scholarly journals STAT3 activation in large granular lymphocyte leukemia is associated with cytokine signaling and DNA hypermethylation

Leukemia ◽  
2021 ◽  
Author(s):  
Daehong Kim ◽  
Giljun Park ◽  
Jani Huuhtanen ◽  
Bishwa Ghimire ◽  
Hanna Rajala ◽  
...  

AbstractLarge granular lymphocyte leukemia (LGLL) is characterized by somatic gain-of-function STAT3 mutations. However, the functional effects of STAT3 mutations on primary LGLL cells have not been studied in detail. In this study, we show that CD8+ T cells isolated from STAT3 mutated LGLL patients have high protein levels of epigenetic regulators, such as DNMT1, and are characterized by global hypermethylation. Correspondingly, treatment of healthy CD8+ T cells with IL-6, IL-15, and/or MCP-1 cytokines resulted in STAT3 activation, increased DNMT1, EZH2, c-MYC, l-MYC, MAX, and NFκB levels, increased DNA methylation, and increased oxidative stress. Similar results were discovered in KAI3 NK cells overexpressing gain-of-function STAT3Y640F and STAT3G618R mutants compared to KAI3 NK cells overexpressing STAT3WT. Our results also confirm that STAT3 forms a direct complex with DNMT1, EZH2, and HDAC1. In STAT3 mutated LGLL cells, DNA methyltransferase (DNMT) inhibitor azacitidine abrogated the activation of STAT3 via restored SHP1 expression. In conclusion, STAT3 mutations cause DNA hypermethylation resulting in sensitivity to DNMT inhibitors, which could be considered as a novel treatment option for LGLL patients with resistance to standard treatments.

2001 ◽  
Vol 25 (8) ◽  
pp. 699-708 ◽  
Author(s):  
J.J Melenhorst ◽  
T.H Brümmendorf ◽  
M Kirby ◽  
P.M Lansdorp ◽  
A.J Barrett

2011 ◽  
Vol 25 (6) ◽  
pp. 1233-1241 ◽  
Author(s):  
Johann Steiner ◽  
Nicole Marquardt ◽  
Inga Pauls ◽  
Kolja Schiltz ◽  
Hassan Rahmoune ◽  
...  
Keyword(s):  
T Cells ◽  
Nk Cells ◽  

2008 ◽  
Vol 205 (13) ◽  
pp. 2965-2973 ◽  
Author(s):  
Susan Gilfillan ◽  
Christopher J. Chan ◽  
Marina Cella ◽  
Nicole M. Haynes ◽  
Aaron S. Rapaport ◽  
...  

Natural killer (NK) cells and CD8 T cells require adhesion molecules for migration, activation, expansion, differentiation, and effector functions. DNAX accessory molecule 1 (DNAM-1), an adhesion molecule belonging to the immunoglobulin superfamily, promotes many of these functions in vitro. However, because NK cells and CD8 T cells express multiple adhesion molecules, it is unclear whether DNAM-1 has a unique function or is effectively redundant in vivo. To address this question, we generated mice lacking DNAM-1 and evaluated DNAM-1–deficient CD8 T cell and NK cell function in vitro and in vivo. Our results demonstrate that CD8 T cells require DNAM-1 for co-stimulation when recognizing antigen presented by nonprofessional antigen-presenting cells; in contrast, DNAM-1 is dispensable when dendritic cells present the antigen. Similarly, NK cells require DNAM-1 for the elimination of tumor cells that are comparatively resistant to NK cell–mediated cytotoxicity caused by the paucity of other NK cell–activating ligands. We conclude that DNAM-1 serves to extend the range of target cells that can activate CD8 T cell and NK cells and, hence, may be essential for immunosurveillance against tumors and/or viruses that evade recognition by other activating or accessory molecules.


2013 ◽  
Vol 335 (2) ◽  
pp. 463-471 ◽  
Author(s):  
Kun Gao ◽  
Xiaoying Li ◽  
Li Zhang ◽  
Lin Bai ◽  
Wei Dong ◽  
...  

