Immunoregulatory cell therapy with lentiviral-mediated FOXP3 converted CD4+ T cells into Treg cells: towards the proof-of-concept application in IPEX syndrome

Cytotherapy ◽  
2019 ◽  
Vol 21 (5) ◽  
pp. S14 ◽  
Author(s):  
Y. Sato ◽  
L. Passerini ◽  
M. Roncarolo ◽  
R. Bacchetta
Author(s):  
Kuan Lai ◽  
Wenjing Zhang ◽  
Songshan Li ◽  
Zhiwen Zhang ◽  
Shuangde Xie ◽  
...  

Abstract Pemphigus vulgaris (PV) is a chronic and potentially life-threatening autoimmune blistering disease. Aberrant mTOR pathway activity is involved in many autoimmune diseases. This study investigated the correlation of mTOR pathway (PI3K/AKT/mTOR/p70S6K) activity with the loss of balance in T helper 2/regulatory T (Th2/Treg) cells in the peripheral blood of PV patients. CD4+ T cells were isolated from 15 PV patients and 15 healthy controls (HCs), the ratios of Th2/CD4+ T cells and Treg/CD4+ T cells, the activity of the mTOR pathway (PI3K/AKT/mTOR/p70S6K), the transcription factors and cytokines of Th2 and Treg cells were detected. Primary CD4+ T cells from PV patients were cultured under Th2- or Treg-polarizing conditions with or without rapamycin in vitro. We found that PV patients showed significantly elevated serum IL-4 when compared with HCs, and serum IL-4 level was positively correlated with the titer of anti-Dsg1/3 antibody and disease severity, while the serum TGF-β level was negatively correlated with the titer of anti-Dsg3 antibody and disease severity. Meanwhile, PV patients showed increased Th2/CD4+ T cell ratio; decreased Treg/CD4+ T cell ratio; elevated mRNA of PI3K, AKT, mTOR and protein of PI3K (P85), AKT, p-AKT (Ser473), mTOR, p-mTOR (Ser2448), p-p70S6K (Thr389), GATA3; reduced protein of forkhead box protein 3. Rapamycin inhibited Th2 cell differentiation and promoted Treg cell differentiation in vitro. These data suggest a close association between mTOR pathway activation and the loss of balance in Th2/Treg cells in peripheral blood of PV patients. Inhibiting mTORC1 can help restore the Th2/Treg balance.


Author(s):  
Johan Verhagen ◽  
Edith Van der Meijden ◽  
Vanessa Lang ◽  
Andreas Kremer ◽  
Simon Völkl ◽  
...  

Since December 2019, Coronavirus disease-19 (COVID-19) has spread rapidly across the world, leading to a global effort to develop vaccines and treatments. Despite extensive progress, there remains a need for treatments to bolster the immune responses in infected immunocompromised individuals, such as cancer patients who recently underwent a haematopoietic stem cell transplantation. Immunological protection against COVID-19 is mediated by both short-lived neutralising antibodies and long-lasting virus-reactive T cells. Therefore, we propose that T cell therapy may augment efficacy of current treatments. For the greatest efficacy with minimal adverse effects, it is important that any cellular therapy is designed to be as specific and directed as possible. Here, we identify T cells from COVID-19 patients with a potentially protective response to two major antigens of the SARS-CoV-2 virus, Spike and Nucleocapsid protein. By generating clones of highly virus-reactive CD4+ T cells, we were able to confirm a set of 9 immunodominant epitopes and characterise T cell responses against these. Accordingly, the sensitivity of T cell clones for their specific epitope, as well as the extent and focus of their cytokine response was examined. Moreover, by using an advanced T cell receptor (TCR) sequencing approach, we determined the paired TCR sequences of clones of interest. While these data on a limited population require further expansion for universal application, the results presented here form a crucial first step towards TCR-transgenic CD4+ T cell therapy of COVID-19.


