. The hfIB1 (Ts) allele (formerly called ftsH1 ) conferring temperature-sensitive growth at 42°C is suppressed by loss of the ferric-uptake repressor Fur and by anaerobic growth. We show here that suppression requires TonB-dependent Fe(III) transport in the hfIB1 (Ts) fur mutant during aerobic growth at 42°C and Feo-dependent Fe(II) transport during anaerobic growth at 42°C. Temperature-resistant growth of hfIB1 (Ts) strains is also observed at 42°C in the presence of a high concentration of Fe(II), Ni(II), Mn(II) or Co(II) salts, but not in the presence of Zn(II), Cd(II), Cu(II), Mg(II), Ca(II) or Cr(III) salts. However, neither Ni(II) nor a fur mutation permits growth in the complete absence of HfIB. The heat-shock response, evaluated by an htpG :: lacZ fusion, is overinduced in hfIB1 (Ts) strains at 42°C because of stabilization of σ32. Growth in the presence of Ni(II) or in the absence of the Fur repressor abolishes this overinduction in the hfIB1 (Ts) strain, and, in the hfIB1 (Ts) fur mutant, σ32 is no longer stabilized at 42°C. These results reinforce the recent observation that HfIB is a metalloprotease active against σ32 in vitro and suggest that it can associate functionally in vivo with Fe(II), Ni(II), Mn(II) and Co(II) ions.  相似文献   

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σ32 controls expression of heat shock genes in Escherichia coli and is widely distributed in proteobacteria. The distinguishing feature of σ32 promoters is a long −10 region (CCCCATNT) whose tetra-C motif is important for promoter activity. Using alanine-scanning mutagenesis of σ32 and in vivo and in vitro assays, we identified promoter recognition determinants of this motif. The most downstream C (−13) is part of the −10 motif; our work confirms and extends recognition determinants of −13C. Most importantly, our work suggests that the two upstream Cs (−16, −15) constitute an 'extended −10' recognition motif that is recognized by K130, a residue universally conserved in β- and γ-proteobacteria. This residue is located in the α-helix of σDomain 3 that mediates recognition of the extended −10 promoter motif in other σs. K130 is not conserved in α- and δ-/ε-proteobacteria and we found that σ32 from the α-proteobacterium Caulobacter crescentus does not need the extended −10 motif for high promoter activity. This result supports the idea that K130 mediates extended −10 recognition. σ32 is the first Group 3 σ shown to use the 'extended −10' recognition motif.  相似文献   

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σ28 controls the expression of flagella-related genes and is the most widely distributed alternative σ factor, present in motile Gram-positive and Gram-negative bacteria. The distinguishing feature of σ28 promoters is a long −10 region (GCCGATAA). Despite the fact that the upstream GC is highly conserved, previous studies have not indicated a functional role for this motif. Here we examine the functional relevance of the GCCG motif and determine which residues in σ28 participate in its recognition. We find that the GCCG motif is a functionally important composite element. The upstream GC constitutes an extended −10 motif and is recognized by R91, a residue in Domain 3 of σ28. The downstream CG is the upstream edge of −10 region of the promoter; two residues in Region 2.4, D81 and R84, participate in its recognition. Consistent with their role in base-specific recognition of the promoter, R91, D81 and D84 are universally conserved in σ28 orthologues. σ28 is the second Group 3 σ shown to use an extended −10 region in promoter recognition, raising the possibility that other Group 3 σs will do so as well.  相似文献   

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