These studies show that a complete TOX knockout or silencing has no effect on exhaustion marker expression levels or the transcriptome in repeat-anti-CD3/anti-CD28-stimulated primary human T cells in vitro.
Abstract
T cells, which are central mediators of the adaptive immune response, can become dysfunctional when faced with persistent antigen stimulation, such as in chronic infections and cancer. This dysfunctional state, known as T cell exhaustion, limits pro-inflammatory T cell function, dampens cytotoxicity and proliferative capacity, and promotes expression of inhibitory receptors. Thymocyte Selection-Associated High Mobility Group Box (TOX) has been proposed as a master regulator of T cell exhaustion due to its necessity for survival of exhausted T cells as well as its role in shaping chromatin accessibility in murine models. Interestingly, partial Tox deficiency may improve control of murine tumors. In human tumor infiltrating lymphocytes, high TOX expression is associated with poor disease prognosis. However, the mechanisms by which TOX expression is regulated and its importance to human T cell exhaustion remain poorly understood. We report here a robust strategy for generating a genetic knockout of TOX via base editing or a knockout phenocopy via epigenome editing in primary human T cells ex vivo, with each approach resulting in near-complete elimination of TOX mRNA. Guided by enhancer prediction data, we use epigenome editing to identify several human cis-regulatory regions which function to silence TOX expression to varying levels when targeted with CRISPRoff. TOX deficiency had no measurable impact on survival or exhaustion marker levels in human CD8+ T cells in a model of anti-CD3/anti-CD28 stimulation in vitro. In agreement with these data, expression profiling revealed that TOX knockout effects on the transcriptome are limited to TOX itself, with no observable downstream effects. These studies show that a complete TOX knockout or silencing has no effect on exhaustion marker expression levels or the transcriptome in repeat-anti-CD3/anti-CD28-stimulated primary human T cells in vitro. Taken together, we developed a powerful toolkit of genome and epigenome editing strategies to modify expression of a gene of interest in primary human T cells and study its function. We propose that this framework can be applied to additional genes of interest both to gain mechanistic information about T cell function, as well as develop strategies for improvement of T cell immunotherapies.
These findings identify a novel microbial SCFA as a potential metabolic-epigenetic regulator, capable of reactivating effector programs in TEX cells while blocking terminal exhaustion, and provide insights into developing new therapeutic approaches to reprogram TEX cells and enhance the efficacy of T cell immunotherapy.
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A complementary therapeutic strategy is discussed: engineering T cells for greater durability in the TME through knockout of exhaustion-associated transcription factors, and reprogramming tumour cells with DNA methyltransferase (DNMTi) and histone deacetylase (HDACi) inhibitors to restore immunogenicity.
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Findings highlight a HuR-SerpinB9 axis that regulates T-cell senescence and persistence, offering a potential therapeutic target in cancer and autoimmune diseases.
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