| Literature DB >> 23144706 |
Vera H I Fengler1, Eva C Boritsch, Sarah Tutz, Andrea Seper, Hanna Ebner, Sandro Roier, Stefan Schild, Joachim Reidl.
Abstract
Virulence factor production in Vibrio cholerae is complex, with ToxRS being an important part of the regulatory cascade. Additionally, ToxR is the transcriptional regulator for the genes encoding the major outer membrane porins OmpU and OmpT. ToxR is a transmembrane protein and contains two cysteine residues in the periplasmic domain. This study addresses the influence of the thiol-disulfide oxidoreductase system DsbAB, ToxR cysteine residues and ToxR/ToxS interaction on ToxR activity. The results show that porin production correlates with ToxR intrachain disulfide bond formation, which depends on DsbAB. In contrast, formation of ToxR intrachain or interchain disulfide bonds is dispensable for virulence factor production and in vivo colonization. This study further reveals that in the absence of ToxS, ToxR interchain disulfide bond formation is facilitated, whereat cysteinyl dependent homo- and oligomerization of ToxR is suppressed if ToxS is coexpressed. In summary, new insights into gene regulation by ToxR are presented, demonstrating a mechanism by which ToxR activity is linked to a DsbAB dependent intrachain disulfide bond formation.Entities:
Mesh:
Substances:
Year: 2012 PMID: 23144706 PMCID: PMC3483227 DOI: 10.1371/journal.pone.0047756
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Bacteria strains and plasmids used in this study.
| Strain or plasmid | Relevant characteristic | Reference |
|
| ||
| XL1-Blue | F′::Tn10 | NEB |
| DH5αλpir | F− Φ80 |
|
| SM10λpir |
|
|
|
| ||
| O395 | O1 Ogawa, classical, clinical isolate, India 1964, spontaneous smr |
|
| P27459-S | O1 Inaba, El Tor, clinical isolate, Bangladesh 1976, spontaneous smr |
|
| O395 Δ |
| This study |
| O395 Δ |
| This study |
| O395 Δ | Deletion in | This study |
| O395 Δ | Deletion in | This study |
| P27459-S Δ |
| This study |
| P27459-S Δ |
| This study |
| P27459-S Δ |
| This study |
| P27459-S |
| This study |
| P27459-S Δ | Deletion in | This study |
| P27459-S Δ | Deletion in | This study |
| O395 Δ |
| This study |
| O395 Δ |
| This study |
| O395 Δ |
| This study |
| P27459-S Δ |
| This study |
| P27459-S Δ |
| This study |
| P27459-S Δ |
| This study |
| P27459-S Δ |
| This study |
|
| ||
| pKEK229 | OriR6K
|
|
| pGP704 | OriR6K
|
|
| pCVD442 | OriR6K
|
|
| pKan π | kmr |
|
| pBAD18 | Expression vector, arabinose inducible, apr |
|
| pFLAG-MAC™ | Expression vector with N-terminal FLAG-Tag, IPTG inducible, apr | Sigma-Aldrich |
| pGPdsbC | pGP704 carrying internat fragment of | This study |
| pKEK229dsbA::km | pCVD442 carrying up and down fragment of | This study |
| pKEK229dsbB::km | pCVD442 carrying up and down fragment of | This study |
| pCVD442lacZ | pCVD442 carrying up and down fragments of | This study |
| pCVD442toxR | pCVD442 carrying up and down fragment of | This study |
| pCVD442toxRS | pCVD442 carrying up fragment of | This study |
| pdsbA |
| This study |
| pdsbB |
| This study |
| pFLAGtoxR |
| This study |
| pFLAGtoxRCC |
| This study |
| pFLAGtoxRS |
| This study |
| pFLAGtoxRCCS |
| This study |
| pFLAGtoxRS(Δ264) | pFLAGtoxRS carrying a 264 bp deletion in | This study |
| pFLAGtoxRS_ompU |
| This study |
| pFLAGtoxRS_toxT |
| This study |
| pFLAGtoxRS_ompU(Δ264) | pFLAGtoxRS_ompU carrying a 264 bp deletion in | This study |
| pFLAGtoxRS_toxT(Δ264) | pFLAGtoxRS_toxT carrying a 264 bp deletion in | This study |
| pFLAGtoxRCCS_ompU |
| This study |
| pFLAGtoxRCCS_toxT |
| |
| pCVD442FLAGtoxR | pCVD442 carrying FLAG | |
| pCVD442FLAGtoxRCC | pCVD442 carrying FLAG | |
| pCVD442FLAGtoxRS | pCVD442 carrying FLAG |
Oligonucleotide primers.
