Changes in T-cell subpopulations in mice during prolonged experimental secondary infection with Echinococcus granulosus

1995 ◽  
Vol 15 (4) ◽  
pp. 201-208 ◽  
Author(s):  
M. C. Rueda ◽  
A. Osuna ◽  
P. H. De Rycke ◽  
D. Janssen

Balb/c mice were infected intraperitoneally with protoscoleces of Echinococcus granulosus. After 15 months of infection, and by means of flow cytometry, the expression of T-cell markers CD3, CD4, and CDS on T cells from peripheral blood, spleen, and thymus was analyzed and compared with that of age-matched controls. Infected mice had higher percentages of CD3+, and CD4+ cells in peripheral blood, and higher percentages of CD8+ cells in the spleen, when compared with control mice. CD4+ and CD8+ cells in peripheral blood and CD8+ cells in thymus also showed higher percentages of expression of interleukin-2 receptor. The results infer a role for interleukin-2 in experimental secondary echinococcosis.

Blood ◽  
1989 ◽  
Vol 74 (6) ◽  
pp. 2270-2277 ◽  
Author(s):  
S Cayeux ◽  
S Meuer ◽  
A Pezzutto ◽  
M Korbling ◽  
R Haas ◽  
...  

Abstract T cells generated during a second round of ontogeny after autologous bone marrow transplantation (ABMT) represent a unique model of early T- cell ontogeny in an autologous situation. Since grafted bone marrows were pretreated in vitro with the cyclophosphamide derivative ASTA Z 7557, circulating T cells had to be regenerated from reinfused hematopoietic progenitor cells. The T-cell population derived from 25 patients post-ABMT was phenotypically characterized: an increase in CD8+ cells, a low percentage of CD4+ cells, and a median of 12% CD56+ (NKH1+) cells were found. When the T cells were stimulated with phytohemagglutinin (PHA) and phorbol myristate acetate (PMA), defective interleukin-2 (IL-2) secretion was observed. In addition, proliferative responses of the T cells after activation through the antigen-receptor- dependent CD3 pathway, through the CD2 dependent alternative T-cell pathway, and by the lectin PHA were investigated. Despite the presence of CD2, CD3, alpha/beta chains of the T-cell receptor, and CD25+ IL-2 surface receptors, abnormal proliferative responses were obtained even in the presence of exogeneous IL-2. In experiments where the T-cell population was separated into CD4+ cells and CD8+ cells, both the CD4- and CD8+ subsets were unable to respond to activating and proliferating signals. Thus, T cells at early stages of ontogeny not only possess an intrinsic defect in IL-2 synthesis but, in addition, were unable to express functional IL-2 receptors in response to mitogenic stimuli.


1980 ◽  
Vol 8 (2) ◽  
pp. 185-189 ◽  
Author(s):  
J. D. Beck ◽  
N. Wollner ◽  
D. R. Miller ◽  
R. A. Good ◽  
S. Gupta

Blood ◽  
2010 ◽  
Vol 116 (21) ◽  
pp. 350-350
Author(s):  
Leslie Kean ◽  
Sharon Sen ◽  
Mark E Metzger ◽  
Aylin Bonifacino ◽  
Karnail Singh ◽  
...  

