| Literature DB >> 30208852 |
Miriam Khider1, Nils Peder Willassen1, Hilde Hansen2.
Abstract
BACKGROUND: Quorum sensing (QS) is a cell-to cell communication system that bacteria use to synchronize activities as a group. LitR, the master regulator of QS in Aliivibrio salmonicida, was recently shown to regulate activities such as motility, rugosity and biofilm formation in a temperature dependent manner. LitR was also found to be a positive regulator of rpoQ. RpoQ is an alternative sigma factor belonging to the sigma -70 family. Alternative sigma factors direct gene transcription in response to environmental signals. In this work we have studied the role of RpoQ in biofilm formation, colony morphology and motility of A. salmonicida LFI1238.Entities:
Keywords: Aliivibrio salmonicida; Biofilm; Motility; Overexpression; Quorum sensing; RpoQ; Sigma factors; Temperature
Mesh:
Substances:
Year: 2018 PMID: 30208852 PMCID: PMC6134601 DOI: 10.1186/s12866-018-1258-9
Source DB: PubMed Journal: BMC Microbiol ISSN: 1471-2180 Impact factor: 3.605
Bacterial strains and plasmids used in this study
| Bacterial strains or plasmids | Description | Source |
|---|---|---|
|
| ||
| LFI1238 | Wild-type, isolated from Atlantic cod | [ |
| Δ | LFI1238 containing an in-frame deletion in | [ |
| Δ | LFI1238 containing an in-frame deletion in | This study |
| Δ | Δ | This study |
| Δ | Δ | This study |
| LFI1238 | LFI1238 carrying pVSV102, Knr | This study |
| Δ | Δ | This study |
| Δ | Δ | This study |
| LFI1238 | LFI1238 carrying pTM214, Cmr | This study |
| LFI1238- | LFI1238 carrying pTM214- | This study |
| Δ | Δ | This study |
| Δ | Δ | This study |
|
| ||
| S17λpir | Donor strain for conjugation | [ |
| JM109 | Strain for subcloning pGEM-T constructs | [ |
| DH5α | Strain for cloning | Thermo Fisher |
| C118λpir | Helper strain containing pEVS104 | [ |
| DH5αλpir | Donor strain for conjugation harboring pVSV102 | [ |
| PIR2 | Donor strain for conjugation harboring pTM214 | [ |
| Plasmids | ||
| pDM4 | Suicide vector with an R6K origin, | [ |
| pNQ705 | Suicide vector with an R6K origin, Cmr | [ |
| pDM4-Δ | pDM4 containing a fragment of | This study |
| pNQ705- | pNQ705 containing a full length | This study |
| pNQ705 | pNQ705 containing an internal 304 bp fragment of | This study |
| pTM214 | pVSV105, | [ |
| pVSV102 | pES213, constitutive GFP, Knr | [ |
| pEVS104 | Helper plasmid, R6K origin, RP4, | [ |
| pTM214- | pVSV105, | This study |
| pGEM-T | TA cloning vector, white/blue screening, Ampr | Promega |
The primers used in this study
| Primers | Sequence (5–3’) | Source |
|---|---|---|
| RpoQ-A fwd | AATAACTCGAGCAAACGAATGACATGCAGACA | This study |
| RpoQ-B rev | ATCAATGCTGTTTCTTGGTTCTTC | This study |
| RpoQ-C fwd | AGAAACAGCATTGATCTAGGCCAAGATCTTCAA | This study |
| RpoQ-D rev | TATATACTAGTCGATCTCATTATCTTCGTAATACA | This study |
| RpoQ-G fwd | AGTTCAGGTGATCGTGTTA | This study |
| RpoQ-H rev | GATTTTGCGTATTGGTAACT | This study |
| RpoQ-E fwd | CTCGAGAACAGCATTGATGCTTACTCA | This study |
| RpoQ-F rev | ACTAGTATCCACCATACCGCGTAA | This study |
| pTM214- | TCGAGCTCAGAGGAGAAATTAAGCATGTTGAATATAGAATGTTCA | This study |
| pTM214- | AGGTCGACCTAATTTAAAGCATTTCTAAA | This study |
