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1 ation of dysfunctional CD3(high)CD8(+)CD4(-) single-positive 8 (SP8) thymocytes with low expression o
2 earrangements of CD3(-)CD4(+)CD8(-) immature single-positive and CD3(+)CD4(+)CD8(+) double-positive c
3 eta-selection checkpoint to the CD8 immature single-positive and CD4+ CD8+ double-positive stages.
4 T cell populations (CD4 single positive, CD8 single positive, and CD4(dim)CD8(bright)) were found in
5 e-TCR/TCR signaling during the DN4, immature single-positive, and double-positive stages of developme
6 N, minimal surgeon experience, presence of a single positive axillary LN, and use of immunohistochemi
7 sIgE to Ves v 5 and/or Ves v 1, and 78.3% of single-positive bee venom-allergic patients had sIgE to
8 tropenic patients were less likely to have a single positive blood culture than were nonneutropenic p
10 eficient mice was already observed in CD4(+) single-positive CD25(+) GITR(+) Foxp3(-) thymic Treg cel
11 10 and results in the accumulation of mature single-positive CD3(high)heat-stable Ag(low) thymocytes.
12 eration of natural Tregs (nTregs) within the single positive CD4 thymocyte compartment, accounting fo
13 -positive thymocytes, for differentiation of single-positive CD4 and CD8 T cells, and for the prolife
19 1017-DRAK2 Tg mice displayed a reduction of single-positive CD4(+) and CD8(+) thymocytes in context
21 ble-positive (DP) CD4(+)CD8(+) thymocytes to single-positive CD4(+) or CD8(+) T cells is regulated by
23 but may correlate with the expansion of the single-positive CD4(-) CD8(+) thymocyte subpopulation.
24 ulations demonstrated a reduced expansion of single-positive CD4(-) CD8(+) thymocytes in JSY3DeltaORF
25 tes correlates with the generation of mature single-positive CD4(-)CD8(+) thymocytes that have low ex
30 educed numbers of both TCRbeta(low) immature single-positive CD8(+) cells and double-positive T cells
33 ell receptor beta genes of human CD4 and CD8 single positive cells developing in HU and SW thymus gra
35 motes positive selection of both CD4 and CD8 single positive cells without playing a major role in ne
37 ymocytes but inhibits the development of CD4-single positive cells: effects also observed in E2A-defi
38 led to reduced numbers of CD4(+) and CD8(+) single-positive cells and reduced thymic cellularity due
41 nge, a higher frequency of CD4(+)CD8(+) than single-positive cells displayed a T helper 1/T cytotoxic
43 m immature CD11b(+)Ly6G(+) cells to CD11b(+) single-positive cells in marrow and tissues and partiall
44 their thymic precursors, because CD4(+)8(-) single-positive cells in the neonatal thymus also showed
45 ositive selection of n3.L2 PKCtheta(-/-) CD4 single-positive cells resulted from "weaker" signaling t
48 mice contains an expanded population of CD8 single-positive cells with the characteristic phenotype
50 of IFN-beta) resulted in YFP(+) and eGFP(+) single-positive cells, whereas among messenger of IFN-be
61 d design of mouse primers which identified a single positive clone in a bacterial artificial chromoso
65 . coli transcriptional activator that uses a single positive control surface to make specific protein
72 n neuropeptides, and these screens yielded a single positive hit: prosaptide, which promoted the endo
75 ls are normally extinguished by the immature single positive (ISP) stage of thymocyte development.
