| Literature DB >> 26636765 |
H A Darshanee Ruwandeepika1,2, Indrani Karunasagar2, Peter Bossier3, Tom Defoirdt3.
Abstract
Type III secretion systems enable pathogens to inject their virulence factors directly into the cytoplasm of the host cells. The type III secretion system of Vibrio harveyi, a major pathogen of aquatic organisms and a model species in quorum sensing studies, is repressed by the quorum sensing master regulator LuxR. In this study, we found that during infection of gnotobiotic brine shrimp larvae, the expression levels of three type III secretion operons in V. harveyi increased within the first 12h after challenge and decreased again thereafter. The in vivo expression levels were highest in a mutant with a quorum sensing system that is locked in low cell density configuration (minimal LuxR levels) and lowest in a mutant with a quorum sensing system that is locked in the high cell density configuration (maximal LuxR levels), which is consistent with repression of type III secretion by LuxR. Remarkably, in vivo expression levels of the type III secretion system genes were much (> 1000 fold) higher than the in vitro expression levels, indicating that (currently unknown) host factors significantly induce the type III secretion system. Given the fact that type III secretion is energy-consuming, repression by the quorum sensing master regulators might be a mechanism to save energy under conditions where it does not provide an advantage to the cells.Entities:
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Year: 2015 PMID: 26636765 PMCID: PMC4670211 DOI: 10.1371/journal.pone.0143935
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Quorum sensing in Vibrio harveyi.
The LuxM, LuxS and CqsA enzymes synthesise the signal molecules HAI-1, AI-2 and CAI-1, respectively. These signal molecules are detected at the cell surface by the LuxN, LuxQ and CqsS two-component receptor proteins, respectively. Detection of AI-2 by LuxQ requires the periplasmic protein LuxP. (A) In the absence of signal molecules, the receptors autophosphorylate and transfer phosphate to LuxO via LuxU. Phosphorylation activates LuxO, which together with σ54 activates the production of five small regulatory RNAs (sRNAs). These sRNAs, together with the chaperone Hfq, destabilise the mRNA encoding the transcriptional regulator LuxR. Therefore, in the absence of autoinducers, the LuxR protein is not produced. LuxR is a repressor of ExsA. Hence, in the absence of signal molecules, ExsA is produced and in turn activates expression of the TTSS operons. (B) In the presence of high concentrations of the signal molecules, the receptor proteins switch from kinases to phosphatases, which results in dephosphorylation of LuxO. Dephosphorylated LuxO is inactive and therefore, the sRNAs are not formed and the transcriptional regulator LuxR is produced. LuxR represses ExsA, and the TTSS operons are not expressed. “P” denotes phosphotransfer.
Difference in expression of the type III secretion system genes vopD, vcrD and vscP, the quorum sensing master regulator gene luxR and the Vibrio harveyi metalloprotease gene vhp between a luxO mutant with the quorum sensing system locked in high cell density configuration (QSc) and a luxO mutant with the quorum sensing system locked in low cell density configuration (QS-), in vitro (in Marine Broth) and in vivo (in association with gnotobiotic brine shrimp larvae).
The RNA polymerase A subunit (rpoA) mRNA was used to normalise between strains.
| Gene | Difference in expression between mutants QSc and QS- (fold) | |
|---|---|---|
|
|
| |
| Type III secretion genes | ||
| | -20.5 ( | -8.3 ( |
| | -15.7 ( | -7.5 ( |
| | -9.4 ( | -7.6 ( |
| Other quorum sensing-regulated genes | ||
| | 3.3 ( | 6.4 ( |
| | 6.8 ( | 6.8 ( |
1 negative values indicate higher expression in the QS- strain than in the QSc strain
2 Data from [17]
Fig 2In vivo expression of the type III secretion system genes vopD, vcrD and vscP.
In vivo expression of the type III secretion system genes vopD (A), vcrD (B) and vscP (C) in wild type V. harveyi (WT) and mutants with the quorum sensing system locked in high cell density configuration (QSc) and the quorum sensing system locked in low cell density configuration (QS-), respectively, during infection of brine shrimp larvae. The expression in wild type V. harveyi at the 0.5h time point was set at 1 and the expression in all strains at all time points was normalised accordingly using the 2-ΔΔCT method. The error bars represent the standard deviation of three independent shrimp cultures (each time based on bacterial mRNAs extracted from 500 larvae). The RNA polymerase A subunit (rpoA) mRNA was used to normalise between strains.
Relative expression of the type III secretion system genes vopD, vcrD and vscP, the quorum sensing master regulator gene luxR and the Vibrio harveyi metalloprotease gene vhp in brine shrimp-associated wild type Vibrio harveyi and mutants with the quorum sensing system locked in high cell density configuration (QSc) and the quorum sensing system locked in low cell density configuration (QS-), respectively, after 12h challenge.
The expression in wild type Vibrio harveyi in vitro (in Marine Broth) was set at 1 and the in vivo expression levels for all strains were normalised accordingly using the 2-ΔΔCT method. The RNA polymerase A subunit (rpoA) mRNA was used as an endogenous control.
| Gene |
| ||
|---|---|---|---|
| Wild type | QSc | QS- | |
| Type III secretion system genes | |||
| | 1 938±434 | 812±154 | 6 705±2 764 |
| | 9 905±2 145 | 5 329±1 092 | 39 577±4 212 |
| | 6 427±4 089 | 3 851±806 | 28 292±4 999 |
| Other quorum sensing-regulated genes | |||
| | 4.0±1.0 | 20.4±9.8 | 3.2±0.4 |
| | 0.3±0.1 | 0.6±0.4 | 0.1±0.0 |
1 Data from [17]
Vibrio harveyi strains used in this study.
| Strain | Relevant characteristics | References |
|---|---|---|
| BB120 | ATCC BA-1116; wild type strain from which strains JAF483 and JAF548 were derived | [ |
| JAF483 |
| [ |
| JAF548 |
| [ |
Primers used in this study.
| Gene | Primer sequence | GenBank accession n° | Product size (bp) |
|---|---|---|---|
|
| F: TGA GCA ACA GGT TCT GCA AC | AY524044 | 198 |
| R: GCG ACT TCT GCC TTG ATT TC | |||
|
| F: TGA CAG TAC CGC TGC TCA TC | AY524044 | 241 |
| R: CCT TCG GTC ACC AAC AGT TT | |||
|
| F: GAG ACC CTG CAG GTA TTG GA | AY524044 | 165 |
| R: CGG CTG TGA TTT ATC CGT TT |