Medicine ◽  
2017 ◽  
Vol 96 (17) ◽  
pp. e6615 ◽  
Author(s):  
Xingxing Liu ◽  
Hui Hu ◽  
Heng Fan ◽  
Dongmei Zuo ◽  
Zhexing Shou ◽  
...  
Keyword(s):  
T Cells ◽  

2019 ◽  
Vol 70 (1) ◽  
pp. e456
Author(s):  
Sophia Schreiber ◽  
Melanie Honz ◽  
Matthias Schiemann ◽  
Christina Zielinski ◽  
Ulrike Protzer ◽  
...  

Blood ◽  
2007 ◽  
Vol 110 (11) ◽  
pp. 357-357
Author(s):  
S. Mittal ◽  
N.A. Marshall ◽  
L. Duncan ◽  
D.J. Culligan ◽  
R.N. Barker ◽  
...  

Abstract Regulatory T (Treg) cells contribute to immune evasion by malignancies. To investigate their importance in non-Hodgkin’s lymphoma (NHL), we enumerated Treg cells in peripheral blood mononuclear cells (PBMC) and involved tissues from 30 newly diagnosed patients. CD25+FoxP3+CD127lowCD4+ Treg cells were increased markedly in PBMC (median=20.4% CD4 T cells, n=20) versus healthy controls (median=3.2%, n=13; p<0. 001, rank sum test) and correlated with serum lactate dehydrogenase (n=14; Rs=0.79, p <0.0001) and disease stage. The median Treg percentage of CD4 T cells from early stages (Ann Arbor stage I and II, n=4) was 12.2%, whereas it was 25.4% in advanced disease (Ann Arbor stages III, IV or bulky stage II, ≥5cm, n=10; p =0.013). We also enumerated Tr1 cells, both in peripheral blood and involved tissue samples, and again compared with healthy controls but no significant differences were noted. We documented poor proliferation of T cells with mitogen ConA and almost none with recall antigens PPD and DPT in both PBMC and involved tissue samples (n=9). T cell hyporesponsiveness was reversed by depleting CD25+ cells (n=4), or by adding anti-CTLA-4 (n=3), supporting the view that Treg cells explain the systemic immunosuppression seen in NHL. A high proportion of Treg cells was also present in involved tissues (median=38.8% CD4 T cells, n=15) versus reactive nodes (median=11.6%, n=2, p=0.02). Therefore, we tested the hypothesis that a regulatory phenotype is induced from conventional T cells within the tumor microenvironment. When autologous CD25- PBMC fractions were incubated with tumor cells from patients (n=6) in vitro, there was consistent strong induction and then expansion of cells with the CD4+CD25+FoxP3+ phenotype of classic ‘natural’ Treg cells as indicated by CFSE dilution. This induction was dependent on tumor dose and was seen when we depleted lymphoid dendritic cells from the involved tissue cell suspension using anti-CD304, or enriched the tumor cells by positive selection of CD20+ cells. This population was confirmed to be suppressive in function (n=3). We also investigated the mechanisms of this induction. Both cell-cell contact and soluble factors appeared important. In two of four cases, some induction was also noted with transwell experiments or with tumor cell conditioned supernatant, indicating that in these cases soluble factors are also involved apart from direct cell-cell contact mechanism. Reports elsewhere suggest roles for prostaglandin E2, tryptophan catabolism, IL-9 and PD-1 interaction with its ligands in inducing a Treg phenotype. Thus, we used cyclooxygenase inhibitors aspirin and sulindac, the indoleamine 2, 3-dioxygenase (IDO) inhibitor 1-methyl tryptophan (1MT), anti-IL-9 receptor antibody and blocking anti-PDL-1 or anti-PDL-2 antibodies in four samples. None of these reagents inhibited Treg induction apart from one case where both anti-PDL-1 and anti-PDL-2 blocking antibodies inhibited Treg induction. We conclude that NHL cells are powerful inducers of Treg cells, which may represent a new therapeutic target.


