| Literature DB >> 26577602 |
Nicolas Gisch1, Dominik Schwudke1, Simone Thomsen1, Nathalie Heß2, Regine Hakenbeck2, Dalia Denapaite2.
Abstract
Members of the MitisEntities:
Mesh:
Substances:
Year: 2015 PMID: 26577602 PMCID: PMC4649388 DOI: 10.1038/srep16718
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1LTA part structures of S. pneumoniae and S. oralis Uo5.
Compilation of the structures of the respective lipid anchor-containing trisaccharide-DAG (tsDAG; 1 and 5, both including lipid anchor 2; R = fatty acid) and monomerized LTA repeats (monoPS units; 3, 6a,b and 7a,b) isolated after HF treatment, as well as observed repeating units in hydrazine treated or native LTA (4, 8 and 9a,b).
Figure 2Section of the charge deconvoluted ESI-FT-ICR-MS spectra (acquired in positive ion mode) of 6a,b obtained after 2 d HF treatment of LTA of S. oralis Uo5∆cps and subsequent purification by HIC and GPC (P-10 pool 1 in Fig. S4).
Besides the major molecule 6b with a MWfound of 1030.408 Da (MWcalc: 1030.403 Da), a second compound with one hexose less (6a; MWfound: 868.356 Da; MWcalc: 868.353 Da) was observed in minor amounts as well. For both molecules, variants with a bound alanine or acetyl residue could be identified with very small signal intensity.
Figure 3NMR analysis of 6a,b obtained after 2 d HF treatment of LTA of S. oralis Uo5∆cps and subsequent purification by HIC and GPC (P-10 pool 1 in Fig. S4; mass spectrum shown in Fig. 2).
(A) Section (δP 5-(−5)) of the 31P NMR. (B) The respective 1H,13C-HSQC NMR spectrum (δH 5.40–3.00; δC 115–45) including assignment of signals. The presence of two molecular species—already observed in the mass spectrometrical analysis—is clearly visible and can be assigned to the absence or presence of the α-Gal moiety (E). Signals labeled with * originate from 7a,b, which are present in small amount. All NMR chemical shift data of 6a,b are listed in Table S3.
Figure 4Section of the charge deconvoluted the ESI-FT-ICR-MS spectra (acquired in negative ion mode) of hydrazine-treated LTA of S. oralis Uo5∆cps (10).
The monoisotopic mass of 4959.69 Da corresponds to 10 with n = 2 (structure shown in Fig. 5A), the assigned higher masses to respective molecules with longer chains (6217.123 Da (n = 3); 7474.559 Da (n = 4); 8732.011 Da (n = 5)).
Figure 5NMR analysis of 10 (mass spectrum shown in Fig. 4).
(A) Section (δH 5.40–3.30; δC 115–40) of the 1H,13C-HSQC NMR spectrum including structure and assignment of signals. (B) Section (δP 2-(−2)) of the 31P NMR including assignment of signals. All NMR chemical shift data of 10 are listed in Table 1.
1H (700.7 MHz), 13C NMR (176.2 MHz), and 31P NMR (283.7 MHz) chemical shift data (δ, ppm) [J, Hz] for S. oralis Uo5Δcps LTA after hydrazine treatment (10).
