| Literature DB >> 23724079 |
Verena Untiet1, Ramakrishnan Karunakaran, Maria Krämer, Philip Poole, Ursula Priefer, Jürgen Prell.
Abstract
PTS(Ntr) is a regulatory phosphotransferase system in many bacteria. Mutation of the PTS(Ntr) enzymes causes pleiotropic growth phenotypes, dry colony morphology and a posttranslational inactivation of ABC transporters in Rhizobium leguminosarum 3841. The PTS(Ntr) proteins EI(Ntr) and 2 copies of EIIA(Ntr) have been described previously. Here we identify the intermediate phosphocarrier protein NPr and show its phosphorylation by EI(Ntr) in vitro. Furthermore we demonstrate that phosphorylation of EI(Ntr) and NPr is required for ABC transport activation and that the N-terminal GAF domain of EI(Ntr) is not required for autophosphorylation. Previous studies have shown that non-phosphorylated EIIA(Ntr) is able to modulate the transcriptional activation of the high affinity potassium transporter KdpABC. In R. leguminosarum 3841 kdpABC expression strictly depends on EIIA(Ntr). Here we demonstrate that under strong potassium limitation ABC transport is inactivated, presumably by non-phosphorylated EIIA(Ntr). This is to our knowledge the first report where PTS(Ntr) dictates an essential cellular function. This is achieved by the inverse regulation of two important ATP dependent transporter classes.Entities:
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Year: 2013 PMID: 23724079 PMCID: PMC3665714 DOI: 10.1371/journal.pone.0064682
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1AIB membrane transport by Rlv3841, PtsP107 (ptsP::Tn5) and various phosphocarrier protein mutants.
Data are averages (± SEM) from 6 independent cultures and rates are nmol min−1mg protein−1.
Figure 2In vitro phosphorylation of purified 6His-MBP-PtsP protein.
(A) Example of a time course of 6His-MBP-PtsP phosphorylation. Each lane of the SDS-page contains ∼2 µg of protein and was incubated with 125 µM [33P]PEP. The upper part shows the level of phosphorylation and the lower part the same gel after coomassie blue stain. (B) Phosphorylation of 6His-MPB-PtsP under various conditions. The phosphorylation is stable at 70°C for 10 min and boiled protein is inactive. The protein is not phosphorylated with 10 mM [33P]ATP and also not in the presence of crude extract of RU4392 (Δask). (C) In vitro phosphorylation of purified 6His-MBP-PtsP and 6His-NPr protein. Lane 1–3 show phosphorylation of the single proteins and both proteins together with 125 µM [33P]PEP. Lane 5–8 show a timecourse of the transphosphorylation. The upper part shows the level of phosphorylation and the lower part the same gel after coomassie blue stain.
Figure 3AIB transport by Rlv3841 and PtsP107 (ptsP::Tn5) and PtsP107 complemented with the empty vector pRK415 (EV) or PtsP, expressed from the constitutive lac promoter in multi-copy (+PtsP).
Additionally, two variants, +PtsPH367A and +PtsPΔGAF, were used for complementation. Data are averages (± SEM) from ≥3 independent cultures and rates are nmol min−1 mg protein−1.
Figure 4AIB transport by Rlv3841 and AA031 (Δnpr) and AA031 complemented with the empty vector pRK415 (EV), NPr, expressed from the constitutive lac promoter in multi-copy (+NPr) or a non-phosphorylatable variant (+NPrH17A).
Data are averages (± SEM) from ≥3 independent cultures and rates are nmol min−1 mg protein−1.
Figure 5Effects of K+ limitation on ABC transport and growth of Rlv3841.
(A) AIB transport by Rlv3841 at 1 µM and 1 mM KCl and PtsP107 as a control. Data are averages (± SEM) from 3 independent cultures and rates are nmol min−1 mg protein−1. (B) Generation times of Rlv3841 grown at 1 µM and 1 mM KCl with 10 mM NH4Cl or 10 mM glutamate as the sole nitrogen source. Data are averages (± SEM) from 3 independent experiments with each 2 cultures. Data indicated with different letters are significantly different in a Student’s t-test (p<0.01).
Strains, plasmids and primers.
| Strains | Description | Reference, Source, Sequence |
| Rlv3841 |
|
|
| PtsP107 | Rlv3841 Tn5:: |
|
| AA015 | Rlv3841 | This study |
| AA006 | Rlv3841 RL2904::ΩSpec | This study |
| AA016 | Rlv3841 | This study |
| AA031 | Rlv3841 | This study |
| RU4392 | Rlv3841 |
|
| Plasmids | ||
| pJET1.2 | Cloning vector | Thermo Fermentas |
| pJQ200SK | pACYC derivative; P15A origin of replication; Gmr |
|
| pRK415 | IncP broad host range cloning vector; Tetr |
|
| pHMGWA | Expression vector; Ampr |
|
| pETduet-1 | Expression vector; Ampr | Novagen Merck Millipore |
| pAA006 | pJQ200SK carrying RL2904::ΩSpec | This study |
| pAA019 | pJQ200SK carrying | This study |
| pAA037 | pJQ200SK carrying | This study |
| pLMB222 | pHMGWA 6His-MBP-PtsP | This study |
| pAA033 | pETduet 6His-NPr | This study |
| pLMB151 | pRK415 × |
|
| pAA001 | pRK415 × | This study |
| pAA003 | pRK415 × | This study |
| pAA038 | pRK415 × | This study |
| pAA039 | pRK415 × | This study |
| Primer | ||
| P1nprforBam |
| |
| P2nprrevXba |
| |
| P3nprforinvSac |
| |
| P4nprrevinvSac |
| |
| P1RL2903forXho |
| |
| P2RL2903revXba |
| |
| P3RL2903forinvEco |
| |
| P4RL2903revinvEco |
| |
| ptsPforHind |
| |
| ptsPrevXba |
| |
| ptsP-GAFforSpe |
| |
| pstP-GAFrevSpe |
| |
| ptsPH367Afor |
| |
| ptsPH367Arev |
| |
| nprcompforHind |
| |
| nprcomprevXba |
| |
| nprH17Afor |
| |
| nprH17Arev |
| |
| ptsPexpfor |
| |
| ptsPexprev |
| |
| nprexpforBam |
| |
| nprexprevHind |
|
Restriction sites in primer sequences are underlined.