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1 antigens of S. zooepidemicus (S. equi subsp. zooepidemicus).
2 ion of hyaluronic acid (HA) by Streptococcus zooepidemicus.
3 related opportunistic pathogen Streptococcus zooepidemicus.
4 this farm yielded the outbreak strain of S. zooepidemicus.
5 n originating from an ancestral strain of S. zooepidemicus.
7 s pneumoniae (capsule type 3), Streptococcus zooepidemicus, Actinobacillus spp., and Mycoplasma equir
12 ng systemic infection of mice, only ~1-10 S. zooepidemicus clones invade the meninges where they subs
13 llele from the animal pathogen Streptococcus zooepidemicus failed to complement a GAS fasX mutant.
16 B Streptococcus), Streptococcus equi subsp. zooepidemicus (Group C Streptococcus), Streptococcus dys
17 (Streptococcus equi, S. equisimilis, and S. zooepidemicus) have been shown to bind to different mamm
23 s a common phenotype of human S. equi subsp. zooepidemicus isolates but much less so in equine S. equ
25 nce profiles of 38 Streptococcus equi subsp. zooepidemicus isolates were determined from a kennelled
28 cteremia caused by Streptococcus equi subsp. zooepidemicus, likely transmitted from mother to infant.
29 he rewiring of PTS(man) in the control of S. zooepidemicus metabolism enables this pathogen to adapt
36 with the genome sequences of S. equi subsp. zooepidemicus strains H70 and MGCS10565 and S. equi subs
37 onotic potential varies among S. equi subsp. zooepidemicus strains in association with differences in
38 mutagenesis of two different S. equi subsp. zooepidemicus strains that the M-like protein SzM is cru
40 e corresponding sequence from S. equi subsp. zooepidemicus SzpW60, while the predicted surface-expose
41 the remarkable capacity of hypervirulent S. zooepidemicus to proliferate in cerebrospinal fluid (CSF
43 The association with S. pneumoniae and S. zooepidemicus was independent of prior viral infection a
46 r S. equi but not for the closely related S. zooepidemicus, whereas SzPSe is strongly opsonogenic for