| Oligonucleotides | Sequence (5′ - 3′) |
| SacI_dsbA_1 |
|
| EcoRI_dsbA_2 |
|
| EcoRI_dsbA_3 |
|
| XbaI_dsbA_4 |
|
| SacI_dsbB_1 |
|
| EcoRI_dsbB_2 |
|
| EcoRI_dsbB_3 |
|
| XbaI_dsabB_4 |
|
| EcoRI_dsbC_1 |
|
| XbaI_dsbC_2 |
|
| SacI_toxRS_1 |
|
| BamHI_toxRS_2 |
|
| BamHI_toxR_3 |
|
| BamHI_toxRS_3 |
|
| XbaI_toxRS_4 |
|
| XbaI_lacZ_1 |
|
| XhoI_lacZ_2 |
|
| XhoI_lacZ_3 |
|
| SacI_lacZ_4 |
|
| SacI_dsbA_5′ |
|
| XbaI_dsbA_3′ |
|
| SacI_dsbB_5′ |
|
| XbaI_dsbB_3′ |
|
| HindIII_toxR_5′_FLAG |
|
| KpnI_toxR_3′_FLAG |
|
| KpnI_toxRC293S_3′_FLAG |
|
| toxRC236S_5′ |
|
| toxRC236S_3′ |
|
| KpnI_toxRS_5′_FLAG |
|
| BglII_toxRS_3′_FLAG |
|
| BamHI_ompU_5′ |
|
| BamHI_ompU_3′ |
|
| BamHI_toxT_5′ |
|
| BamHI_toxT_3′ |
|
| c_FLAGtoxR_3′_F1 |
|
| c_FLAGtoxR_5′_F2 |
|
| c_FLAGtoxR_3′_F2 |
|
| c_FLAGtoxRC293S_3′_F2 |
|
| c_FLAGtoxRtoxS_3′_F2 |
|
| c_FLAGtoxR_5′_F3 |
|
| c_FLAGtoxRC293S_5′_F3 |
|
| c_FLAGtoxRtoxS_5′_F3 |
|
| rpoB_fw |
|
| rpoB_rv |
|
| VC0633_fw |
|
| VC0633_rv |
|
| VC0984_fw |
|
| VC0984_rv |
|
| VC1854_fw |
|
| VC1854_rv |
|
| VCr001_fw |
|
| VCr001_rv |
|
Restriction sites are underlined.
Bold letters indicate codons changed to obtain desired amino acid mutations.
Oligonucleotides for rpoB are according to reference [73].
Figure 1dsb knockout mutations and porin production in V. cholerae P27459-S.
Panel A, B shown are OMP profiles on SDS-PAGE of WT, ΔtoxR, ΔdsbA, ΔdsbA (pBAD18), ΔdsbA (pdsbA), ΔdsbB, ΔdsbB (pBAD18), ΔdsbB (pdsbB) and dsbC::pGP704 (only panel B) strains derived from cells grown for 24 h and 72 h in M9 glycerol, respectively. Arrows mark OmpU and OmpT. As a negative control, ΔtoxR mutant strain showed no production of OmpU and derepressed OmpT protein level. The arrowhead on the right indicates a ToxR independent protein band used as loading control. Panel C, shown are qRT-PCR analyses of WT and ΔdsbA strain for ompU, ompT and toxR transcripts. Fold change ratios were calculated by comparing cDNA levels of genes of interest and the reference gene rpoB, derived from cells grown in M9 glycerol for 72 h. Data are presented as median fold change and the error bars indicate the interquartile range of each data set. Experiments were performed with at least six independent samples, utilizing the Mann-Whitney U test, P<0.05.
Figure 2toxRS coexpression in V. cholerae P27459-S ΔtoxRS mutant strain acts negatively on ToxR disulfide bond homodimer and oligomers.
Shown is an immunoblot analysis derived from SDS-PAGE analysis performed under non-reducing conditions, utilizing anti-FLAG antibodies and V. cholerae cells harboring various pFLAGtoxRS expressing plasmids, grown in LB medium to mid-log phase and induced with IPTG. Molecular markers are indicated on the left side. Two different IPTG concentrations are indicated, showing different ToxR levels. Immunoblot analysis was performed at least three times, and results were reproducible.
Figure 3dsbA knockout mutant and ToxR forms.
