Multiple structural proteins are required for both transcriptional activation and negative autoregulation of Caulobacter crescentus flagellar genes - PubMed (original) (raw)
Comparative Study
Multiple structural proteins are required for both transcriptional activation and negative autoregulation of Caulobacter crescentus flagellar genes
G Ramakrishnan et al. J Bacteriol. 1994 Dec.
Abstract
The periodic and sequential expression of flagellar (fla) genes in the Caulobacter crescentus cell cycle depends on their organization into levels I to IV of a regulatory hierarchy in which genes at the top of the hierarchy are expressed early in the cell cycle and are required for the later expression of genes below them. In these studies, we have examined the regulatory role of level II fliF operon, which is located near the top of the hierarchy. The last gene in the fliF operon, flbD, encodes a transcriptional factor required for activation of sigma 54-dependent promoters at levels III and IV and negative autoregulation of the level II fliF promoter. We have physically mapped the fliF operon, identified four new genes in the transcription unit, and determined that the organization of these genes is 5'-fliF-fliG-flbE-fliN-flbD-3'. Three of the genes encode homologs of the MS ring protein (FliF) and two switch proteins (FliG and FliN) of enteric bacteria, and the fourth encodes a predicted protein (FlbE) without obvious similarities to known bacterial proteins. We have introduced nonpolar mutations in each of the open reading frames and shown that all of the newly identified genes (fliF, fliG, flbE, and fliN) are required in addition to flbD for activation of the sigma 54-dependent flgK and flbG promoters at level III. In contrast, fliF, fliG, and flbE, but not fliN, are required in addition to flbD for negative autoregulation of the level II fliF promoter. The simplest interpretation of these results is that the requirements of FlbD in transcriptional activation and repression are not identical, and we speculate that FlbD function is subject to dual or overlapping controls. We also discuss the requirement of multiple structural genes for regulation of levels II and III genes and suggest that fla gene expression in C. crescentus may be coupled to two checkpoints in flagellum assembly.
Similar articles
- Regulation of the Caulobacter crescentus rpoN gene and function of the purified sigma 54 in flagellar gene transcription.
Anderson DK, Ohta N, Wu J, Newton A. Anderson DK, et al. Mol Gen Genet. 1995 Mar 20;246(6):697-706. doi: 10.1007/BF00290715. Mol Gen Genet. 1995. PMID: 7898437 - FlbD has a DNA-binding activity near its carboxy terminus that recognizes ftr sequences involved in positive and negative regulation of flagellar gene transcription in Caulobacter crescentus.
Mullin DA, Van Way SM, Blankenship CA, Mullin AH. Mullin DA, et al. J Bacteriol. 1994 Oct;176(19):5971-81. doi: 10.1128/jb.176.19.5971-5981.1994. J Bacteriol. 1994. PMID: 7928958 Free PMC article. - Global regulation of a sigma 54-dependent flagellar gene family in Caulobacter crescentus by the transcriptional activator FlbD.
Wu J, Benson AK, Newton A. Wu J, et al. J Bacteriol. 1995 Jun;177(11):3241-50. doi: 10.1128/jb.177.11.3241-3250.1995. J Bacteriol. 1995. PMID: 7768824 Free PMC article. - The role of FlbD in regulation of flagellar gene transcription in Caulobacter crescentus.
Benson AK, Wu J, Newton A. Benson AK, et al. Res Microbiol. 1994 Jun-Aug;145(5-6):420-30. doi: 10.1016/0923-2508(94)90090-6. Res Microbiol. 1994. PMID: 7855428 Review.
Cited by
- Intergenic suppression between the flagellar MS ring protein FliF of Salmonella and FlhA, a membrane component of its export apparatus.
Kihara M, Minamino T, Yamaguchi S, Macnab RM. Kihara M, et al. J Bacteriol. 2001 Mar;183(5):1655-62. doi: 10.1128/JB.183.5.1655-1662.2001. J Bacteriol. 2001. PMID: 11160096 Free PMC article. - Role of the cytoplasmic C terminus of the FliF motor protein in flagellar assembly and rotation.
Grünenfelder B, Gehrig S, Jenal U. Grünenfelder B, et al. J Bacteriol. 2003 Mar;185(5):1624-33. doi: 10.1128/JB.185.5.1624-1633.2003. J Bacteriol. 2003. PMID: 12591880 Free PMC article. - Posttranscriptional regulation of Caulobacter flagellin genes by a late flagellum assembly checkpoint.
Anderson DK, Newton A. Anderson DK, et al. J Bacteriol. 1997 Apr;179(7):2281-8. doi: 10.1128/jb.179.7.2281-2288.1997. J Bacteriol. 1997. PMID: 9079914 Free PMC article. - Phosphatase to kinase switch of a critical enzyme contributes to timing of cell differentiation.
Chong TN, Panjalingam M, Saurabh S, Shapiro L. Chong TN, et al. mBio. 2024 Jan 16;15(1):e0212523. doi: 10.1128/mbio.02125-23. Epub 2023 Dec 6. mBio. 2024. PMID: 38055339 Free PMC article. - Regulation of the Caulobacter crescentus rpoN gene and function of the purified sigma 54 in flagellar gene transcription.
Anderson DK, Ohta N, Wu J, Newton A. Anderson DK, et al. Mol Gen Genet. 1995 Mar 20;246(6):697-706. doi: 10.1007/BF00290715. Mol Gen Genet. 1995. PMID: 7898437
References
- J Bacteriol. 1989 Jun;171(6):3247-57 - PubMed
- Proc Natl Acad Sci U S A. 1992 Jul 15;89(14):6304-8 - PubMed
- J Bacteriol. 1992 May;174(10):3327-38 - PubMed
- J Mol Biol. 1987 Mar 5;194(1):91-103 - PubMed
- J Biol Chem. 1983 Jun 25;258(12):7395-401 - PubMed
Publication types
MeSH terms
Substances
LinkOut - more resources
Full Text Sources