| Literature DB >> 26442598 |
Rui Wu1, Meng Zhao1, Jing Li1, He Gao1, Biao Kan1,2, Weili Liang1,2.
Abstract
TfoX (Sxy) and CRP are two important competence activators. The link between tfoX and CRP has been shown in H. influenza but lacking evidence of direct interaction. Recently a Sxy-dependent CRP (CRP-S) site autoregulating Sxy was reported in E. coli. Here, we show that the cAMP-CRP complex transcriptionally regulates tfoX expression through multiple canonical CRP (CRP-N) sites in Vibrios. This conclusion is supported by an analysis of the tfoX mRNA levels and tfoX transcriptional reporter fusions. The reduced expression of tfoX(VC) was restored by trans-complementation of crp in ∆crp and by exogenous cAMP in ∆cya. A promoter deletion analysis and the site-directed mutagenesis of the putative CRP-N sites revealed the presence of two functional CRP-N sites. The direct binding of cAMP-CRP to the tfoX(VC)promoter was demonstrated by EMSA assays. Additionally, the transcriptional start site (TSS) of tfoX(VF) in V. fluvialis was determined, and -10/-35 regions were predicted. Further comparison of the tfoX promoter in Vibrios revealed the existence of similar -10 motifs and putative CRP-N sites, indicating the conserved mechanism of CRP regulation on tfoX. Our study demonstrates the direct binding of the cAMP-CRP complex to tfoX promoter, and broadens the understanding of the molecular mechanism regulating tfoX in Vibrios.Entities:
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Year: 2015 PMID: 26442598 PMCID: PMC4595672 DOI: 10.1038/srep14921
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Effects of CRP on the tfoX gene expression.
(A) V. cholerae strains C7258∆lacZ (WT), WL7258∆lacZ (∆crp), and WL7258∆lacZ containing the wild-type crp gene in trans and the control vector were grown in LB medium to late-log phase. (B) V. fluvialis strains 85003 (WT) and 85003∆crp (∆crp) were grown in LB medium, and cells were collected at the late-log phase. The tfoX and tfoX mRNA abundances were measured by qRT-PCR. The “WT” bar was set to 1 and used as a reference to calculate subsequent expression values. Error bars indicate the standard deviations of three independent cultures. ***Significantly different from the wild-type strain (t-test, P < 0.05).
Figure 2Effects of cya mutation on the tfoX gene expression.
Overnight cultures of WL7259 (∆cya) were diluted 100-fold in LB and grown to OD600 0.5. Each culture was divided into three portions, and exogenous cAMP (Sigma Chemical Co.) was added to a final concentration of zero (control), 1.25, or 2.5 mM. The cultures were incubated at 37 °C for 1 h and the tfoX mRNA abundance was measured by qRT-PCR. The “WT” bar was set to 1 and used as a reference to calculate subsequent expression values. Error bars indicate the standard deviations of three independent cultures. **Significantly different from the wild-type strain (t-test, P < 0.05). ***Significantly different from the wild-type strain (t-test, P < 0.001).
Figure 3Transcriptional fusion analysis of the cAMP–CRP regulation of tfoX expression.
(A) The β-galactosidase expression in V. cholerae strains C7258∆lacZ (WT) and WL7258∆lacZ (∆crp) containing a ptfoX–lacZ transcriptional fusion. (B) The luminescence activity in V. fluvialis strains 85003 (WT) and 85003∆crp (∆crp) containing a ptfoX–lux transcriptional fusion. All strains were grown at 37 °C with shaking to the mid-log phase. The β-Galactosidase and bioluminescence activity were measured as described in the Methods. Error bars indicate the standard deviations of three independent cultures. ***Significantly different from the wild-type strain (t-test, P < 0.005).
Figure 4Effects of putative CRP binding sites on the tfoX expression.