76 a significant impairment at the CD8 immature single-positive (ISP) stage and the CD4/CD8 double-posit
77 R gamma)0/0 thymi, which accumulate immature single-positive (ISP) thymocytes that precede the DP sta
78 e-positive stage specifically inhibited CD8+ single-positive maturation but did not affect CD4+ singl
79 k sac and neuroectoderm; 2) at E10.5, CX3CR1 single-positive microglial cells were visualized penetra
80 : subjects were predominantly spread along a single 'positive-negative' axis linking lifestyle, demog
82 er congenic HSCT, we found that Ly49G2(high) single-positive NK cells repopulated, displayed an activ
84 on-small cell lung cancer target tumors over single-positive, non-target NCI-H358-HER2 CRISPR knock o
85 of antigen double-positive cancer cells over single-positive normal tissue is believed to enhance the
86 ors and repressors and resolving them into a single positive or a negative signal that is transmitted
89 racteristics of more severe dysfunction than single-positive (PD-1(+) or CTLA-4(+)) TIL, including an
90 ated diverse TCR expression, a primarily CD4 single-positive phenotype, and lack of CD1d reactivity.
93 sensitivity and specificity obtained using a single positive result as significant were 80% and 77.8%
94 rformed 164 times at a cost of $21,789 for a single positive result effecting modification of patient
95 heterogeneity index for 2 consecutive vs one single positive results, 0% vs 72.6%, respectively).
96 agnostic odds ratio for 2 consecutive vs one single positive results, 111.8 [95% confidence interval
98 , PAXIP1 was essential for release of mature single positive (SP) alphabeta T cells from the thymus t
99 ions in postselection maturation by studying single positive (SP) CD4 thymocytes from K14/A(beta)(b)
100 o undergo positive selection to CD4+ or CD8+ single positive (SP) cells in vivo or activation-induced
102 d functions as a weak agonist for mature CD8 single positive (SP) N15 T cells, with activity 10,000-f
103 ined in the cortex, maturing to form ectopic single positive (SP) thymocyte clusters in Plxnd1-defici
105 C transgenic lines display a decrease in CD4 single positive (SP) thymocytes and a corresponding incr
107 ble positive (DP) thymocytes, but not mature single positive (SP) thymocytes or splenic T cells.
108 n to be delayed compared with that of CD4(+) single positive (SP) thymocytes, with tTregs being detec
112 greater numbers of double positive (DP), CD4 single positive (SP), and CD8SP thymocytes in TgA mice w
115 y responses of CD4(+)CD8(-) and CD4(-)CD8(+) single-positive (SP) cells and increased percentage of C
117 ive selection; reducing the ratio of CD4/CD8 single-positive (SP) cells; and reducing cell surface CD
118 d silenced in cells committing to the CD4(+) single-positive (SP) lineage, remaining active in the CD
120 double-positive (DP) to the CD4(+) or CD8(+) single-positive (SP) stage of alphabeta T cell developme
121 ive (DP) thymocytes to the mature CD4 or CD8 single-positive (SP) stage requires proper T cell recept
126 nsition from the double-positive (DP) to the single-positive (SP) thymocyte stage and predisposes DP
128 eptor (TCR)-associated signaling pathways of single-positive (SP) thymocytes are attenuated to respon
129 urther implies that the number of mature CD8 single-positive (SP) thymocytes greatly underestimates C
131 D4+CD8+ double-positive thymocytes into CD8+ single-positive (SP) thymocytes is regulated by TCR and
132 were unperturbed, maturation of CD4 and CD8 single-positive (SP) thymocytes was blocked in mice lack
133 lar, DN-IkTg induced the accumulation of CD4 single-positive (SP) thymocytes with a developmentally t
134 nactivation of CBP in the thymus yielded CD8 single-positive (SP) thymocytes with an effector-, memor
135 te number of total, double-positive, and CD4 single-positive (SP) thymocytes, as well as a defect in
136 ty leads to a reduction in numbers of CD8(+) single-positive (SP) thymocytes, suggesting a selective
145 Itk-deficient mice, mature CD4(-)CD8(+) (CD8 single-positive [SP]) thymocytes express high levels of
147 prevent their development into committed CD4 single positives (SPs), nor their continued maturation t
151 -MHC complexes direct differentiation to the single-positive stage (positive selection), whereas high
152 d for the NK cell maturation beyond the CD27 single-positive stage and is indispensable for the maint