Abstract Abstract 350 Introduction: Leukapheresis is a widely utilized modality for collecting hematopoietic stem cells (HSCs). While collection of CD34+ cells with stem-cell activity is the primary goal of most mobilization and leukapheresis procedures, these cells only represent ∼1% of most leukapheresis products. The profile of the non-CD34+ cells is likely influenced by the choice of mobilization strategy, and has the potential to profoundly impact the post-transplant immune milieu of the transplant recipient. Two of the most critical of the CD34-negative cell populations that are collected during leukapheresis include effector and regulatory T cells. Thus, in evaluating mobilization regimens, the impact on these regimens on the mobilization of each of these T cell populations into the peripheral blood should be rigorously evaluated. Methods: We used a rhesus macaque model to determine the impact that mobilization with AMD3100 (a.k.a., Plerixafor or Mozobil®)+ G-CSF (“A+G”) had on peripheral blood CD4+ and CD8+ effector T cell populations as well as on FoxP3+/CD4+ T cells. Three rhesus macaques were mobilized with 10ug/kg SQ of G-CSF for five consecutive days prior to leukapheresis. AMD3100 was administered at 1mg/kg SQ in combination with the last dose of G-CSF two hours prior to leukapheresis. Leukapheresis procedures were performed for two hours using a modified CS3000 Plus cell separator. A peripheral blood sample was taken before cytokine therapy, just prior to leukapheresis following mobilization, one hour during leukapheresis, and at the end of the procedure. These samples were analyzed by multicolor flow cytometry using a BD LSRII flow cytometer. Results: Bulk, effector, and regulatory T cell subpopulations were analyzed flow cytometrically. The proportion of total CD3+ T cells remained stable during mobilization and apheresis: Thus, CD3+ T cells represented 77% of peripheral blood lymphocytes prior to mobilization, and 69% post-apheresis). The balance of CD4+ to CD8+ T cells was also relatively stable. Thus, for one of the three animals tested, the CD4+ and CD8+ proportions remained unchanged after apheresis. For two animals, the average CD4+ % decreased from 67% prior to mobilization to 52% post-apheresis. In these two animals, there was a reciprocal increase in the % of CD3+ T cells that were CD8+ (28% pre-G+A to 40% post-apheresis). The CD28+/CD95- naïve (Tn), CD28+/CD95+ central memory (Tcm) and CD28-/CD95+ effector memory (Tem) subpopulation balance of CD4+ and CD8+ T cells was also determined, by comparing the relative percentages of each subpopulation post-apheresis with their relative percentages prior to mobilization. Compared to their pre-G+A percentages, the post-apheresis CD4+ percentages of Tn, Tcm and Tem were 92%, 93% and 160%, respectively. Thus, the relative proportions of Tn and Tcm CD4+ cells decreased post-apheresis, while the relative proportion of CD4+ Tem increased compared to cytokine administration. For CD8+ T cell subpopulations, the post-apheresis proportions of Tn, Tcm, and Tem compared to their pre-G-CSF proportions were 99%, 70% and 130%, respectively–thus demonstrating the same direction of change as observed for CD4+ T cells. The most striking change in T cell subpopulations occurred in the CD4+/FoxP3+ compartment. The proportion of CD4+ T cells expressing FoxP3 increased by an average of 600% when post-apheresis samples were compared to pre-mobilization samples (FoxP3+ cells were 9.6% of CD4+ T cells post-apheresis versus 1.5% pre-GCSF). An average of 32% of these FoxP3+ CD4+ T cells expressed high levels of CXCR4. CXCR4 expression has been previously documented on human FoxP3+ T cells (Zou et al., Cancer Res, 2004), but this is the first observation of high level expression of CXCR4 on macaque FoxP3+ CD4 T cells, or of their ability to be efficiently mobilized with AMD3100. Discussion: These results suggest that treatment with AMD3100 and G-CSF may mobilize T cell subsets into the peripheral blood that could have beneficial effects during allo-transplantation. The combination of an increase in Tem cells, which have been observed to have decreased ability to cause GvHD (Zheng et al., Blood 2008), along with FoxP3+/CD4+ T cells, which may have regulatory functions, suggests that A+G mobilization could produce an apheresis product with a beneficial CD34-negative cell profile for allogeneic transplantation. Disclosures: No relevant conflicts of interest to declare.


Blood ◽  
2012 ◽  
Vol 120 (21) ◽  
pp. 2670-2670
Author(s):  
Vit Prochazka ◽  
Martin Novák ◽  
Zuzana Pikalova ◽  
Tomas Papajik ◽  
Karel Indrak ◽  
...  