(A) The structural organizations of the tfoX promoter and transcriptional fusions. Two putative CRP binding sites were found in the upstream region of tfoX centered at positions −84.5 and −41.5. (B) A deletion analysis of the tfoX promoter. V. cholerae strains C7258∆lacZ (WT) and WL7258∆lacZ (∆crp) containing the p2tfoXVC–lacZ and p3tfoXVC–lacZ fusion, respectively, were grown at 37 °C to mid-log phase. (C) The promoter activities of wild-type and CBS mutated fusions. C7258∆lacZ containing ptfoXVC–lacZ, ptfoXVC-lacZ-CBS1M, ptfoXVC-lacZ-CBS2M, or ptfoXVC-lacZ-CBS1M+2M were grown at 37 °C to the mid-log phase. The β-galactosidase activity was measured as described in the Methods. The mutated bases in fusions were constructed by site-directed mutagenesis and underlined. (D) V. cholerae strains C7258 (WT), C7258∆ptfoX-CBS1M, C7258∆ptfoX-CBS2M and C7258∆ptfoX-CBS1M+2M were grown in LB medium to late-log phase. The tfoX and pilB, chiA-1 and chiA-2 mRNA abundances were measured by qRT-PCR. Error bars indicate the standard deviations of three independent cultures. The “WT” bar was set to 1 and used as a reference to calculate subsequent expression values. ***Significantly different from the wild-type strain (t-test, P < 0.0003). *Significantly different from the wild-type strain (t-test, P < 0.05).
Figure 5Structural organization of the tfoX promoter region.
The tfoX promoter-proximate sequences from V. fluvialis, V. cholerae, V. mimicus, V. furnissii, V. vulnificus, V. anguillarum, V. harveyi, V. campbellii, V. alginolyticus, V. splendidus, V. fischeri, V. nigripulchritudo and V. paraheamlyticus were compared. The CRP binding sites are indicated with horizontal lines and the invert repeats in the CRP binding box are in boldface type. The putative −10 and/or −35 elements are underlined. The TTS of V. fluvialis and V. cholerae is designated with a box. The putative third CRP binding site located in the 24 bp spacing sequences in V. fischeri is also shown.
Figure 6Binding of the cAMP-CRP complex to the promoter region of tfoX.
EMSA were performed as described in the Methods section to determine whether there was a direct interaction between cAMP-CRP and the promoter region of tfoX. The arrow on the left side indicates the unbound free probe, whereas the arrow on the right side indicates the probe bound with CRP. (A) The purity of His-CRP analyzed with SDS-PAGE. (B) A biotin-labeled 152-bp DNA probe containing two CRP binding sites (10 ng) was incubated with increasing amounts of CRP in the presence of cAMP (0.1 mM). For the competition analysis, the same, but unlabeled, 152-bp DNA was included as 100-fold and 300-fold concentrations relative to the labeled probes. (C) The biotin-labeled 75-bp DNA fragments containing the original distal CRP binding site (probe-CBS1) or the corresponding mutagenized binding site (probe-CBS1M) were used as probes in a gel shift assay. (D) The biotin-labeled 97-bp DNA fragments containing the original proximal CRP binding site (probe-CBS2) or the corresponding mutagenized binding site (probe-CBS2M) were used as probes in the gel shift assay.
Strains, plasmids and primers used in this study.
