| Literature DB >> 28736074 |
S Manna1, B D Ortika2, E M Dunne2, K E Holt3, M Kama4, F M Russell5, J Hinds6, C Satzke7.
Abstract
OBJECTIVES: As part of annual cross-sectional Streptococcus pneumoniae carriage surveys in Fiji (2012-2015), we detected pneumococci in over 100 nasopharyngeal swabs that serotyped as '11F-like' by microarray. We examined the genetic basis of this divergence in the 11F-like capsular polysaccharide (cps) locus compared to the reference 11F cps sequence. The impact of this diversity on capsule phenotype, and serotype results using genetic and serologic methods were determined.Entities:
Keywords: Atypical pneumococcal serotype; Genetic variant; Pneumococcal capsule; Pneumococcal serotyping; Pneumococcus; Streptococcus pneumoniae
Mesh:
Year: 2017 PMID: 28736074 PMCID: PMC5869949 DOI: 10.1016/j.cmi.2017.06.031
Source DB: PubMed Journal: Clin Microbiol Infect ISSN: 1198-743X Impact factor: 8.067
Fig. 1Phylogenetic analysis of serogroup 11 capsular polysaccharide genes from 11F-like isolates (PMP1342 and PMP1343) with serogroup 11 strains MNZ272 (11A), 8087/40 (11B), Eddy no. 53 (11C), 70/86 (11D), MNZ264 (11E) and 34356 (11F), (GenBank accession nos. GU074952, CR931654, CR931655, CR931656, GU074953, CR931657 respectively). Genes specific to serogroup 11 include; wchA (A), wchJ (B), wchK (C), wcyK (D), wcwC (E), wcrL (F), wzy (G), wcwT (H), wcwU (I), wzx (J), gct (K) and wcjE (L). Trees for wcwC and wcjE do not include sequences from 11B and 11C as these serotypes lack these genes. Using MEGA 6 package [21], DNA sequences were aligned using MUSCLE; and maximum likelihood of phylogeny trees were generated based on Tamura-Nei model. Scale bars represent number of substitutions per site. Statistical support for branches was determined by bootstrapping (1000 replicates) and are displayed as percentages.
Fig. 2Alignment of 11F-like WcrL amino acid sequence with 11A and 11F sequences generated by Clustal Omega. Identical residues are indicated with an asterisk; conserved residents, a colon; and semiconserved residues by a period respectively. Highlighted is residue 112 (A, alanine; N, asparagine).
Phenotypic serotyping for 11F-like isolates and Statens Serum Institut (SSI) reference strains (11F, 11A, 11B, 11C and 11D)
| Factor serum | Major capsular antigen detected | 11F | 11A | 11B | 11C | 11D | PMP1342 (11F-like) | PMP1343 (11F-like) |
|---|---|---|---|---|---|---|---|---|
| 11b | αGlcNAc | + | − | + | + | + | − | − |
| 11c | Glycerol-1-phosphate (Gro1P) | − | + | − | + | + | + | + |
| 11f | O-acetylation of α-Gal-H2 | − | − | + | + | − | − | − |
| 11g | Ribitol phosphate (Rib-ol) | + | − | + | − | − | − | − |
Serotyping was performed using Quellung reaction as previously described [10], with ‘+’ and ‘−’ indicating a positive and negative reaction respectively with factor sera from SSI (http://www.ssi.dk/ssidiagnostica).
Fig. 3Alignment of 11F-like gct DNA sequences with 11A and 11F sequences generated using Clustal Omega. Identical residues are indicated with an asterisk. Box represents homopolymeric region with mutation site.
Fig. 4Representative latex agglutination reactions of Statens Serum Institut (SSI) 11F and 11A reference strains, and an 11F-like isolate from this study. Latex reagents were prepared using SSI antisera (11b, 11c, 11f, 11g) as Quellung as previously described [22].