153 tes and their commitment to the CD4(+)CD8(-) single-positive stage are impaired in Themis(-/-) mice,
154 e negative (DN) stage 2 through the immature single-positive stage of thymocyte development, before t
155 accelerates development to the CD8 immature single-positive stage, but retards subsequent differenti
156 Consistent with defective progression to the single-positive stage, CD4-Cre/ShcFFF mice also had sign
162 ble-positive thymocytes to the CD4+ or CD8+ (single-positive) stage, and only a minor subset of CD8+
163 arrow progressed through double-positive and single-positive stages only when IL-7 concentrations wer
164 1Delta/Delta adult thymus to the double- and single-positive stages, but in the apparent absence of d
166 er of the CrPV-like virus family, contains a single positive-stranded RNA genome that encodes two non
167 showed a reduction in both CD4(+) and CD8(+) single-positive subsets, and double-positive thymocytes
168 cells (R = -0.62; p </= 0.001), but not CD8 single positive T cells (R = -0.24; p </= 0.27), negativ
169 KLF2 is expressed exclusively in CD4 and CD8 single positive T cells and promotes a nonproliferative,
171 ated the role of CD4(dim)CD8(bright) and CD8 single positive T cells in HIV-infected brain using NOD/
174 ure thymocytes resulted in the generation of single positive T cells that lacked the alpha beta TCR a
175 vely induce changes in CD69(int) CD62L(high) single positive T cells, resulting in down-modulation of
178 ocytes in circulation, an increase in mature single-positive T cells in the thymus, and a selective r
182 er IL-7R alpha, and a decrease in CD4(-)8(+) single-positive T cells that can be mitigated by transge
183 echanisms that regulate the tuning of CD4(+) single-positive T cells to MHC class II encountered in t
184 e, a conditional knockout of SHP-1 in mature single-positive T cells was developed to analyze cell-in
185 uced similar antibody levels in vitro, CXCR5-single-positive T cells were superior in inducing B cell
186 rected ESCs differentiated to CD4 + or CD8 + single-positive T cells, confirming correction of the ce
188 /-) iG6 mice were derived from CD8 immature, single-positive T cells, whereas Atm(-/-) lymphomas were
193 s essential during pulmonary development and single-positive T-cell development and is indispensable
197 Early thymocyte development was normal, but single-positive thymocyte and peripheral T cell numbers
198 (CD83-/-) mice had a specific block in CD4+ single-positive thymocyte development without increased
199 ression of RasGRP1 selectively increases CD8 single-positive thymocyte numbers and enhances their res
200 nslocation of TMEM131L may regulate immature single-positive thymocyte proliferation arrest by acting
201 interacting protein 2 is not involved in CD8 single-positive thymocyte selection or ERK signaling.
202 FLIP conditional knockout mice occurs at the single-positive thymocyte stage and may be caused by enh
203 defective for N-ras have low numbers of CD8 single positive thymocytes and decreased thymocyte proli
204 ted the proliferation and survival of CD4(+) single positive thymocytes and peripheral T cells in vit
205 ent phenotype, yet nevertheless give rise to single positive thymocytes and yield mature class I MHC-
206 ion, tal-1 stimulates differentiation of CD8-single positive thymocytes but inhibits the development
207 of mature T cells, given its absence in CD8 single positive thymocytes derived from MHC II(-/-) mice
210 to the variegated expression of CD8-negative single positive thymocytes seen upon deletion of several
211 lularity, impaired transition from double to single positive thymocytes, and decreased numbers of mat
212 election promotes not only the production of single positive thymocytes, but also the survival of sel
217 of generating naive T cells, Foxp1-deficient single-positive thymocytes acquire an activated phenotyp
218 However, the numbers of double-positive and single-positive thymocytes after CD3gamma(C82S/C85S) tra
219 lf-tolerance by eliminating autoreactive CD4 single-positive thymocytes and by supporting regulatory
220 ration initiates after positive selection in single-positive thymocytes and continues in the peripher
221 50% reduction in the generation of n3.L2 CD4 single-positive thymocytes and n3.L2 CD4 mature T cells.