Abstract Abstract 2670 Background: Programmed death-1 (PD-1) and programmed death-1 ligand (PD-L) signaling pathways are involved in the functional impairment and “exhaustion” of cytotoxic CD8+ T cells in conditions such as chronic viral infection and in tumor immune evasion. The interaction of PD-1 with its ligand PD-L suppresses antitumor T cell function and indirectly stimulates Treg population. We investigated a hypothesis of whether examining PD-1 expression in peripheral T cells of patients with different lymphoma subtypes reflects tumor subtype or stage and compared results with healthy volunteers. Methods: Patients were assessed prior to their treatment or at the time of disease relapse or progression. We analyzed 5 patients with HL and 30 patients with NHL (T-cell n=6, diffuse large B-cell n=12, follicular lymphoma n=9, marginal zone lymphoma n=3). Twelve of the patients had relapsed or refractory diseases (B-NHL n=6, T-NHL n=2, HL n=4). Eleven patients (32%) had advanced (III/IV) disease stages. Data were compared with samples obtained from 12 healthy blood donors. Peripheral blood samples were stained with anti-CD3 FITC (Exbio), PD-1 (CD279) PE (BioLegend), anti-CD8 PerCP (Exbio), CD4 APC (Exbio), anti-CD25 FITC (BD), and anti-CD127 PE (BioLegend) using a lyse/no-wash protocol. Stained cells were acquired using the FACSCalibur cytometer (BD). Analysis of immunocompetent subpopulations was performed using the CellQuest Pro (BD) software. PD-1 (CD279) population was gated from CD3-positive T cells; minimal acquisition was designated as 10,000 CD3+ events. The percentage of PD-1+ cells within the live CD3+CD4+ and CD3+CD8+ populations was compared to isotype controls to establish baseline values. Absolute numbers were expressed as number of cells*10exp6 per liter. Population of Tregs was defined as CD4+/CD25int-hi / CD127low cells. Tregs were gated from CD4+ lymphocytes with minimal acquisition of 5,000 CD4+ cells. Results: Proportion of PD-1+/CD8+ of CD3+/CD8+ cells was significantly higher in patients with lymphoma than in healthy subjects: healthy volunteers (HV) 8.8%, B-NHL 16.0% (p=0.02), HL 21.8% (p<0.01), and T-NHL 30.8% (p<0.01). In absolute numbers of PD-1+/CD8+ cells, no significant difference was found when comparing healthy subjects and B-NHL: HV 0.23, B-NHL 0.56 (p=0.21), T-NHL 0.93 (p<0.01), and HL 1.51 (p<0.01). When analyzing the proportion of PD-1+/CD8+ cells according to disease phases, the highest numbers were found in patients with refractory/relapsed lymphoma as compared to patients with untreated disease and healthy subjects: HV 8.8%, untreated 14.6% (p=0.04), and relapsed 28.6% (p<0.01). Untreated patients had a significantly lower proportion of PD-1+/CD8+ cells than relapsed patients (p<0.01). Similar results were obtained with absolute numbers: HV 0.22, untreated 0.55 (p=0.03), and relapsed 1.24 (p=0.03). Untreated vs. relapsed patients p=0.05. Patients with limited disease stages had almost the same proportion of PD-1+/CD8+ lymphocytes compared to HV: HV 8.8%, limited stage 11% (p=0.21), and advanced stage 24.3% (p<0.01). In absolute numbers, HV had much less PD-1+/CD8+ cells in PB: HV 0.22, limited stage 0.49 (p<0.01), and advanced stage 0.97 (p<0.01). When analyzing the population of PD-1+/CD4+ cells, differences were only found in absolute numbers between HV (0.35) and HL (1.34; p<0.01), and between B-NHL (0.54) and HL (p=0.01). Regarding the population of Tregs, statistical differences were found between HV and B-NHL, HL or T-NHL in either relative or absolute numbers. On the other hand, there was a close correlation between absolute numbers of Tregs and PD-1+/CD4+ cells (p<0.01, correlation 0.73), and between Tregs and PD-1+/CD8+ cells (p<0.01, correlation 0.53). Conclusion: PD-1 expression in peripheral blood CD4+ and CD8+ cells is markedly different between lymphoma subtypes and compared with healthy subjects. The highest numbers of PD-1+/CD8+ are in patients with advanced lymphoma and at the time of disease relapse. This fact support the hypothesis that tumor clones actively switch effector CD8+ cells through the PD1L/PD-1 pathway into an immunotolerant state. PD-1 may be a potential marker of systemic immune dysregulation in lymphoma patients and further exploration of T cell subpopulations may define its role as a potential biomarker. Supported by grants: MSM 6198959205, LF-2012-007 and MZ ÈR IGA NT 11103. Disclosures: Prochazka: Roche: Travel grants Other.


2017 ◽  
Vol 65 (2) ◽  
pp. 551-563 ◽  
Author(s):  
Angelika Schmidt ◽  
Cosima C. Rieger ◽  
Ram Kumar Venigalla ◽  
Szabolcs Éliás ◽  
Regina Max ◽  
...  

2018 ◽  
Vol 199 ◽  
pp. 22-31 ◽  
Author(s):  
Joy E. Tomlinson ◽  
Bettina Wagner ◽  
M. Julia B. Felippe ◽  
Gerlinde R. Van de Walle

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