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1 is, and Neisseria gonorrhoeae, as well as to toxic shock syndrome toxin-1.
2 irements similar to that for presentation of toxic shock syndrome toxin-1.
3 as inhibition of T cell proliferation due to toxic shock syndrome toxin-1.
4 ere capable of attenuating the production of toxic shock syndrome toxin-1 (also under the control of
5 nine mutations were constructed in S. aureus toxic shock syndrome toxin-1 amino acids D120 to D130.
7 ococcal enterotoxin A (SEA), SEB, or SEC3 or toxic shock syndrome toxin 1 and a potentiating dose of
8 study the activity of superantigens such as toxic shock syndrome toxin 1 and also found that despite
9 ant Staphylococcus aureus and genes encoding toxic shock syndrome toxin 1 and Panton-Valentine leukoc
10 lysin streptolysin O enhanced penetration of toxic shock syndrome toxin-1 and streptococcal pyrogenic
11 anton-Valentine leukocidin, alpha-toxin, and toxic-shock syndrome toxin 1 and increased toxin product
12 f staphylococcal enterotoxin A (SEA) to SEH, toxic shock syndrome toxin 1, and Panton-Valentine leuko
13 Immunoblot analysis of the enterotoxins, toxic-shock syndrome toxin 1, and SpeA with antiserum pr
14 roliferation in response to the superantigen toxic shock syndrome toxin 1, as well as the proliferati
15 ttenuated staphylococcal enterotoxin (SE) or toxic shock syndrome toxin 1 develop protective antibodi
16 ells were stimulated with the staphylococcal toxic shock syndrome toxin-1, enterotoxin A, or enteroto
17 erum) against combinations of superantigens (toxic shock syndrome toxin 1, enterotoxins B and C, and
20 d theories of Kawasaki disease etiology, the toxic shock syndrome toxin-1 hypothesis and the coronavi
21 n-Valentine leukocidin, alpha-hemolysin, and toxic-shock syndrome toxin 1, in both methicillin-sensit
23 taphylococcal clone or structural variant of toxic shock syndrome toxin 1 is associated with Kawasaki
25 r, a detailed structural analysis shows that toxic shock syndrome toxin-1 lacks several structural fe
26 replication, and suboptimal stimulation with toxic shock syndrome toxin 1 leads to viral replication
27 staphylococcal enterotoxin B and C negative, toxic shock syndrome toxin 1 positive, and staphylococca
29 - and beta-toxins, but not enterotoxin A and toxic shock syndrome toxin-1, rapidly potentiated sheddi
32 ly express BP107 conformational epitopes and toxic shock syndrome toxin-1 superantigen-binding capabi
33 of oxygen is necessary for the production of toxic shock syndrome toxin 1 (TSST-1) by Staphylococcus
35 he effect of O(2) and CO(2) on expression of toxic shock syndrome toxin 1 (TSST-1) by Staphylococcus
38 s with staphylococcal enterotoxin B (SEB) or toxic shock syndrome toxin 1 (TSST-1) resulted in enhanc
40 T2-I-A(b), is very inefficient at presenting toxic shock syndrome toxin 1 (TSST-1) to T cells, sugges
41 ne monoclonal antibodies (MAbs) specific for toxic shock syndrome toxin 1 (TSST-1), a bacterial super
42 there have been reports of the production of toxic shock syndrome toxin 1 (TSST-1), enterotoxin, and
44 tes production of agr RNAIII, protein A, and toxic shock syndrome toxin 1 (TSST-1), particularly unde
45 r, unlike the classical enterotoxins SEB and toxic shock syndrome toxin 1 (TSST-1), the gene for SEl-
46 ught to be associated with colonization with toxic shock syndrome toxin 1 (TSST-1)-producing Staphylo
50 as well as the staphylococcal superantigens toxic shock syndrome toxin-1 (TSST-1) and staphylococcus
51 fine the interface between the bacterial SAG toxic shock syndrome toxin-1 (TSST-1) and the TCR, we pe
52 ee-dimensional structures of five mutants of toxic shock syndrome toxin-1 (TSST-1) have been determin
54 superantigens [staphylococcal enterotoxins, toxic shock syndrome toxin-1 (TSST-1), and streptococcal
55 Staphylococcal superantigens (SAgs), such as toxic shock syndrome toxin-1 (TSST-1), are the main caus
56 nical cases of TSS arise due to an exotoxin, toxic shock syndrome toxin-1 (TSST-1), elaborated by tox
58 ram quantities of topically applied purified toxic shock syndrome toxin-1 (TSST-1), staphylococcal en
62 g., staphylococcal enterotoxin A [SEA], SEB, toxic shock syndrome toxin 1 [TSST-1]) which act both as
63 We investigated whether the superantigen toxic shock syndrome toxin-1 (TSST1) could induce an ant
66 nced portions of the regions encoding mature toxic shock syndrome toxin 1 were identical in all six s
67 enough to allow for enhanced penetration of toxic shock syndrome toxin-1, whereas streptolysin O dir
68 trains of S. aureus produce the superantigen toxic shock syndrome toxin-1, which can penetrate the va
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