Immunoblot analyses are shown using anti-FLAG antibodies to detect FLAG-tagged ToxR produced in V. cholerae P27459-S ΔtoxRS and ΔtoxRS ΔdsbA mutant strain (as indicated in the figure). Bacterial cultures harboring pFLAGtoxRS were grown to mid-log phase in M9 glycerol and in LB broth and induced with IPTG. ToxR mobility in the different samples was monitored and differences for intrachain disulfide bond formation were detected. Immunoblot analysis was performed at least three times, and results were reproducible.
Figure 4Chromosomal expression of FLAGtoxR and FLAGtoxR and porin regulation.
Panel A, B and C, shown are OMP profiles derived from OM preparations, representing WT, ΔtoxR::FLAGtoxR, ΔtoxR and ΔtoxR::FLAGtoxR strains, grown to stationary phase in M9 glycerol (A), M9 glycerol NRES (B) and AKI (C) during the anaerobic growth phase, respectively. Arrows mark OmpU and OmpT. Arrowheads on the right indicate a ToxR independent protein band used as loading control.
Figure 5Transcriptional analysis of toxR and porin genes ompU and ompT in V. cholerae P27459-S.
Using qRT-PCR analysis, transcriptional activity of chromosomal encoding FLAG-tagged toxR and toxR strains was monitored for the porin genes ompU and ompT and also for toxR and toxR. mRNA levels of rpoB (used as a reference gene) were determined and correlated with the mRNA level of the genes of interest. Data are presented as median fold change and the error bars indicate the interquartile range of each data set. Experiments were performed with six independent samples, the Mann-Whitney U test was used, P<0.05.
Figure 6toxRS coexpression in E. coli XL1-Blue strain.
Shown are immunoblot analyses utilizing anti-FLAG antibodies to monitor FLAG-tagged ToxR production of pFLAGtoxRS constructs, performed under reducing (panel A) and non-reducing conditions (panel B). pFLAGtoxRS was expressed in E. coli cells grown in LB broth to mid-log phase (OD600 of 0.5) and subsequently induced with IPTG for 1 h. From left to right, shown are pFLAGtoxRS(Δ264), pFLAGtoxRS and pFLAGtoxRCCS, either containing no ToxR operator sequence or ompU or toxT operator sequences, respectively. A 55 kDa ToxR cross-reacting protein band, associated with pFLAGtoxRS and pFLAGtoxRCCS, is indicated by an arrow. To note, cysteinyl dependent homodimer and oligomer ToxR bands occurred diminished as observed for pFLAGtoxRS in comparison to pFLAGtoxRS(Δ264). Molecular size markers are indicated on the left. Immunoblot analysis was performed at least three times, and results were reproducible.
Virulence factor production of chromosomal encoded FLAG-tagged toxR and FLAG-tagged toxR mutants.
| Strain | CTX-kmΦ transduction rate [cfu×ml−1] | CT production [ng×ml−1] |
| El Tor P27459-S | ||
| Δ | 4.76×10−5 (1.5×10−5–1.03×10−4) | 7502 (4341–15734) |
| Δ | <LOD | 92 |
| Δ | 3.83×10−5 (2.48×10−5–6.84×10−5) | 5012 (2433–11578) |
| Δ | 2.96×10−6 (8.15×10−7–2.76×10−5) | 1543 |
| WT | 4.54×10−5 (2.85×10−5–6.09×10−5) | 4654 (2605–7806) |
| Classical O395 | ||
| Δ | 1.55×10−4 (2.78×10−5–1.98×10−4) | 17178.5 (10372–40044) |
| Δ | <LOD | 10 |
| Δ | 5.71×10−5 (1.63×10−5–3.13×10−4) | 12725.5 (3961–48650) |
| Δ | 2.22×10−5 (8.87×10−6–1.01×10−4) | 5490 (3042–15710) |
| WT | 1.34×10−4 (2.02×10−5–5.60×10−4) | 11354.5 (9978–25108) |
median and interquartile range of at least 7 independent experiments.
median and interquartile range of 9 independent experiments.
significant by Kruskal-Wallis test followed by Dunn's test of selected pairs of columns with P<0.05.
In vitro and in vivo competition of chromosomal encoded FLAG-tagged toxR versus FLAG-tagged toxR mutant in El Tor P27459-S.
| in vitro | in vivo |
| 1.04 (0.76–1.22) | 2.94 (1.23–3.52) |
median and interquartile range of 12 independent experiments.
median and interquartile range of 5 independent experiments.