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Biology subjects

Cohen-Daniel, L.

Publications and source records attributed to Cohen-Daniel, L..

2 recordsLinked to original sources

Limiting mitochondrial-derived ATP transfer to the cytosol enhances T-cell activation

T-cell activation requires a substantial increase in NAD+ production, often exceeding the capacity of oxidative phosphorylation (OXPHOS). To investigate how T cells adapt to this metabolic challenge, we generated T cell-specific ADP/ATP translocase-2 knockout (Ant2-/-) mice. Loss of Ant2, a crucial protein mediating ADP/ATP exchange between mitochondria and cytoplasm, induces OXPHOS restriction by limiting ATP synthase activity, impeding NAD+ regeneration. Interestingly, Ant2-/- naive T cells exhibited enhanced activation, proliferation, and effector functions compared to wild-type controls. Metabolic profiling revealed that these cells adopt an activated-like metabolic program with increased mitobiogenesis and anabolism. Pharmacological inhibition of ANT in wild-type T cells recapitulated the Ant2-/- phenotype, and improved adoptive cell therapy of cancer. Our findings suggest that Ant2-deficient T cells bypass the typical metabolic reprogramming required for activation, leading to enhanced T-cell function. These results highlight the critical role of mitochondrial metabolism in regulating T-cell fate and underscore the therapeutic potential of targeting ANT for immune modulation.

immunology↗

Enhanced methionine cycle suppresses naïve CD8+ T-cell maturation

The metabolic pathways controlling naive CD8+ T (Tn) cell maturation following thymic egress remain mostly undefined. This is important because immature Tn are a major component of peripheral immune tolerance in newborns and under lymphopenia. In this study we demonstrate that TMRM, a mitochondrial membrane potential marker, could be applied to rapidly identify an immature Tn cell population in the periphery. Applying this marker to perform metabolic and proteomic analysis, we show that immature Tn cells maintain accelerated methionine cycle in respect to mature Tn. This unique metabolic state was associated with restricted Tbx21 locus and diminished immune response in vitro and in vivo. Following our findings, we demonstrate that inhibition of methionine cycle leads to rapid functional maturation of Tn and recovery of immune response to stimuli. Our work provides insight into the way the rate of methionine cycling regulates T cell maturation, opening a path for metabolic manipulation of immune tolerance.

immunology↗