| Literature DB >> 21747794 |
Olga Shevchuk1, Jens Jäger, Michael Steinert.
Abstract
The bacterial envelope plays a crucial role in the pathogenesis of infectious diseases. In this review, we summarize the current knowledge of the structure and molecular composition of the Legionella pneumophila cell envelope. We describe lipopolysaccharides biosynthesis and the biological activities of membrane and periplasmic proteins and discuss their decisive functions during the pathogen-host interaction. In addition to adherence, invasion, and intracellular survival of L. pneumophila, special emphasis is laid on iron acquisition, detoxification, key elicitors of the immune response and the diverse functions of outer membrane vesicles. The critical analysis of the literature reveals that the dynamics and phenotypic plasticity of the Legionella cell surface during the different metabolic stages require more attention in the future.Entities:
Keywords: LPS; Legionella pneumophila; bacterial envelope; membrane proteins; outer membrane vesicles; phospholipids
Year: 2011 PMID: 21747794 PMCID: PMC3129009 DOI: 10.3389/fmicb.2011.00074
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Figure 1Overview of the . CP, cytoplasm; IM, inner membrane; PP, periplasm; OM, outer membrane; OMVs, outer membrane vesicles; LPS, lipopolysaccharides; PAL, peptidoglycan-associated lipoprotein; FeoB, iron transporter; PlaB, phospholipase A/lysophospholipase A; MOMP, major outer membrane protein; Mip, macrophage infectivity potentiator.
Inner membrane proteins of .
| Protein | Molecular function | Role in infection/required for | Reference |
|---|---|---|---|
| FeoB | GTP-dependent Fe(II) transporter | Macrophage killing, full virulence in mouse | Petermann et al. ( |
| IraA/IraB | Small-molecule methyl transferase/ peptide transporter | Iron uptake, infection of human macrophages, and guinea pigs | Viswanathan et al. ( |
| Multi-copper oxidase | Potential oxidation of ferrous iron | Extracellular replication | Huston et al. ( |
| LadC | Putative adenylate cyclase | Adhesion to macrophages, intracellular replication, putative modification of protein functions via cAMP | Newton et al. ( |
| TatB | T2S, additional function(s) | Intracellular replication in human macrophages, growth under iron-limiting conditions, cytochrome c-dependent respiration, export of PLC activity to supernatant | Rossier and Cianciotto ( |
Periplasmic proteins of .
| Protein | Molecular function | Role in infection/required for | Reference |
|---|---|---|---|
| Copper–zinc–superoxide dismutase | Detoxification of superoxide radicals | Stationary growth survival | St John and Steinman ( |
| KatA | Degradation of H2O2 | Optimal infection of macrophages and amoeba (optimal function of the Dot/Icm apparatus) | Bandyopadhyay et al. ( |
| IcmX | Putative DNA polymerase (POLBc superfamily) | Establishment of the | Matthews and Roy ( |
Outer membrane proteins of .
| Protein | Molecular function | Role in infection/required for | Reference |
|---|---|---|---|
| PAL | Activation of murine macrophages via TLR2, induction of the secretion of proinflammatory cytokines such as IL-6 and TNF-α | Kim et al. ( | |
| DotD, DotC, IcmN | Intracellular survival | Nakano et al. ( | |
| PlaB | Phospholipase A/lysophospholipase A | Contact-dependent hemolytic activity and plays an important role in guinea pig infection | Schunder et al. ( |
| MOMP | Porin | attachment to host cells | Bellinger-Kawahara and Horwitz ( |
| Hsp60 | Attachment to and invasion of a HeLa cell | Garduño et al. ( | |
| Mip | Peptidyl–prolyl | Efficient replication within host cells and transmigration across an | Wagner et al. ( |
| Lcl | Collagen-like protein | Adherence to and invasion of host cells | Vandersmissen et al. ( |
Figure 2Chemical structure of . Structure indicates its various regions: O-specific chain, core region consisting of the outer core and inner core and lipid A. Leg, derivatives of legionaminic acid; 4e-Leg, derivatives of 4-epilegionaminic acid; Rha, rhamnose; Man, mannose; QuiNAc, acetylquinovosamine; GlcNAc, acetylglucosamine; Kdo, 3-deoxy-d-manno-oct-2-ulosonic acid; P, phosphate; OAc, O-acetyl.
Paralogs of LPS biosynthesis and translocation proteins in .
