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Inflammatory signals are sufficient to elicit TOX expression in mouse and human CD8+ T cells
Nicholas J. Maurice, Jacqueline Berner, Alexis K. Taber, Dietmar Zehn, Martin Prlic
Nicholas J. Maurice, Jacqueline Berner, Alexis K. Taber, Dietmar Zehn, Martin Prlic
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Research Article Immunology Inflammation

Inflammatory signals are sufficient to elicit TOX expression in mouse and human CD8+ T cells

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Abstract

T cell receptor (TCR) stimulation leads to the expression of the transcription factor thymocyte selection–associated high-mobility group box (TOX). Prolonged TCR signaling, such as encountered during chronic infections or in tumors, leads to sustained TOX expression, which is required for the induction of a state of exhaustion or dysfunction. Although CD8+ memory T (Tmem) cells in mice typically do not express TOX at steady state, some human Tmem cells express TOX but appear fully functional. This seeming discrepancy between mouse and human T cells has led to the speculation that TOX is differentially regulated between these species, which could complicate the interpretation of preclinical mouse model studies. We report here that, similar to TCR-mediated signals, inflammatory cytokines are also sufficient to increase TOX expression in human and mouse Tmem cells. Thus, TOX expression is controlled by the environment, which provides an explanation for the different TOX expression patterns encountered in T cells isolated from specific pathogen–free laboratory mice versus humans. Finally, we report that TOX is not necessary for cytokine-driven expression of programmed cell death 1. Overall, our data highlight that the mechanisms regulating TOX expression are conserved across species and indicate that TOX expression reflects a T cell’s activation state and does not necessarily correlate with T cell dysfunction.

Authors

Nicholas J. Maurice, Jacqueline Berner, Alexis K. Taber, Dietmar Zehn, Martin Prlic

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Figure 3

Cytokine-mediated TOX induction is limited in exhausted T cells.

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Cytokine-mediated TOX induction is limited in exhausted T cells.
(A and ...
(A and B) Changes in TOX expression within L. monocytogenes–expanded TCR-transgenic Tmem cells: OT-I, specific for OVA Ag and gBT-I, specific for gB Ag. MACS-enriched T cells from L. monocytogenes–expanded OT-I or gBT-I memory mice were stimulated with media alone (mock), recombinant IL-12, IL-15, and IL-18 in combination (IL-12/15/18; each at 100 ng/mL), or anti-CD3/CD28 microbeads (TCR) at a approximately 1:1 cell/bead ratio. (A and B) Representative TOX expression and TOX MedFI fold change during stimulation in L. monocytogenes–primed (A) OT-I and (B) gBT-I Tmem cells. (C and D) Changes in TOX expression within LCMV-specific TCR-transgenic P14 T cells expanded by acute (Armstrong) or chronic (Docile) LCMV infection. (C and D) Representative TOX expression and TOX MedFI fold change during stimulation in P14 T cells primed by (C) LCMV Armstrong and (D) LCMV Docile. TOX MedFI fold change was calculated against average TOX MedFI within mock stimulation in a batch-specific, time point–specific manner. We calculated indicated statistical significances using paired t tests. Each symbol represents a sample at a unique time point/condition, with bars delineating mean, which are connected by donor (n = 4 L. monocytogenes–OVA expanded OT-I memory mice across 2 experiments; n = 10 L. monocytogenes–gB expanded gBT-I memory mice across 2 experiments; n = 17 LCMV Armstrong-expanded P14 memory mice across 4 experiments; n = 8 LCMV Docile-expanded P14 memory mice across 2 experiments). Mouse identities are consistent between representative flow plots within the same generation/adoptive transfer condition. TOX, thymocyte selection–associated high-mobility group box; Tmem, memory T cells; LCMV, lymphocytic choriomeningitis virus; MACS, magnet-activated cell sorting; PD-1, programmed cell death protein 1; MedFI, median fluorescence intensity; TCR, T cell receptor; gB, glycoprotein B; Ag, antigen.

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