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Chronic T cell receptor stimulation unmasks NK receptor signaling in peripheral T cell lymphomas via epigenetic reprogramming
Sylvain Carras, Dimitri Chartoire, Sylvain Mareschal, Maël Heiblig, Antoine Marçais, Rémy Robinot, Mirjam Urb, Roxane M. Pommier, Edith Julia, Amel Chebel, Aurélie Verney, Charlotte Bertheau, Emilie Bardel, Caroline Fezelot, Lucien Courtois, Camille Lours, Alyssa Bouska, Sunandini Sharma, Christine Lefebvre, Jean-Pierre Rouault, David Sibon, Anthony Ferrari, Javeed Iqbal, Laurence de Leval, Philippe Gaulard, Alexandra Traverse-Glehen, Pierre Sujobert, Mathieu Blery, Gilles Salles, Thierry Walzer, Emmanuel Bachy, Laurent Genestier
Sylvain Carras, Dimitri Chartoire, Sylvain Mareschal, Maël Heiblig, Antoine Marçais, Rémy Robinot, Mirjam Urb, Roxane M. Pommier, Edith Julia, Amel Chebel, Aurélie Verney, Charlotte Bertheau, Emilie Bardel, Caroline Fezelot, Lucien Courtois, Camille Lours, Alyssa Bouska, Sunandini Sharma, Christine Lefebvre, Jean-Pierre Rouault, David Sibon, Anthony Ferrari, Javeed Iqbal, Laurence de Leval, Philippe Gaulard, Alexandra Traverse-Glehen, Pierre Sujobert, Mathieu Blery, Gilles Salles, Thierry Walzer, Emmanuel Bachy, Laurent Genestier
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Research Article Hematology Immunology

Chronic T cell receptor stimulation unmasks NK receptor signaling in peripheral T cell lymphomas via epigenetic reprogramming

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Abstract

Peripheral T cell lymphomas (PTCLs) represent a significant unmet medical need with dismal clinical outcomes. The T cell receptor (TCR) is emerging as a key driver of T lymphocyte transformation. However, the role of chronic TCR activation in lymphomagenesis and in lymphoma cell survival is still poorly understood. Using a mouse model, we report that chronic TCR stimulation drove T cell lymphomagenesis, whereas TCR signaling did not contribute to PTCL survival. The combination of kinome, transcriptome, and epigenome analyses of mouse PTCLs revealed a NK cell–like reprogramming of PTCL cells with expression of NK receptors (NKRs) and downstream signaling molecules such as Tyrobp and SYK. Activating NKRs were functional in PTCLs and dependent on SYK activity. In vivo blockade of NKR signaling prolonged mouse survival, demonstrating the addiction of PTCLs to NKRs and downstream SYK/mTOR activity for their survival. We studied a large collection of human primary samples and identified several PTCLs recapitulating the phenotype described in this model by their expression of SYK and the NKR, suggesting a similar mechanism of lymphomagenesis and establishing a rationale for clinical studies targeting such molecules.

Authors

Sylvain Carras, Dimitri Chartoire, Sylvain Mareschal, Maël Heiblig, Antoine Marçais, Rémy Robinot, Mirjam Urb, Roxane M. Pommier, Edith Julia, Amel Chebel, Aurélie Verney, Charlotte Bertheau, Emilie Bardel, Caroline Fezelot, Lucien Courtois, Camille Lours, Alyssa Bouska, Sunandini Sharma, Christine Lefebvre, Jean-Pierre Rouault, David Sibon, Anthony Ferrari, Javeed Iqbal, Laurence de Leval, Philippe Gaulard, Alexandra Traverse-Glehen, Pierre Sujobert, Mathieu Blery, Gilles Salles, Thierry Walzer, Emmanuel Bachy, Laurent Genestier

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Figure 7

NKRs are functional and signal through SYK in mPTCLs.

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NKRs are functional and signal through SYK in mPTCLs.
(A) Western blots ...
(A) Western blots showing expression of the adaptor proteins FcεRIg and DAP12 in 9 mPTCL samples. Enriched NK cells and sorted B and T cells were used as positive and negative controls, respectively. GAPDH was used as a loading control. (B) Representative FACS analysis of CD107a and IFN-γ expression in a cytotoxicity assay of mPTCL cells in the basal state and after NKaR or TCR-CD3 complex activation. Scatter plot shows CD107a (black) and IFN-γ (red) expression in the basal state (n = 12), after anti-CD3/anti-CD28 (n = 9, PTCL cells expressing low levels of CD3 were not analyzed) and after NKR activation (n = 12) (right panel). *P < 0.05, **P < 0.01, ***P < 0.001, and ****P < 0.0001, by Mann-Whitney U test with Holm’s post hoc correction. (C) Representative FACS analysis of CD107a and IFN-γ expression in mPTCL cells in the basal state or activated with anti-CD3/CD28 (α-CD3) or anti-NKaR (α-NKaRs) in the presence of vehicle or P505-15. Data are representative of 2 different mPTCLs. (D) Representative FACS analysis of granzyme B expression in mPTCL cells (red) compared with staining with an isotype control (black). Scatter plot shows granzyme B expression in normal T cells (n = 3), NK cells (n = 3), and mPTCL cells (n = 9). *P < 0.05, by Mann-Whitney U test comparing mPTCL cells and normal T cells. (E) Western blots show pY1217-PLCγ2 and total PLCγ2 expression in a representative mPTCL in the basal state and after NKaR in vitro activation in the presence of vehicle or P505-15. The relative phosphorylation of pY1217-PLCγ2/total PLCγ2 of 4 mPTCLs was quantified in these different conditions. Sorted stimulated B and T cells from WT mice were used as positive and negative controls, respectively. GAPDH was used as a loading control. *P < 0.05, by Mann-Whitney U test.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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