| Residue (assignment) | H-1 | H-2 | H-3 | H-4 | H-5 | H-6 | NAc |
|---|---|---|---|---|---|---|---|
| Glycerol-(1→ ( | 3.83–3.79 | 3.62–3.58 | 3.70–3.66 | ||||
| 3.50–3.46 | |||||||
| →3)-α-D-Glc | 4.89 [3.6] | 3.63–3.60 | 3.84–3.80 | 3.49–3.46 | 3.71–3.67 | 3.86–3.82 | |
| 3.77–3.74 | |||||||
| →3)-β-AATGal | 4.63 [8.2] | 3.98–3.93 | 3.95–3.91 | 3.37–3.32 | 3.90–3.87 | 1.29 [6.4] | 2.02 |
| 4.49/4.48 | 3.56–3.51 | 3.66–3.63 | 3.98–3.96 | 3.83–3.78 | 4.03–3.96 | ||
| [7.7] | |||||||
| →2)-ribitol-(1→ | 4.13–4.08 | 4.15–4.08 | 3.86–3.81 | 3.78–3.73 | 3.84–3.79 | ||
| 3.94–3.90 | 3.65–3.60 | ||||||
| →4)-β-D-3,6- | 4.73 [8.7] | 4.04–3.98 | 4.27–4.23 | 4.24–4.18 | 3.90–3.85 | 4.15–4.11 | 2.07 |
| 4.09–4.03 | |||||||
| 102.3 | 52.3–52.1 | 74.6–74.5 | 75.8–75.7 | 73.8–73.6 | 66.3–66.2 | ||
| Cho- | 4.32–4.28 | 3.73–3.67 | 3.24/3.23 | ||||
| 4.25–4.20 | |||||||
| Cho- | 4.34–4.28 | 3.71–3.67 | 3.24 | ||||
| →3)-β-AATGal | 4.69–4.65 | 4.00–3.94 | 4.00–3.95 | 3.50–3.44 | 3.89–3.84 | 1.33–1.29 | 2.06 |
| (E)→3, | 4.55 [7.7] | 3.68–3.63 | 3.78–3.73 | 4.24–4.20 | 3.83–3.78 | 4.03–3.96 | |
| α-D-Gal | 5.16 [3.6] | 3.88–3.84 | 3.97–3.93 | 4.03–4.00 | 4.22–4.18 | 3.74–3.71 | |
| (C#)→3)-β-AATGal | 4.65 [8.2] | 3.99–3.95 | 3.99–3.95 | 3.37–3.32 | 3.89–3.84 | 1.33–1.29 | 2.07 |
| β-D-3,6- | 4.76 [8.6] | 4.10–4.06* | 4.24–4.20* | 4.19–4.17 | 3.90–3.86 | 4.08–4.04 | 2.09 |
| Cho- | 4.31–4.26 | 3.69–3.65 | 3.22 | ||||
| 4.24–4.20 | |||||||
| Cho- | 4.35–4.31 | 3.71–3.67 | 3.24 | ||||
*non-resolved multiplet.
Figure 6Section of the charge deconvoluted ESI-FT-ICR-MS spectra (acquired in negative ion mode) of S. oralis Uo5∆cps LTA.
Repeating units (RUs) were detected with an average mass of 1299.4 Da. The RU size was determined on LTA molecules comprising a fatty acid composition with 32 carbon atoms and full saturation. The isolated LTA fraction comprised a complex mixture of molecular species as depicted in Fig. S8 and assigned molecules are summarized in Table S4.
Figure 7Structure for S. oralis Uo5 LTA compared to S. pneumoniae LTA.
In the S. oralis Uo5 LTA, the repeating units (RUs) are composed of a pseudo-tetrasaccharide chain ((→ 4)-[3,6-O-di-P-Cho]-β-D-GalpNAc-(1 → 2)-Rib-ol-(1-P → 6)-(β-D-Galp-(1 → 3)-β-AATGalp-(1 →) (8 in Fig. 1)), RU 2 to n + 1 bear an additional α-1-linked D-Galp moiety at O-3 and an acetyl residue at O-4 of the β-D-Galp (9b in Fig. 1). Hydroxyl groups of the ribitol-1-P can be partially substituted with alanine. The chain length is 4 to 7 RUs. In S. pneumoniae LTA23, all RUs comprise the pseudo-pentasaccharide ((→ 4)-6-O-P-Cho-α-D-GalpNAc-(1 → 3)-6-O-P-Cho-β-D-GalpNAc-(1 → 1)-Rib-ol-5-P-(O → 6)-β-D-Glcp-(1 → 3)-AATGalp-(1 →)) (4 in Fig. 1), the terminal RU can occur with or without 6-O-P-Cho-substitution (X = H or P-Cho). Known strains with the content of only one P-Cho per RU lack the P-Cho at β-D-GalpNAc (R′ = H). Hydroxyl groups of Rib-ol-5-P can be partially substituted with D-Ala. The chain length of pnLTA is 4 to 8 RUs in general. Notably, in pnLTA the first repeating unit is β-1-linked via the AATGalp to the lipid anchor, all other RUs are α-1-linked to the previous one. In S. oralis Uo5 LTA all AATGalp residues are β-configurated.
Figure 8Biosynthesis pathway for the teichoic acid repeating unit in S. pneumoniae (black; Spr numbers represents S. pneumoniae R6 proteins) highlighting similar or homologous genes in S. oralis (red; Sor numbers represents S. oralis Uo5 proteins).
The biosynthesis pathway of TAs in S. pneumoniae R6 and identity to S. oralis Uo5 proteins is according to reference24. (§) The gene encoding this protein was identified in the genome of an S. pneumoniae serotype 5 strain, which has been shown to incorporate Gal instead of Glc into its WTA25. (#) Neither the genes encoding the proteins responsible for the addition of the α-Gal and acetyl residue to the β-Gal, nor the time point of these modifications in the biosynthesis pathway have been identified so far.