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◆ Cell metabolism2026-09-03

Aging microenvironment induces CD8+ T cell exhaustion by suppressing hepatic β-hydroxybutyrylate synthesis.

Yifeng Xiao, Yanling Zhang, Zihao Zhao, Zijian Zhang, Xiaohui Zhang, Pengju Chen, Jin Gu, Haichuan Zhu, Peng Jiang, Jie Cheng

原始摘要(英文原文)· Original abstract
The metabolic mechanisms by which aging blunts CD8+ T cell antitumor and pathogen defense remain unknown. We demonstrate that the aged microenvironment induces CD8+ T cell exhaustion by reducing β-hydroxybutyrate (3HB) bioavailability. Aging represses hepatic BDH1-dependent 3HB synthesis, restricting SLC16A1-mediated 3HB uptake. Hepatic BDH1 ablation recapitulates age-associated CD8+ T cell dysfunction, compromising antiviral and antitumor immunity, whereas 3HB supplementation reverses these deficits via protein β-hydroxybutyrylation. Using a 3HB-derived chemical probe, 3Halk, together with functional screening, we identify PRKAR1B as a primary effector of 3HB signaling. PRKAR1B β-hydroxybutyrylation inhibits the transcription factor cyclic AMP (cAMP)-responsive element modulator (CREM), which activates T cell exhaustion-related gene expression. Age-associated 3HB depletion enhances CREM-dependent transcription, sustaining CD8+ T cell exhaustion. Consistently, the aged microenvironment compromises chimeric antigen receptor (CAR) T antitumor activity, which is substantially restored by 3HB treatment. Collectively, this study uncovers a hepatic metabolism-derived 3HB-CREM axis governing CD8+ T cell immunosenescence, highlighting 3HB as a viable immunorestorative strategy to improve immunotherapy outcomes in aged individuals.
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Aging microenvironment induces CD8+ T cell exhaustion by suppressing hepatic β-hydroxybutyrylate synthesis. — 科研速览 Science Skim