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Marotel, M.

Publications and source records attributed to Marotel, M..

2 recordsLinked to original sources

More than a ligand: PD-L1 promotes oncolytic virus infection via a metabolic shift that inhibits the type I interferon pathway.

Targeting the PD-1/PD-L1 axis has transformed the field of immune-oncology. While conventional wisdom initially postulated that PD-L1 serves as the inert ligand for PD-1, an emerging body of literature suggests that PD-L1 has cell-intrinsic functions in immune and cancer cells. In line with these studies, here we show that engagement of PD-L1 via cellular ligands or agonistic antibodies, including those used in the clinic, potently inhibits the type I interferon pathway in cancer cells. Hampered type I interferon responses in PD-L1-expressing cancer cells resulted in enhanced infection with oncolytic viruses in vitro and in vivo. Consistently, PD-L1 expression marked tumor explants from cancer patients that were best infected by oncolytic viruses. Mechanistically, PD-L1 suppressed type I interferon by promoting a metabolic shift characterized by enhanced glucose uptake and glycolysis rate. Lactate generated from glycolysis was the key metabolite responsible for inhibiting type I interferon responses and enhancing oncolytic virus infection in PD-L1-expressing cells. In addition to adding mechanistic insight into PD-L1 intrinsic function and showing that PD-L1 has a broader impact on immunity and cancer biology besides acting as a ligand for PD-1, our results will also help guide the numerous efforts currently ongoing to combine PD-L1 antibodies with oncolytic virotherapy in clinical trials. Once sentence summaryPD-L1 promotes oncolytic virus efficacy.

cancer biology↗

Peripheral Natural Killer cells from chronic hepatitis B patients display molecular hallmarks of T cell exhaustion

A significant proportion of individuals infected by HBV develops chronic infection. Antiviral effectors such as Natural Killer (NK) cells have impaired functions in these patients, but the molecular mechanism responsible for this dysfunction remains poorly characterized. Here, we show that peripheral NK cells from chronic hepatitis B (CHB) patients have a defective capacity to produce IFN-{gamma}, MIP1-{beta} and TNF- but retain an intact killing capacity. This functional phenotype was associated with a decrease in the expression of NKp30 and CD16, combined with defects in IL-15 stimulation of the mTOR pathway. Transcriptome analysis of NK cells in CHB patients further revealed a strong enrichment for transcripts typically expressed in exhausted T cells suggesting that NK cell dysfunction and T cell exhaustion rely on common molecular mechanisms. In particular, the transcription factor thymocyte selection-associated HMG box protein (TOX) and several of its targets, including immune checkpoints, were over-expressed in NK cells of CHB patients. This T cell exhaustion signature was predicted to be dependent on the calcium (Ca2+)-associated transcription factor NFAT. In line with this, when stimulating the Ca2+-dependent pathway in isolation, we recapitulated the dysfunctional phenotype. Thus, deregulated Ca2+ signalling could be a central event in both T cell exhaustion and NK cell dysfunction that occur during chronic infections.

immunology↗