Leukemia ◽  
2011 ◽  
Vol 25 (10) ◽  
pp. 1587-1597 ◽  
Author(s):  
A Kreutzman ◽  
K Ladell ◽  
C Koechel ◽  
E Gostick ◽  
M Ekblom ◽  
...  

2021 ◽  
Vol 39 (15_suppl) ◽  
pp. 7517-7517
Author(s):  
Joshua W. Keegan ◽  
Frank Borriello ◽  
Stacey M. Fernandes ◽  
Jennifer R. Brown ◽  
James A. Lederer

7517 Background: Alloplex Biotherapeutics has developed a cellular therapeutic that uses ENgineered Leukocyte ImmunoSTimulatory cell lines called ENLIST cells to activate and expand populations of tumor killing effector cells from human peripheral blood mononuclear cells (PBMCs). This process leads to a 300-fold expansion of NK cells, CD8+ T cells, NKT cells, and TCRγδ T cells that are called SUPLEXA cells, which will be cryopreserved and transferred back into patients as an autologous immune cell therapy for cancer. In this study, PBMCs from CLL patients were used to generate SUPLEXA cells as a first approach to comparatively profile SUPLEXA cells from cancer patients and normal healthy volunteers (NHVs). Methods: ENLIST cell lines were engineered by expressing curated immunomodulatory proteins in the SK-MEL-2 melanoma cell line. Two million (M) PBMCs from 10 CLL patients or 2 NHVs were incubated with 0.4 M freeze/thaw killed ENLIST cells for 5 days in XVIVO-15 medium with 2% heat-inactivated human AB serum (XAB2) and then split 1:15 in XAB2 containing IL-7 and IL-15 to expand. After 9 days, SUPLEXA cells were harvested and cryopreserved. Results: Original PBMCs and matched SUPLEXA cells from each donor were thawed and characterized by mass cytometry (CyTOF) using a 47-marker antibody panel. CyTOF staining results of PBMCs from CLL patients demonstrated approximately 95% leukemia cells and few T cells, NK cells, B cells, and monocytes. CyTOF staining of SUPLEXA cells from all 10 CLL patients showed expansion of NK cells (17%), CD8 T cells (11%), and CD4 T cells (7.5%) that were similar in phenotype to SUPLEXA cells from NHVs showing high expression of granzymes and perforin that are indicative of potent tumor cell killing activity. Cancer cells in the original CLL PBMC samples were reduced to 0.78%. However, a population of non-T/non-B cells (60% ± 9.5%) was detected in SUPLEXA cells from all CLL patients that require further characterization. Next, SUPLEXA cells from CLL and NHV patients were comparatively tested for tumor cell killing activity at 2:1, 1:1, and 1:2 effector to target cell (MEL-14 melanoma cells expressing RFP) ratios. Percent killing of tumor cells by SUPLEXA cells prepared from CLL patients (77.8% ± 2.6% at 2:1) and NHVs (81.5% ± 0.3% at 2:1) were nearly identical at all effector to target ratios. Conclusions: We demonstrate for the first time that PBMCs from CLL patients can be converted into SUPLEXA cells despite low numbers of normal immune cells at baseline and the known immunologic impairment present in CLL patients. Importantly, SUPLEXA cells derived from CLL patients acquire potent tumor killing activity that is indistinguishable from SUPLEXA cells prepared from NHVs. Taken together, these findings support the feasibility of converting PBMCs from CLL patients with low percentages of NK and T cells into an autologous cellular therapy for cancer.


2014 ◽  
pp. 181-192
Author(s):  
Udo F. Hartwig ◽  
Maya C. André ◽  
Christian Münz

Blood ◽  
2020 ◽  
Vol 136 (Supplement 1) ◽  
pp. 23-24
Author(s):  
Milos D. Miljkovic ◽  
Kevin C Conlon ◽  
Jennifer Albert ◽  
Deborah Allen ◽  
Thomas A. Waldmann