Blood ◽  
2007 ◽  
Vol 110 (11) ◽  
pp. 1347-1347
Author(s):  
Zhi-Zhang Yang ◽  
Anne J. Novak ◽  
Thomas E. Witzig ◽  
Stephen M. Ansell

Abstract Numerous clinical therapies have attempted to modulate tumor cell immunity, but for the most part, have proven unsuccessful. The inability to produce or augment an effective immune response is due in part to regulatory T (Treg) cells, which inhibit CD4 and CD8 T cell function. Our group has recently shown that Treg cell numbers are elevated in NHL tumors and that NHL B cells induce the development of Treg cells thereby inhibiting anti-tumor responses. The ability of NHL B cells to direct the cellular composition of their microenvironment is critical to our understanding of tumor immunity and we therefore wanted to determine if NHL B cells also directed the expansion or reduction of other T cell populations. IL-17-secreting CD4+ T cells (TH17), a newly characterized CD4+ T helper cell lineage, promote inflammation and play an important role in autoimmune disease. IL-17 has been shown to inhibit tumor cell growth suggesting a potential role for TH17 cells in anti-tumor immunity. We therefore set out to determine if TH17 cells were present in NHL tumors and whether or not their numbers were regulated by NHL B cells. Using unsorted mononuclear cells from malignant lymph nodes, we were unable to detect IL-17 expression in resting CD4+ T cells or CD4+ T cells activated with PMA/Ionomycin stimulation (less than 1%). However, IL-17-secreting CD4+ T cells could be detected in significant numbers in inflammatory tonsil and normal PBMCs. Interestingly, depletion of CD19+ NHL B cells from mononuclear cells obtained from patient biopsies resulted in detection of a clear population of IL-17-secreting CD4+ T cells (5%). These results suggest that NHL B cells suppress TH17 cell differentiation. The frequency of IL-17-secreting CD4+ T cells could not be further enhanced by the addition of exogenous TGF-b and IL-6, a cytokine combination favoring for TH17 differentiation, suggesting a further impairment of TH17 cell differentiation in the tumor microenvironment. In contrast, Foxp3 expression could be detected in resting CD4+ T cells (30%) and could be induced in CD4+CD25−Foxp3− T cells activated with TCR stimulation (28%). Contrary to the inhibition of TGF-b-mediated TH17 differentiation, Foxp3 expression could be dramatically upregulated by TGF-b in intratumoral CD4+ T cells (35%). In addition, lymphoma B cells strongly enhanced Foxp3 expression in intratumoral CD4+CD25−Foxp3−. Furthermore, when added together, the frequency of Foxp3+ T cells and Foxp3-inducible cells reached up to 60% of CD4+ T cells in tumor microenvironment of B-cell NHL. These findings suggest that the balance of effector TH17 cells and inhibitory Treg cells is disrupted in B-cell NHL and significantly favors the development of inhibitory Treg cells. Our data indicate that lymphoma B cells are key factor in regulating differentiation of intratumoral CD4+ T cells toward inhibitory CD4+ T cells.


Blood ◽  
2010 ◽  
Vol 116 (21) ◽  
pp. 352-352 ◽  
Author(s):  
Miriam E. Mossoba ◽  
Jacopo Mariotti ◽  
Xiao-Yi Yan ◽  
Anu Gangopadhyay ◽  
Mathew Winterton ◽  
...  

