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Maurice De Sousa, D.

Publications and source records attributed to Maurice De Sousa, D..

2 recordsLinked to original sources

The Notch signaling pathway is a master regulator of CD8+ T cell exhaustion and differentiation during chronic infection

During chronic infection, the persistence of antigen and inflammation leads to the differentiation of CD8+ T cells into an exhausted state characterised by expression of inhibitory receptors (IRs) and the progressive loss of T cell functions. Among the different subsets of exhausted CD8+ T (Tex) cells, Tex progenitors expressing SLAMF6 and the transcription factor TCF-1 (TCF-1+) give rise to Tex effector-like cells expressing CX3CR1 and Tex terminal cells expressing CD101. PD-1/PD-L1 blockade acts on TCF-1+ Tex progenitor cells and promotes their differentiation into Tex effector-like cells. The molecular events controlling CD8+ Tex cell differentiation are still poorly defined. As Notch signaling may be sustained during chronic infection by persistent TCR stimulation and inflammation, we tested whether Notch signaling influences CD8+ T cell exhaustion. Using mice lacking (N1N2{triangleup}/{triangleup}) or not (N1N2fl/fl) Notch1/2 expression only in mature CD8+ T cells, we showed that the absence of Notch signal causes severe CD8+ T cell exhaustion during chronic LCMV infection. N1N2{triangleup}/{triangleup} Tex cells express higher levels of IRs and are less functional when compared to their wild-typee counterpart. In the absence of N1N2 receptors, Tex progenitor and Tex terminal cells accumulate and Tex cells cannot be reinvigorated by PD-1/PD-L1 blockade. We further demonstrated that Notch signaling is essential to promote the differentiation of Tex progenitors into Tex effector-like cells. Moreover, Notch signals, provided by stromal cells expressing the ligands Delta-like 1 and 4, are necessary during all stages of the infection to prevent severe exhaustion. Single-nucleus RNA and ATAC multiome profiling identifies Notch signaling as a critical role on effector transcriptional programming in exhausted CD8 T cells. Loss of Notch signaling impairs transcriptional program associated with migration and perception of CD4+ T cell help. Together, these alterations drive the differentiation of Tex progenitor cells toward a terminally exhausted Tex fate.

immunology↗

NR4A3 deficiency in CD8+ T cells improves adoptive T cell therapy of cancer

NR4A3 is a transcription factor that is rapidly induced in CD8+ T cells following antigenic recognition. We have previously shown that NR4A3 deficiency induces an early molecular program that promotes memory generation and enhances effector functions, which are two essential attributes for the success of adoptive cell therapy (ACT). Therefore, we tested the hypothesis that Nr4a3-/- CD8+ T cells would have outstanding efficacy in ACT of cancer. Our results show that ACT of melanoma-bearing mice with Nr4a3-/- effector CD8+ T cells provides a better tumor control than their wild-type counterpart. The therapeutic effect observed with Nr4a3-/- effector CD8+ T cells is even better than the one observed with ACT of Nr4a3+/+ effector CD8+ T cells in combination with anti-PD-L1 treatment. scRNA-seq analysis reveals a huge heterogeneity of tumor-infiltrating lymphocytes (TILs) states following ACT. The better tumor control observed with ACT of Nr4a3-/- CD8+ effectors without anti-PD-L1 treatment correlates with an enrichment of TILs within the clusters that are associated with the anti-PD-L1 response of wild-type TILs. Moreover, the clusters that are enriched in Nr4a3-/- TILs are the ones that are enriched for effector functions. Furthermore, Nr4a3-/- and Nr4a3+/+ effectors generate distinct progenitor populations. Pseudotime analysis suggests that these progenitors have different differentiation trajectories, which may explain why ACT with Nr4a3-/- effectors is more efficient. Therefore, modulation of NR4A3 activity may represent a new strategy to generate long-lived and highly functional T cells for ACT. One sentence summaryNR4A3 deficiency improves anti-tumor CD8+ T cell response

immunology↗