| Enzyme | Molecular function | |||||
|---|---|---|---|---|---|---|
| Corby | Philadelphia-1 | Lens | Paris | 2300/99 Alcoy | ||
| LpxA | UDP– | LPC_2835 | Lpg0511 | Lpl0549 | Lpp0573 | Lpa_00769 |
| LPC_3254 | Lpg2943 | Lpl2874 | Lpp3016 | Lpa_04308 | ||
| LpxC | UDP–3- | LPC_0533 | Lpg2608 | Lpl2531 | Lpp2661 | Lpa_03814 |
| LpxD | UDP–3- | LPC_0119 | Lpg0100 | Lpl0100 | Lpp0114 | Lpa_00149 |
| LPC_2837 | Lpg0508 | Lpl0547 | Lpp0571 | Lpa_00766 | ||
| LPC_3255 | Lpg2944 | Lpl2873 | Lpp3015 | Lpa_04309 | ||
| LpxH | UDP–2,3-diacylglucosamine hydrolase | LPC_0973 | Lpg1552 | Lpl1474 | Lpp1509 | Lpa_02254 |
| LpxB | Lipid A disaccharide synthase | LPC_0787 | Lpg1371 | Lpl1322 | Lpp1325 | Lpa_02021 |
| LPC_3256 | Lpg2945 | Lpl2872 | Lpp3014 | Lpa_04311 | ||
| LpxK | Tetraacyldisaccharide 4′-kinase | LPC_1262 | Lpg1818 | Lpl1782 | Lpp1781 | Lpa_02629 |
| Tetraacyldisaccharide-1-P-4′-kinase | LPC_1374 | Lpg1920 | Lpl1884 | Lpp1895 | Lpa_02777 | |
| KdtA (WaaA) | 3-Deoxy-d-manno-oct-2-ulosonic acid transferase | LPC_1808 | Lpg2340 | Lpl2261 | Lpp2288 | Lpa_03350 |
| LpxL (WaaM) | Lipid A acyltransferase | LPC_2981 | Lpg0363 | Lpl0404 | Lpp0428 | Lpa_00577 |
| LPC_3251 | Lpg2940 | Lpl2870 | Lpp3012 | Lpa_04304 | ||
| LPC_3252 | Lpg2941 | Lpl2871 | Lpp3013 | Lpa_04305 | ||
| WaaQ | Heptosyl transferase | LPC_0441 | lpg2695 | Lpl2622 | Lpp2749 | Lpa_03933 |
| RmlA (RfbA) | Glucose-1-phosphate thymidylyltransferase | LPC_2532 | Lpg0760 | Lpl0797 | Lpp0826 | Lpa_01168 |
| RmlB (RfbB) | dTDP–glucose 4,6-dehydratase RmlB | LPC_2534 | Lpg0758 | Lpl0795 | Lpp0824 | Lpa_01166 |
| RmlC | dTDP–4-dehydrorhamnose 3,5-epimerase | LPC_2536 | Lpg0756 | Lpl0793 | Lpp0822 | Lpa_01164 |
| RmlD | dTDP–6-deoxy-l-mannose dehydrogenase | LPC_2535 | Lpg0757 | Lpl0793 | Lpp0823 | Lpa_01165 |
| Glycosyltransferase | LPC_2515 | Lpg0779 | Lpl0818 | Lpp0843 | Lpa_01190 | |
| Glycosyltransferase | LPC_2516 | Lpg0778 | Lpl0817 | Lpp0842 | Lpa_01189 | |
| KdsA (NeuB) | 3-Deoxy-d-manno-octulosonic acid (KDO) 8-phosphate synthase | LPC_0649 | Lpg1182 | Lpl1191 | Lpp1185 | Lpa_01838 |
| HAD superfamily transporter hydrolase | LPC_2456 | Lpg0839 | Lpl0870 | Lpp0901 | Lpa_01272 | |
| KdsB | 3-Deoxy-manno-octulosonate | LPC_1373 | Lpg1919 | Lpl1883 | Lpp1894 | Lpa_02777 |
| GmhA | Phosphoheptose isomerase | LPC_3308 | Lpg2993 | Lpl2921 | Lpp3064 | Lpa_04384 |
| HisB | d,d-heptose 1,7-bisphosphate phosphatase | LPC_1283 | Lpg1838 | Lpl1803 | Lpp1802 | Lpa_02656 |
| WecE | Aminotransferase, predicted pyridoxal phosphate-dependent enzyme | LPC_0840 | Lpg1424 | Lpl1375 | Lpp1379 | Lpa_02088 |
| Lag-1 | LPC_2517 | Lpg0777 | Lpl0816 | Lpp0841 | Lpa_01188 | |
| NeuC (NnaA) | LPC_2539 | Lpg0753 | Lpl0790 | Lpp0819 | Lpa_01161 | |
| NeuB | LPC_2540 | Lpg0752 | Lpl0789 | Lpp0818 | Lpa_01160 | |
| LPC_2524 | Lpg0768 | Lpg0809 | Lpp0833 | Lpa_01177 | ||
| NeuA | CMP– | LPC_2541 | Lpg0751 | Lpl0788 | Lpp0817 | Lpa_01159 |
| WecA | O-Antigen initiating glycosyl transferase | LPC_2530 | Lpg0762 | Lpl0799 | Lpp0828 | Lpa_01171 |
| MsbA | Lipid A export ATP-binding/permease protein MsbA | LPC_1263 | Lpg1819 | Lpl1783 | Lpp1782 | Lpa_02631 |
| Wzt | LPS O-antigen ABC transporter Wzt | LPC_2519 | Lpg0773 | Lpl0814 | Lpp0838 | Lpa_01186 |
| Wzm | LPS O-antigen ABC transporter Wzm | LPC_2520 | Lpg0772 | Lpl0813 | Lpp0837 | Lpa_01184 |
The protein paralogs share a high level of homology. In general they have 96–100% of identity and 97–100% of positivity.
.
*The lpxK–msbA cluster exists in many Gram-negative bacteria. MsbA is known as a specific transporter, which exports core–lipid A from the cytoplasmic to the periplasmic face of the inner membrane, while LpxK phosphorylates the 4′-position of lipid A.
**The genes wzm and wzt are specific for the Sg1 LPS gene cluster and can be used for rapid detection of L. pneumophila Sg1 in clinical and environmental isolates (Cazalet et al., .
Figure 3Electron micrographs of .