| Literature DB >> 30483485 |
V Kalidasan1, Narcisse Joseph1, Suresh Kumar1, Rukman Awang Hamat1, Vasantha Kumari Neela1.
Abstract
Stenotrophomonas maltophilia is a multi-drug-resistant global opportunistic nosocomial pathogen, which possesses a huge number of virulence factors and antibiotics resistance characteristics. Iron has a crucial contribution toward growth and development, cell growth and proliferation, and pathogenicity. The bacterium found to acquire iron for its cellular process through the expression of two iron acquisition systems. Two distinct pathways for iron acquisition are encoded by the S. maltophilia genome-a siderophore-and heme-mediated iron uptake system. The entAFDBEC operon directs the production of the enterobactin siderophore of catecholate in nature, while heme uptake relies on hgbBC and potentially hmuRSTUV operon. Fur and sigma factors are regulators of S. maltophilia under iron-limited condition. Iron potentially act as a signal which plays an important role in biofilm formation, extracellular polymeric substances (EPS), extracellular enzymes production, oxidative stress response, diffusible signal factor (DSF) and siderophore production in S. maltophilia. This review summarizes the current knowledge of iron acquisition in S. maltophilia and the critical role of iron in relation to its pathogenicity.Entities:
Keywords: Fur; S. maltophilia; iron-depleted; microbial iron acquisition; siderophore; virulence factors
Mesh:
Substances:
Year: 2018 PMID: 30483485 PMCID: PMC6240677 DOI: 10.3389/fcimb.2018.00401
Source DB: PubMed Journal: Front Cell Infect Microbiol ISSN: 2235-2988 Impact factor: 5.293
Figure 1Overview of iron acquisition systems in S. maltophilia. After biosynthesis, siderophore enterobactin is effluxes from cytoplasm through major facilitator superfamily (MFS) protein and further into the extracellular space by outer membrane factor TolC. Enterobactin scavenges free Fe3+ available at the extracellular space and is subsequently recognized and taken up through FepA, which is energized by the TonB-ExbBD machinery. FepB delivers ferric enterobactin from the periplasm by FepCDG transporter into the cytoplasm. On the other hand, ferric citrate is recognized by FecA and further delivered into periplasmic by FecB and transported across the cytoplasm by FecCDE transporter. Heme acquisition is predicted to be taken through receptor at the outer membrane, followed by HmuTUV system. Uptake of iron bound to transferrin and lactoferrin have not been fully identified (marked ?), while Feo system involved in uptake of ferrous iron through action of FeoABC.
Comparison of regulon of Fur in S. maltophilia strain K279a with P. aeruginosa strain E15_London_28_01_14.
| fpvA | SMLT_RS05990 | TonB-dependent siderophore receptor | Ferripyoverdine receptor precursor | 96 |
| fecI4 | SMLT_RS13960 | RNA polymerase sigma factor | RNA polymerase sigma factor | 40 |
| fecR4 | SMLT_RS13965 | Iron dicitrate transporter FecR | FecR family protein | 32 |
| fecA4 | SMLT_RS13970 | TonB-dependent receptor | TonB-dependent receptor | 48 |
| SMLT_RS13975 | Iron regulated lipoprotein | Hypothetical protein | 40 | |
| SMLT_RS13980 | Energy transducer TonB | Hypothetical protein | 94 | |
| fecI | SMLT_RS13545 | RNA polymerase sigma factor FecI | Sigma-70 family RNA polymerase sigma factor | 53 |
| fecR | SMLT_RS13550 | FecR family iron uptake regulator protein | FecR family protein | 36 |
| fecA | SMLT_RS13555 | Heme-binding protein | Hemin receptor precursor | 42 |
| fpr | SMLT_RS15360 | Ferredoxin–NADP reductase | Ferredoxin–NADP reductase | 98 |
| feoA | SMLT_RS10625 | Ferrous iron transport protein A | FeoA domain protein | 98 |
| feoB | SMLT_RS10630 | Ferrous iron transporter B | Ferrous iron transport protein B | 98 |
| SMLT_RS10635 | Hypothetical protein | Hypothetical protein | 95 | |
| fhuE | SMLT_RS19060 | TonB-dependent siderophore receptor | Outer-membrane receptor for Fe(III)-coprogen, Fe(III)-ferrioxamine B and Fe(III)-rhodotrulic acid | 87 |
| SMLT_RS05550 | Hypothetical protein | Hypothetical protein | 92 | |
| bfrA | SMLT_RS05545 | TonB-dependent receptor | Colicin I receptor precursor | 95 |
| fecI2 | SMLT_RS12710 | RNA polymerase sigma factor | RNA polymerase sigma factor | 53 |
| fecR2 | SMLT_RS12715 | Transcriptional regulator | FecR family protein | 44 |
| fecA2 | SMLT_RS12720 | TonB-dependent receptor | TonB-dependent receptor | 32 |
| hemP | SMLT_RS03780 | Hemin uptake protein | Hemin uptake protein | 98 |
| hemR | SMLT_RS03785 | TonB-dependent hemoglobin/ transferrin/lactoferrin family receptor | Hemin receptor precursor | 78 |
| SMLT_RS03790 | Hypothetical protein | Hypothetical protein | 93 | |
| bfd | SMLT_RS20460 | Bacterioferritin | Bacterioferritin-associated ferredoxin | 100 |
| bfr | SMLT_RS20455 | Bacterioferritin | Bacterioferritin | 99 |
| pepSY | SMLT_RS05540 | Membrane protein | Putative periplasmic protein | 97 |
| SMLT_RS05535 | Hypothetical protein | Putative periplasmic protein | 98 | |
| SMLT_RS05570 | Hypothetical protein | No significant similarity found | ||
| fhuA | SMLT_RS05565 | TonB-dependent receptor | Virulence-associated outer membrane protein Vir-90 | 94 |
| SMLT_RS05560 | sel1 repeat family protein | Polar organelle development protein | 97 | |
| piuC | SMLT_RS05555 | PKHD-type hydroxylase | PKHD-type hydroxylase | 98 |
| fecI3 | SMLT_RS18585 | RNA polymerase sigma factor | Putative RNA polymerase sigma factor FecI | 98 |
| fecR3 | SMLT_RS18580 | Iron dicitrate transport regulator FecR | fec operon regulator FecR | 88 |
| fecA3 | SMLT_RS18575 | Heme-binding protein | Hemin receptor precursor | 94 |
| SMLT_RS13580 | TonB-dependent siderophore receptor | Iron(III) dicitrate transport protein FecA | 96 | |
| pepSY | SMLT_RS07530 | PepSY domain-containing protein | Putative iron-regulated membrane protein | 95 |
| SMLT_RS07525 | DUF3325 domain-containing protein | Hypothetical protein | 87 | |
| fhuA | SMLT_RS14400 | TonB-dependent siderophore receptor | Virulence-associated outer membrane protein Vir-90 | 91 |
| pfeA | SMLT_RS06850 | TonB-dependent siderophore receptor | Ferric enterobactin receptor precursor | 97 |
Regulon and locus tag modified from RegPrecise 4.0 (http://regprecise.lbl.gov)
All the homologs and identity are corresponding to P. aeruginosa strain E15_London_28_01_14, except those marked in red were obtained from other P. aeruginosa strains.