Mihaela Stefan-Lifshitz, Nicola Viola, Olga Meshcheryakova, Crystal Nieves Garcia, Pamela Mattar, Zhengzi Yi, Marie Louise Aoun, John C McAuliffe, Jonathan Smith, Vikas Mehta, Richard V Smith, Adam J Gersten, Weijia Zhang, Rajat Singh, Yaron Tomer
Immune checkpoint inhibitor (ICI) therapy triggers complications that are currently attributed solely to immune activation. We hypothesized that target tissue-specific mechanisms also play a role and studied these mechanisms in thyrocytes. We found that thyroidal PD-L1 acts as a cytoprotective regulator, promoting cell survival during cytokine-induced stress. PD-L1 suppression in thyrocytes amplified interferon-γ-driven stress by aberrantly activating AKT-ERK-mTORC1, inhibiting autophagy, augmenting cellular stress, and triggering apoptosis. In a mouse model of ICI-thyroiditis, anti-PD-L1 treatment triggered immune activation while promoting thyrocyte apoptosis. Mechanistically, in mice, both pharmacologic and genetic down-regulation of thyroidal PD-L1 caused autophagic defects. Our findings reveal a role for PD-L1 in protecting thyroid tissue from cytokine-mediated stress and suggest that anti-PD-L1 tissue toxicity may reflect both an immune-mediated attack and intrinsic cellular vulnerability. Our data provide a broader framework for understanding ICI adverse events and for guiding the development of treatment strategies.