CANNABIDIOL ENHANCES INTESTINAL CB2 RECEPTOR EXPRESSION AND ACTIVATION INCREASING REGULATORY T CELLS AND REDUCES MURINE ACUTE GRAFT-VERSUS-HOST DISEASE WITHOUT INTERFERING WITH THE GRAFT-VERSUS-LEUKEMIA RESPONSE

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Bárbara Betônico Berg ◽  
Jaqueline Silva Soares ◽  
Isabela Ribeiro Paiva ◽  
Barbara Maximino Rezende ◽  
Milene Alvarenga Rachid ◽  
...  
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2016 ◽  
Vol 11 (3) ◽  
pp. e0152823 ◽  
Author(s):  
Akari Hashimoto ◽  
Tsutomu Sato ◽  
Satoshi Iyama ◽  
Masahiro Yoshida ◽  
Soushi Ibata ◽  
...  

2015 ◽  
Vol 195 (2) ◽  
pp. 717-725 ◽  
Author(s):  
Jun Li ◽  
Jessica Heinrichs ◽  
Kelley Haarberg ◽  
Kenrick Semple ◽  
Anandharaman Veerapathran ◽  
...  

Blood ◽  
2011 ◽  
Vol 118 (21) ◽  
pp. 2987-2987
Author(s):  
Tina J Boeld ◽  
Kristina Doser ◽  
Corinna Lang-Schwarz ◽  
Elisabeth Huber ◽  
Reinhard Andreesen ◽  
...  

Abstract Abstract 2987 Acute graft-versus-host disease (GVHD) is a frequent complication after allogeneic bone marrow transplantation (BMT). We previously showed that the adoptive transfer of donor-type CD4+CD25+ regulatory T cells (Treg) at the time of BMT prevents acute GVHD in murine models. However, the therapeutic potential of donor-derived Treg cells for the treatment of established acute GVHD has not yet been examined in detail. In analogy to potential clinical applications we now tested the capacity of in vitro expanded Treg cells to ameliorate acute GVHD after haploidentical BMT (BALB/c→CB6F1). CD4+CD25highCD62L+ Treg cells were purified by FACS and stimulated polyclonally using anti-CD3/CD28-coated beads. Cells expanded on average 130±19-fold (n=7) within 2 wks and maintained high levels of FoxP3 expression (96, 8±0, 8% FoxP3+ cells; n=7) as well as potent immunosuppressive activity in vitro. For the induction of acute GVHD CB6F1 recipients were lethally irradiated and transplanted with 2.5×106 BM cells in combination with 5×106 splenocytes. All animals developed severe GVHD by d11, as revealed by an increase of the GVHD severity score (2.3±0.4 in GVHD animals vs 0±0 in BM controls, p<0.001, n=1–11) and by histological analyses of the gut (score: 7.8±0.4 for the GVHD group vs 0.2±0.2 for BM controls, p =0.046, n=3). When animals with acute GVHD were treated with 5×106 expanded CD4+CD25highCD62L+ Treg cells on d11 after BMT, they initially developed progressive GVHD comparable to non-treated GVHD animals, as indicated by weight loss and an increase of the GVHD score. However from d44 post BMT onwards, Treg-treated GVHD animals regained body weight (d44: 75±3% vs 67±2% of initial weight; p <0.05; n=9–10) and their clinical GVHD score (d44: 6±0 vs 4.3±0.4; p <0.05; n=9–10) decreased. While all non-treated GVHD animals succumbed to disease by d67 after transplantation, 50% of Treg-treated GVHD animals survived for at least 100d (p =0, 002; n=16–21). As immune reconstitution and in particular reconstitution of the lymphocyte compartment is impaired in animals with GVHD, we analyzed the effect of Treg therapy on the reconstitution of the lymphoid and myeloid compartment. At d21 after BMT spleen and BM of non-treated as well as Treg-treated GVHD animals were completely lymphopenic as compared to control mice and both organs contained exceptionally high numbers of granulocytes. Unlike non-treated GVHD animals, however, Treg-treated recipients by d60 showed a recovery of the lymphocyte compartment in spleen (10±2.6×106 T cells and 23.5±12.5×106 B cells in Treg-treated vs 3.0±0.6×106 T cells and 1.5±0.4×106 B cells in non-treated GVHD animals vs 26.25±2.6×106 T cells and 63.9±9.1×106 B cells in BM controls) and BM (0.7±0.1×106 T cells and 8.6±4×106 B cells in Treg-treated vs 0.3±0.01×106 T cells and 0.7±0.4 ×106 B cells in non-treated GVHD animals vs 0.4±0.03×106 T cells and 11.2±0.6×106 B cells in BM controls), while the number of granulocytes decreased constantly. Successful treatment with Treg cells was finally accompanied by a reconstitution of the lymphatic system comparable to control mice. Furthermore, successfully treated mice showed only mild histological signs of gut GVHD at d100 that was significantly lower then those in non-treated GVHD animals with end-stage disease (score: 4.2±1 vs 9.9±1.5 in treated vs non-treated animals, p =0.006, n=4–6). Taken together, these results indicate that in vitro expanded natural Treg cells may not only be effective for the prevention, but also for the treatment of acute GVHD after allogeneic BMT. Disclosures: No relevant conflicts of interest to declare.