Abstract Abstract 352 Ex-vivo expansion of murine donor CD4+ T cells using co-stimulation, IL-4, and rapamycin generated a T cell population (T-rapa cells) that beneficially modulated GVHD, graft rejection, and GVT effects. We thus conducted a clinical trial to evaluate T-rapa cell infusion after HLA-matched sibling allogeneic HCT. In one trial arm, T-rapa cell infusion (2.5 × 107 cells/kg; d 14 post-HCT) safely accelerated alloengraftment after low-intensity host conditioning, as evidenced by: conversion of mixed chimerism to predominant donor chimerism in the majority of patients by d 100 post-HCT and a low rate of grade II to IV acute GVHD (10%; 4/40 cases). This abstract characterizes the T-rapa clinical products (n=48), particularly with respect to the balance of Th1, Th2, and Treg cells and the magnitude of effector function (cytokine secretion); this latter aspect is relevant because in animal models, T cells of limited differentiation mediate increased in vivo effects upon adoptive transfer. Transplant donors underwent steady-state leukapheresis. CD4+ T cells were then purified (Miltenyi.. CliniMACS) and expanded in Lifecell.. bags for 12 days using co-stimulation (anti-CD3, anti-CD28 coated magnetic beads) and media containing rhIL-2, rhIL-4, and rapamycin. T-rapa products contained minimal cells of naive phenotype (CD45RA+ cells: 2 ± 0.4%) and were comprised of both central memory cells (CCR7+: 28 ± 2%) and effector memory cells (CCR7−: 67 ± 2%). Phenotyping assays were performed on T-rapa clinical products at d 12 of culture (time of cell product infusion); in addition, to assess phenotype stability, assays were performed after an additional 6 days of culture after co-stimulation without IL-4 and rapamycin (“day 18”). For comparison, four separate CD4+ T cell culture conditions were established from each of n=8 normal donors. For these control cultures, CD4+ T cells were co-stimulated and propagated for 12 days in tissue culture flasks using: (1) IL-2, IL-4 (“Th2”); (2) IL-2, IL-4 plus rapamycin (“T-rapa”); (3) IL-2, IFN-a (“Th1”); and (4) IL-2, IFN-a plus rapamycin (“Th1-rapa”). Phenotyping results are shown in Fig. 1. In the four flask cultures, there was modest skewing of the Th2/Th1 balance, as indicated by relatively comparable expression of the Th2 transcription factor GATA-3 and the Th1 transcription factor T-bet by intra-cellular flow cytometry (Fig. 1A). In marked contrast, day 12 T-rapa clinical products expressed a highly polarized Th2/Th1 balance (GATA-3/T-bet ratio of 28 ± 9 [mean ± SEM]); this Th2/Th1 balance was relatively stable after additional culture without IL-4 and rapamycin (“Day 18”). The median frequency of transcription factor expression was 11.5% for GATA-3 (range: 3–37%), 5.1% for T-bet (range: 0–18%), and &lt; 1% expression of the Treg transcription factor FoxP3 (range: 0–0.7%). T-rapa clinical products were evaluated for cytokine secretion in response to co-stimulation at day 12 and day 18 of culture; supernatants were tested for Th2 cytokines (Fig. 1B) and Th1/Th17 cytokines (Fig. 1C). Day 12 T-rapa clinical products secreted each Th2 cytokine measured. The magnitude (pg/ml) of T-rapa cell Th2 cytokine secretion was approximately 2-log reduced relative to control Th2 cells; day 18 T-rapa cell secretion of Th2 cytokines was increased relative to day 12 values, but still reduced relative to control Th2 cells. Day 12 T-rapa clinical products did not secrete IL-17 and secreted low levels of IFN-g, IL-2, and TNF-a (1-3 log reduced relative to Th1 control cells). Day 18 T-rapa cell secretion of IFN-g and TNF-a was increased relative to day 12 values, but still reduced relative to control Th1 cells. Remarkably, day 18 T-rapa cell secretion of IL-2 was greatly diminished relative to day 12 values, and IL-17 secretion remained at minimal levels. In conclusion, T-rapa cell clinical products are comprised of a balance of Th2 and Th1 effector CD4+ T cells, with minimal contamination from Treg or Th17 cells. The T-rapa cell clinical products possessed limited differentiation plasticity and secreted low levels of Th2 and Th1 cytokines. Adoptive transfer of a balance of minimally differentiated and fixed polarity donor Th2/Th1 cells represents a novel approach to safely accelerate alloengraftment after low-intensity conditioning. Disclosures: No relevant conflicts of interest to declare.


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