BACKGROUND: Interleukin-15 (IL-15) is a member of the 4-α helix bundle family of cytokines. Administration of single-agent IL-15 to patients with cancer produced substantial increases and activation of natural killer (NK) cells and CD8+ T cells, but no clinical responses. Subsequent studies showed that IL-15 enhances the efficacy of anti-tumor monoclonal antibodies that work through antibody-dependent cell cytotoxicity, a process mediated by NK cells. In the MET-1 xenograft mouse model, the combination of IL-15 and the anti-CD52 antibody alemtuzumab led to significantly more durable responses than each agent by itself. Here we report the final results of the phase I trial of IL-15 and alemtuzumab in patients with relapsed and refractory T-cell lymphoma (NCT02689453). METHODS: In this phase I single-center trial IL-15 was given subcutaneously 5 days per week for 2 weeks in a standard 3+3 dose escalation scheme (DL1: 0.5μg/kg, DL2: 1μg/kg, DL3: 2μg/kg), followed by alemtuzumab 30mg intravenously three times weekly for 4 weeks. Primary endpoints were type and frequency of adverse events and the maximum tolerated dose of IL-15. RESULTS: A total of eleven patients (pts) were treated at DL1 (3), DL2 (4) and DL3 (4). Seven pts had acute adult T-cell leukemia (ATL), two had chronic ATL, and two had peripheral T-cell lymphoma not otherwise specified (PTCL-NOS). There were no dose-limiting toxicities through the maximum planned dose of 2μg/kg/day. Two pts both with acute subtype ATL were unable to complete treatment due to rapidly progressive disease early in their treatment course, but there was no evidence tumor simulation or expansion of circulating ATL cell numbers during the period of IL-15 administration Hematologic AEs included lymphopenia (all 11 pts, 7 with grade 3/4), neutropenia (8 pts, 2 with grade 3), anemia (10 pts, 1 with grade 3), and thrombocytopenia (4 pts, 1 with grade 3). The most common non-hematologic AEs were infusion-related reactions experienced by 10 of the 11 pts during alemtuzumab infusion, and urticaria (4, pts, 2 with grade 3, both of whom at MTD). Two pts had incidental findings of a catheter-associated thrombus and pulmonary emboli, necessitating institution of prophylactic anticoagulation for subsequent pts after which no additional thromboembolic events were seen. Infectious adverse events included one case each of CMV reactivation without end-org involvement, HSV reactivation, Zoster, bacterial sinusitis, and cellulitis (in a patient with ATL and skin involvement), all grade 2. There was no evidence of graft versus host disease in two pts with previous allogeneic stem cell transplantation, and there were no serious adverse events attributable to IL-15. Administration of IL-15 resulted in a median 2.1-fold increase (range 1.2-3.4) in absolute lymphocyte count, 2.5-fold (1-5.9) increase in the number of circulating CD8+ T cells, and 7.2-fold (1.1-17.1) increase in NK cells across all dose levels (Figure 1A). At the MTD, the median ALC, CD8+ T cell, and NK cell increases were 2, 2.1, and 15.3-fold respectively. The overall response rate was 45% with 2/11 complete responses (CR) and 3/11 partial responses (PR) (Figure 1B). Notably, all pts with leukemic disease attained CR in the blood (Figure 1C), with varying response in other compartments. A patient with acute ATL had a CR at first restaging but developed central nervous system relapse after four weeks; this remained the only site of disease until the patient's death 8 months later. A patient with PTCL-NOS had a delayed response, with a PR at 3 and CR at 5 months which was ongoing at 12-month follow-up. Two pts with chronic ATL had PRs which lasted 10 and 4 months, and a patient with acute ATL had a PR at first restaging which was ongoing at the end of treatment. In all pts, response was correlated with normalization of serum LDH and soluble CD25. Analysis of peripheral blood mononuclear cells from responders and non-responders using single-cell RNA-seq is under way and will be presented. CONCLUSION: Combination of IL-15 and alemtuzumab was safe at all dose levels administered with no evidence of treatment related disease stimulation. The contribution of IL-15 to the known clinical efficacy of alemtuzumab in relapsed/refractory T-cell malignancies needs to be assessed in a randomized trial. Further evaluation of IL-15 in the post-allogeneic transplant setting, particularly prior to donor lymphocyte infusion, is also planned. Disclosures No relevant conflicts of interest to declare. OffLabel Disclosure: alemtuzumab for T-cell lymphoma


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