223 strongly dependent on the presence of mature single-positive thymocytes and on the interactions of th
225 nd negative selection, significantly reduces single-positive thymocytes and peripheral T cells, and i
227 tes, resulting in complete absence of CD4(+) single-positive thymocytes and severe reduction of CD3(+
229 h which TCR-associated signaling pathways of single-positive thymocytes are attenuated to respond app
230 ired for the survival of double-negative and single-positive thymocytes as well as naive and activate
231 of Ikaros is specific to double-positive and single-positive thymocytes because derepression of Notch
232 PCR and Western blot as well as in CD4+CD8- single-positive thymocytes by real-time quantitative PCR
234 els were much greater in IL-4-expressing CD4 single-positive thymocytes compared with unactivated cel
235 the number of CD4(+)CD8(-) and CD4(-)CD8(+) single-positive thymocytes correlating with increased DA
236 a >80% reduction in generation of n3.L2 CD4 single-positive thymocytes derived from PKCtheta(-/-) mi
237 Deletion of TAK1 prevented the maturation of single-positive thymocytes displaying CD4 or CD8, leadin
239 n and ERK activation block maturation of CD8 single-positive thymocytes even when added after 24 h.
245 ote the positive selection/maturation of CD8 single-positive thymocytes in a thymocyte-intrinsic mann
246 n causes apoptosis of CD4 and CD8 double- or single-positive thymocytes in HY- or AND-TCR transgenic
247 thymocytes fail to efficiently generate CD8+ single-positive thymocytes in mixed bone marrow chimeric
248 th dramatic reduction of double-positive and single-positive thymocytes in the tid1(-/-) thymus.
249 feration, whereas adaptive CD4(+) and CD8(+) single-positive thymocytes including thymic Tregs cycled
251 wly generated conventional CD69(+)Qa2(-) CD4 single-positive thymocytes mature to the late CD69(-)Qa2
252 8 thymocyte generation such that CD4 and CD8 single-positive thymocytes mature with the same kinetics
254 s, but an increase in the percentage of CD8+ single-positive thymocytes seen in CBP mutant mice was n
256 P L also blocked the migration and egress of single-positive thymocytes to peripheral lymphoid organs
257 of IL-2RS: IL-2R(+) double-positive and CD4 single-positive thymocytes undergoing activation-induced
258 eased positive selection of both CD4 and CD8 single-positive thymocytes was also seen in nontransgeni
262 thymocytes, whereas double-positive and CD8 single-positive thymocytes were only partially affected.
265 sion of double-negative thymic precursors to single-positive thymocytes with increased IL-7Ralpha exp
266 lopment in turn requires signals from mature single-positive thymocytes, a bidirectional relationship
267 We analyzed rearranged BV19 genes from CD8 single-positive thymocytes, a surrogate for the naive re
268 d MHCI tetramers more avidly than mature CD8 single-positive thymocytes, and that this differential b
269 ion of superantigen-specific, self-reactive, single-positive thymocytes, and we show that CD40 expres
270 s lowered the numbers of double-positive and single-positive thymocytes, concomitant with reduced pos
271 itive selection and is sustained in immature single-positive thymocytes, despite the strong decrease
272 on of CD8 T-cells with a predominance of CD8 single-positive thymocytes, in spite of thymic insulin e
273 transgenic mice had a 4-fold increase in CD8 single-positive thymocytes, most of which had atypically
274 their further differentiation to double- and single-positive thymocytes, whereas B cells in the marro
275 e mice resulted in efficient ablation of CD4 single-positive thymocytes, whereas double-positive and
276 ignaling needed to initiate proliferation of single-positive thymocytes, with this effect being parti
293 turation of CD4- or CD8alphabeta-expressing 'single-positive' thymocytes from CD4(+)CD8alphabeta(+) '
295 ith negative PCR results during treatment, a single positive TMA test did not exclude SVR, although p
298 er block from CD4 and CD8 double-positive to single-positive transition compared with PLCgamma1 singl
300 ith no sIgE to rSSMA of the other species in single-positive venom-allergic patients and only one con
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