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Biology subjects

Sheraj, I.

Publications and source records attributed to Sheraj, I..

2 recordsLinked to original sources

Palmitate-induced mitochondrial damage restricts histone acetylation in CD8+ T cells to impair anti-tumor immunity.

Accumulation of lipids in the tumor microenvironment (TME) is a feature of several solid tumors and increased palmitate (PA) availability fosters tumor progression and metastases. The intrinsic effects of PA on cancer cells are well understood, but its role in modulating CD8+ T cells (CTL) functional performances remains elusive. Here, we found that PA alters the mitochondrial metabolism of CTL and prevents their effector functions in an irreversible manner, resulting in impaired antitumoral immunity. Mechanistically, PA-induced mitochondrial block demotes histone acetylation and chromatin accessibility and decrease transcription of genes promoting DNA replication and production of effector molecules. We identified the metabolic enzyme Sphingosine Kinase 2 (SPHK2) as a molecular target of PA in establishing CTL dysfunction. Consistently, pharmacological inhibition of SPHK2 restored CTL mitochondrial fitness, effector functions and anti-tumor potential. Thus, we reveal a critical function of PA in tumor progression by undermining CTL antitumor immunity and highlight the therapeutic potential of inhibiting SPHK2 activity to optimize T cell functionality.

immunology↗

Mitochondria-derived nuclear ATP surge protects against confinement-induced proliferation defects

The physical microenvironment regulates cell behaviour. However, whether physical confinement rewires the subcellular localisation of organelles and affect metabolism is unknown. Proteomics analysis revealed that cellular confinement induces a strong enrichment of mitochondrial proteins within the nuclear compartment. High-resolution microscopy confirmed that mechanical cell confinement leads to a rapid re-localisation of mitochondria to the nuclear periphery. This nuclear-mitochondrial proximity is mediated by an endoplasmic reticulum-based net that entraps the mitochondria in an actin-dependent manner. Functionally, the mitochondrial proximity results in a nuclear ATP surge, which can be reverted by the pharmacological inhibition of mitochondrial ATP production or via actin depolymerisation. Inhibition of the confinement-derived nuclear ATP surge reveals long-term effects on cell fitness which arise from alterations of chromatin states, delayed DNA damage repair, and impaired cell cycle progression. Together, our data describe a confinement-induced metabolic adaptation that is required to enable prompt DNA damage repair and cell cycle progression by allowing chromatin state transitions.

cell biology↗