Blood ◽  
2011 ◽  
Vol 118 (21) ◽  
pp. 4015-4015
Author(s):  
Atsushi Satake ◽  
Norifumi Sawamukai ◽  
Taku Kambayashi

Abstract Abstract 4015 FoxP3+ regulatory T cells (Tregs) suppress graft-versus-host disease (GVHD) while preserving graft-versus-tumor effects, making them an attractive target for GVHD therapy. The donor-derived Treg pool can potentially be derived from expansion of pre-existing natural Tregs (nTregs) or from de novo generation of inducible Tregs (iTregs) from donor conventional T cells (Tconvs) in the transplant recipient. Although the co-adoptive transfer of nTregs or in vitro -derived iTregs has been shown to prevent the development of GVHD, the relative contribution of these two Treg subsets in protection against GVHD has been unclear. To investigate the contribution of the different FoxP3+ Treg subsets, we used a MHC-mismatched mouse model of acute GVHD. Lethally irradiated (500cGy × 2) B6D2F1.SJL (H-2bxd) host mice were injected with T cell-depleted bone marrow cells and FACS-sorted Tconvs (WT or Foxp3-deficient) with or without FACS-sorted Tregs of C57BL/6 (H-2b) mouse origin. Weight loss in mice receiving Foxp3-deficient Tconvs alone was significantly more pronounced compared to other groups. The presence of either donor-derived nTregs or iTregs alone protected against GVHD-induced weight loss but was suboptimal compared to the presence of both donor-derived nTregs and iTregs. Next, we sought to determine how the donor-derived Treg pool was established during acute GVHD and tracked the appearance of Tregs in the secondary lymphoid organs at different time points post transplant. On Day 8 post GVHD induction, ∼5% of the donor-derived CD4+ T cells in the spleen were FoxP3+. We found that the Treg pool was comprised equally of donor-derived nTregs and iTregs. Unexpectedly, we found a significant fraction of CD8+FoxP3+ T cells (1–3% of all CD8+ T cells) in the spleen and in the lymph nodes. These CD8+FoxP3+ T cells representing ∼70% of the iTreg pool on Day 8 post GVHD induction. These CD8+FoxP3+ T cells shared phenotypic markers with their CD4+ counterparts and displayed suppressive activity, suggesting that they were bona fide iTregs. Both CD4+ and CD8+ Tregs expanded in vivo with IL-2 treatment and required IL-2 and TGFβ receptor expression for their generation. In summary, we found that donor derived-iTregs are generated during GVHD and contribute to suppression of acute GVHD induced-weight loss. Surprisingly, CD8+Foxp3+T cells were a major contributor to the donor derived-iTreg pool after transplantation. The generation of CD8+ and CD4+ iTregs occurred at least in part by a cell autonomous IL-2 and TGFβ receptor-dependent mechanism. Thus, our data suggest that in addition to increasing nTregs, concomitant strategies aimed at enhancing the conversion of donor-derived Tconvs to iTregs for example by engaging the IL-2 and TGFβ signaling pathways might be beneficial for the treatment of GVHD. Disclosures: No relevant conflicts of interest to declare.


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