Mitochondrial ATP promotes T cell differentiation through chromatin accessibility.
| Publication Type | Academic Article |
| Authors | Ng C, Fung T, Li D, Kropp K, Somarribas Patterson L, Markovitz A, Weinberg D, Jones O, Kim J, Zhang G, Koche R, Monetti M, Tang H, He Y, Xu Z, Cai X, Yu Z, Bhagavatula G, Colgan S, Lin Y, Li Z, Steinert E, Klebanoff C, Vardhana S, Chandel N, Wu L, Thompson C |
| Journal | Cell |
| Date Published | 09/11/2026 |
| ISSN | 1097-4172 |
| Abstract | Immune elimination of chronic infection or cancer requires cytotoxic CD8+ T cells that adopt and maintain an effector phenotype. Cytotoxic T cell function is a bioenergetically demanding process. Here, we report the ability of D-α-hydroxybutyrate (DAHB) to act as a signaling molecule that increases mitochondrial ATP production and drives the conversion of proliferating T cells into cytotoxic effector cells. DAHB signaling switches ATP production from glycolysis to oxidative phosphorylation supported by fatty acid oxidation. This conversion elevates the level of a phosphagen, phosphocreatine (PCr). Both the PCr bioenergetic reserve and oxidative phosphorylation were required for T cell effector differentiation. DAHB-induced CD8 effector gene transcription was coupled to bioenergetics by BAF-complex-dependent remodeling of chromatin at effector loci. DAHB-enhanced CD8+ T cell antitumor activity both in vitro and in vivo. Together, these findings link cellular bioenergetics to the regulation of chromatin accessibility and gene expression required to support effector function. |
| DOI | 10.1016/j.cell.2026.08.023 |
| PubMed ID | 42727574 |