| Literature DB >> 21854629 |
Indra Sandal1, Thomas J Inzana, Antonio Molinaro, Christina De Castro, Jian Q Shao, Michael A Apicella, Andrew D Cox, Frank St Michael, Gretchen Berg.
Abstract
BACKGROUND: Histophilus somni, a gram-negative coccobacillus, is an obligate inhabitant of bovine and ovine mucosal surfaces, and an opportunistic pathogen responsible for respiratory disease and other systemic infections in cattle and sheep. Capsules are important virulence factors for many pathogenic bacteria, but a capsule has not been identified on H. somni. However, H. somni does form a biofilm in vitro and in vivo, and the biofilm matrix of most bacteria consists of a polysaccharide.Entities:
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Year: 2011 PMID: 21854629 PMCID: PMC3224263 DOI: 10.1186/1471-2180-11-186
Source DB: PubMed Journal: BMC Microbiol ISSN: 1471-2180 Impact factor: 3.605
Figure 1Electrophoretic profiles of semi-purified Cetavlon precipitates and biofilm. Bacteria were grown anaerobically on plates or to late stationary phase, Cetavlon added, and precipitates extracted, as described in Methods. Each extract was loaded onto 25% polyacrylamide gels, followed by electrophoresis and staining with Alcian blue and silver. Lanes: 1 and 2, 20 μg and 30 μg of EPS extracted under growth conditions favorable to biofilm formation; 3 and 4, 20 μg and 30 μg of EPS extracted from cells grown to late stationary phase in broth, respectively; 5, buffer alone; 6 and 7, 20 μg and 30 μg of EPS extracted from cells grown anaerobically on plates, respectively.
Figure 2Immuno-transmission electron microscopy. Affinity-purified IgG was prepared from antiserum to isolated EPS made in rabbits, and incubated with whole cells that were gently scraped off plates, followed by Protein-A gold particles. The dark particles binding to the extracellular matrix (arrows) are Protein A-gold particles binding to immunoglobulins. Note that none of the Protein A-gold particles bound to the cell membrane, but were bound to extracellular material shed from the cell. More of this extracellular material was present when cells were grown anaerobically (left) than when cells were grown in CO2 (right).
H.somni EPS production under various growth conditions in relation to cellular protein content
| Growth Conditions | Relative Amount of EPS |
|---|---|
| 37°C (stationary phase) | 50.7 |
| 42°C (log phase) | 25.5 |
| 37°C (anaerobic growth) | 69.2 |
| 37°C (supplementation with 2% NaCl) | 95.1 |
Figure 3The . The spectrum was recorded in D2O at 25°C, relative to the HOD signal at 4.78 ppm.
1H and 13C NMR data of the galactomannan fraction from Histophilus somni 2336
| Residue | 1 | 2 | 3 | 4 | 5 | 6 |
|---|---|---|---|---|---|---|
| 2-Man | 5.28 | 4.10 | 3.91 | 3.72 | 3.71 | 3.87, 3.72 |
| 101.2 | 79.3 | 71.0 | 67.4 | 75.4 | 61.8 | |
| 3-Man | 5.16 | 4.21 | 3.88 | 3.65 | 3.76 | 3.89, 3.74 |
| 103.2 | 71.1 | 79.1 | 66.0 | 75.3 | 62.0 | |
| 2,6-Man | 5.13 | 4.22 | 3.87 | 3.60 | 3.76 | 3.88, 3.73 |
| 99.2 | 79.1 | 71.1 | 66.1 | 74.6 | 68.0 | |
| 2,6-Man | 5.10 | 4.03 | 3.93 | 3.69 | 3.80 | 4.00, 3.70 |
| 99.2 | 79.6 | 71.5 | 67.8 | 74.6 | 67.6 | |
| t-Man | 5.03 | 4.06 | 3.86 | 3.66 | 3.75 | 3.89, 3.71 |
| 103.2 | 71.0 | 71.2 | 67.5 | 76.4 | 62.1 | |
| t-Man | 5.04 | 4.20 | 3.93 | 3.62 | 3.86 | 3.89, 3.71 |
| 103.2 | 70.1 | 70.7 | 67.9 | 76.4 | 62.1 | |
| 6-Man | 4.89 | 3.98 | 3.82 | 3.71 | 3.88 | 3.91, 3.73 |
| 100.6 | 70.6 | 71.0 | 67.3 | 74.8 | 66.5 | |
| t-Gal | 4.52 | 3.32 | 3.48 | 3.87 | 3.84 | 3.84, 4.21 |
Figure 4HSQC and the .
Figure 5Proposed structure of the EPS of .
Figure 6Chromatogram GC-MS of .
Figure 7Chromatogram GC-MS of .