| Strain, plasmid or primer | Characteristics or sequence |
|---|---|
| Strains | |
| C7258 | |
| WL7258 | C7258, ∆ |
| WL7259 | C7258, ∆ |
| C7258∆lacZ | C7258, ∆ |
| WL7258∆lacZ | C7258, ∆ |
| S17-1 | |
| 85003 | |
| 85003∆ | 85003, ∆ |
| C7258∆p | C7258 containing the site-specific mutagenesis of CRP binding site 1 on the chromosomal |
| C7258∆p | C7258 containing the site-specific mutagenesis of CRP binding site 2 on the chromosomal |
| C7258∆p | C7258 containing the site-specific mutagenesis of CRP binding site 1 and 2 on the chromosomal |
| Plasmids | |
| pWM91 | Suicide vector containing R6K |
| pCVD442 | Suicide vector containing R6K |
| pWM-VF∆ | 1 kb |
| pTT3 | |
| pTT- | 430 bp |
| phaplac7 | hapR promoter cloned in pKRZ1 in front of promoterless |
| p | |
| p2TT | 220 bp |
| P3TT | 185 bp |
| pBBR | bioluminescence based reporter plasmid containing a promoterless |
| p | 384 bp |
| p | p |
| p | p |
| p | p |
| pBADCRP7 | |
| pCVD-∆p | 3.0 kb |
| pCVD-∆p | 2.158 kb |
| pCVD-∆p | 2.158 kb |
| pCVD-∆p | 2.158 kb |
| Primers | |
| VF-CRP-F1-up- | 5′-AACGTCGACTACCCTTACCTGC-3′ |
| VF-CRP-F1-dn | 5′-GTGACGATTACAAAGTCTCTGCTTTTTCG-3′ |
| VF-CRP-F2-up | 5′-AGAGACTTTGTAATCGTCACCGAGACAGAA-3′ |
| VF-CRP-F2-dn- | 5′-CGAGCTCCGTCTGTGGGATCTGAG-3′ |
| pVC1153-up- | 5′-ACCTGCAGCGGGTAACCAGTAAAAAG-3′ |
| pVC1153-dn- | 5′-CCCAAGCTTCGAAAAACTGTTGCTCAT-3′ |
| VF-sxy-prom-up- | 5′-CGAGCTCCATTGTTTATCATTGTTAGT-3′ |
| VF-sxy-prom-dn- | 5′-CGGGATCCCATATCCATTGATCCTTTAA-3′ |
| VF-sxy-qPCR-up | 5′-CGTTCTATGTTTGGTGGTATTG-3′ |
| VF-sxy-qPCR-dn | 5′-GCCGTTGTCTGCTTCTTC-3′ |
| VF-recA-qPCR-up | 5′-ACCGAGTCAACGACGATAAC-3′ |
| VF-recA-qPCR-dn | 5′-TGATGAACTGCTGGTGTCTC-3′ |
| VC1153-up | 5′-ACGCTCGATGTTTGGTGGTATTGG-3′ |
| VC1153-dn | 5′-ATTGGGTAAATCCCGTAGACGACG-3′ |
| VF-sxy-race | 5′-TCTGCTTCTTCACATGACGG-3′ |
| Shift-up1976/1996 | 5′-GGTTTAAGTATAGAGGAGCA-3′(5′ biotin-labeled) |
| Shift-dn2107/2127 | 5′-GTTCGTATGAGCTTGCTTGT-3′(5′ biotin-labeled) |
| VC1153-p1shift-dn | 5′-ATGCAATACTTTTGCGCCAG-3′(5′ biotin-labeled) |
| VC1153-p2shift-up | 5′-CTGGCGCAAAAGTATTGCAT-3′(5′ biotin-labeled) |
| VC1153CBS1M-for | 5′-TTGACGCTCACATACTGGTCTCATAATCTGG-3′ |
| VC1153CBS1M-rev | 5′-GACCAGTATGTGAGCGTCAATTTTTTGTTGC-3′ |
| VC1153CBS2M-for | 5′-TGCATCGATCACAGATAAGTCCAGACTTATTTCTC-3′ |
| VC1153CBS2M-rev | 5′-GACTTATCTGTGATCGATGCAATACTTTTGCGCCA-3′ |
| F1-up- | 5′-GCGTCGACATCACTTAGCTTGTTGTT-3′ |
| F1-dn- | 5′-GCTCATCTGCAGCTTTTTACTGGTTACCCG-3′ |
| F2-up: | 5′-GTAACCAGTAAAAAGATAGGTGACTCATAA-3′ |
| F2-dn: | 5′-ACTGTTGCTCATTCATATCCATTGATCCTT-3′ |
| F3-up- | 5′-AAAAGCTGCAGATGAGCAACAGTTTTTCGA-3′ |
| F3-dn- | 5′-CATGCATGCATTGGTATTCGTCAGTGG-3′ |
| | 5′-ATGCTCACCAACCTTGTT-3′ |
| | 5′-TGTAACCACCGCTTGTTC-3′ |
| | 5′-TGGCATAACTTCGTCAAT-3′ |
| | 5′-AAGGCAATATCAATCACATC-3′ |
| | 5′-GCTATCGGTGTTGGTCAT-3′ |
| | 5′-CGTAGAAGTCATAAGTCATTGC-3′ |