| pNQ-fwd | TAACGGCAAAAGCACCGCCGGACATCA | Milton, D. |
| pNQ-rev | TGTACACCTTAACACTCGCCTATTGTT | Milton, D. |
Fig. 1Colony morphology of ΔrpoQ, ΔrpoQ, ΔlitR and LFI1238 at different temperatures. The colonies were allowed to form on SWT plates for 12 days at 4, 8, 12 and 14 °C. The colonies were viewed in a Zeiss Primo Vert microscope at 4× magnification. Scale bars represent 0.5 mm
Fig. 2Biofilm formation of GFP-tagged ΔrpoQ, ΔlitR and LFI1238 at different temperatures. The GFP tagged strains (LFI1238-pVSV102, ΔrpoQ-pVSV102 and ΔlitR-pVSV102) were allowed to form biofilms in SWT media at 8, 14 and 16 °C. The biofilms were viewed, after 72 h of incubation, in a Nikon Eclipse TS100 microscope at 10× magnification and photographed with Nikon DS-5Mc. Scale bars represent 20 μm
Fig. 3Motility of LFI1238, ΔrpoQ, ΔrpoQ and ΔlitR at different temperatures. a Soft agar plate showing motility zones of LFI1238, ΔrpoQ, ΔrpoQ and ΔlitR after 5 days incubation at 8 °C. b Motility zones (mm) of LFI1238, ΔrpoQ, ΔlitR, and ΔrpoQ measured after 5 days incubation at different temperatures (4–16 °C). The error bars present the standard deviation of biological triplicate
Fig. 4The effect of the RpoQ on the biofilm formation of LFI1238 and ΔlitR. The biofilms of LFI1238 and ΔlitR harboring the pTM214 (control vector) and LFI1238 and ΔlitR harboring the P-rpoQ (rpoQ overexpression vector) were allowed to form in SWT medium supplemented with 1 mM IPTG. The biofilms were incubated for 72 h at different temperatures (4 to 16 °C). The biofilms were viewed in Nikon Eclipse TS100 microscope at 10× magnification and photographed with Nikon DS-5Mc. Scale bars represent 20 μm
Fig. 5Motility assay on soft agar supplemented with 1 mM IPTG. a Soft agar plate showing motility zones of LFI1238 and ΔlitR harboring the pTM214 (control vector) and LFI1238 and ΔlitR harboring the P-rpoQ (rpoQ overexpression vector) at 8 °C after 5 days. b Motility zones (mm) of LFI1238-pTM214, ΔlitR-pTM214, LFI1238-P-rpoQ and ΔlitR-P-rpoQ after 5 days of incubation at temperatures ranging from 4 to 16 °C. The error bars present the standard deviation of biological triplicate
Fig. 6Proposed model for regulation of QS related phenotypes in A. salmonicida. At high cell densities, LitR is produced in response to AHLs and acts as a positive regulator of rpoQ expression. LitR, probably via RpoQ, downregulates motility and expression of exopolysaccharides. The ΔlitR mutant shows a mature biofilm with mushroom shaped structures, whereas the ΔrpoQ biofilm is more flat and regular. Thus, in addition to repression of exopolysaccharides via RpoQ, LitR represses other biofilm matrix components independent of RpoQ that are required for building mature mushroom structures (e.g. lipoproteins, protein filaments). Therefore, at high cell densities both RpoQ dependent and independent processes are needed for down regulation of the mature biofilm. The ΔrpoQ mutant shows decreased motility suggesting that RpoQ may also act as a positive activator of motility. Arrows and lines with bar ends indicate pathways of positive and negative regulation, respectively, and may consist of several steps. The thicker, empty arrows indicate the resulting phenotypes