Figure 8Immuno-transmission electron micrographs of the OCT cryosection of an H. somni was grown as a biofilm on glass slides and embedded in OCT resin to maintain the integrity of the biofilm prior to incubation with antiserum. Left, control OCT cryosection of biofilm incubated without specific antiserum, but with anti-rabbit conjugated gold particles; no labeling with the gold particles occurred; Right, OCT cryosection of a biofilm incubated with rabbit antibodies to EPS, followed by anti-rabbit conjugated gold particles. The black dots are gold particles around the bacterial cells and in the residual biofilm matrix.
Figure 9. H. somni was grown as a biofilm on cover slips and stained with TO-PRO-3 to label the bacterial cells (top left), MNA (specific for α-mannose)-FITC to label mannose (top right), and were merged (bottom center) to demonstrate the presence of mannose within the bacterial biofilm. Mannose is present in the H. somni EPS, but not in the LOS.
Figure 10SEM image of biofilm formation by A1-A2, biofilm formation by 2336; B1- B2, enhanced biofilm formation by 2336 grown in the presence of Neu5Ac (50 μg/ml) in chemically defined medium; C1- C2, biofilm formation by 129Pt; D1- D2, biofilm formation by 129Pt grown in the presence of Neu5Ac in defined medium. There is no significant change in the density of the biofilm of 129Pt grown in the presence of Neu5Ac.
Putative EPS genes in H.somni 2336 and 129Pt with proposed roles in polysaccharide synthesis
| Gene | ORF | Protein annotation | No. of amino acids, predicted mass (kDa) | % Similarity to another protein |
|---|---|---|---|---|
| HSM_1063 | UTP-glucose-1-phosphate uridylyltransferase | 295, 32.2 | 70, to glucose-1-phosphate uridylyltransferase, | |
| HSM_1062 | Phosphomannomutase | 454, 50.3 | 81, to phosphomannomutase, | |
| HSM_1061 | Carbon storage regulator | 60, 6.75 | 89, to pleiotropic regulatory protein for carbon source metabolism, | |
| HSM_1242 | Lysophospholipase | 318, 37.4 | 49, to lysophospholipase L2, | |
| HSM_1241 | Haloacid dehalogenase-like hydrolase | 273, 30.8 | 60, to phosphatase//phospho transferase, | |
| HSM_1240 | L-ribulose-5-phosphate 4-epimerase | 231, 25.8 | 82, to L-ribulose-5-phosphate 4-epimerase, | |
| HSM_1239 | Putative L-xylulose-5-phosphate 3-epimerase | 290, 33.2 | 84, to L-xylulose 5-phosphate 3-epimerase, | |
| HSM_1238 | 3-keto-L-gulonate-6-phosphate decarboxylase | 215, 23.6 | 64, to 3-keto-L-gulonate 6-phosphate decarboxylase, | |
| HSM_1237 | L-xylulose kinase | 484, 53.7 | 75, to L-xylulose kinase, | |
| HSM_1236 | Ribose ABC transporter, permease | 342, 32.9 | 59, to D-ribose transporter subunit, | |
| HSM_1235 | Ribose ABC transporter, ATPase component | 496, 56.1 | 60, to D-ribose transporter subunit, ATP-binding component, | |
| HSM_1234 | ABC-type sugar transport system, periplasmic component | 312, 31.0 | 56, to D-ribose transporter subunit, periplasmic component ( | |
| HSM_1233 | Gluconolaconase | 295, 32.6 | 46, to gluconolactonase, | |
| HSM_1232 | ABC-type sugar-binding periplasmic protein | 369, 37.2 | 81, to hypothetical protein ( | |
| HSM_1231 | Ribose ABC transporter, permease | 349, 36.9 | 90, to inner-membrane translocator ( | |
| HSM_1230 | Ribose ABC transporter, ATPase component | 505, 55.8 | 81, to ABC transporter-related protein ( | |
| HSM_1229 | TRAP C4-dicarboxylate transport system, periplasmic component | 328, 33.4 | 52, to C4-dicarboxylate binding protein, periplasmic component, | |
| HSM_1228 | TRAP C4-dicarboxylate transport system, permease component | 426, 43.2 | 59, to C4-dicarboxylate -binding protein, permease component, | |
| HSM_1227 | Tripartite ATP-independent periplasmic transporter | 160, 17.8 | 40, to tripartite ATP-independent periplasmic transporter, |
Figure 11Genes predicted to contribute to EPS biosynthesis that were significantly (P < 0.05) upregulated during biofilm growth (red bars) relative to planktonic growth (blue bars). The bacteria were grown as biofilms or in broth (planktonic) and samples taken at 3, 5 and 7 days for analysis by qRT-PCR from H. somni 2336 (left) or 129Pt (right). Fourteen of 19 genes were significantly upregulated in 2336, whereas only 5 genes were upregulated (predominately at 7 days) in 129Pt. The data were expressed as the means and SDs of three independent experiments performed in triplicate.