It is shown that mitochondrial metabolism provides a second layer of control that enables execution of the inflammatory programme, and a mechanism that selectively controls the inflammatory output of senescent cells is revealed.
Abstract
Senescent cells promote tissue dysfunction in part through the senescence-associated secretory phenotype (SASP)1. Cytosolic mitochondrial nucleic acids activate innate immune signalling to initiate this inflammatory programme2,3. Here we show that mitochondrial metabolism provides a second layer of control that enables execution of the inflammatory programme. In senescent cells, the mitochondrial pyruvate–citrate–acetyl-CoA axis is upregulated, increasing the availability of acetyl-CoA to support histone acetylation at SASP genes. Whereas mitochondrial DNA-driven signalling activates inflammatory transcription factors, acetyl-CoA availability is required for robust transcription of SASP genes. Accordingly, enhancing acetyl-CoA levels promotes SASP gene expression, whereas inhibition of SLC25A1, the mitochondrial citrate exporter, reduces histone acetylation at SASP loci, limiting activity of this programme. In vivo, inhibition of SLC25A1 reduces chromatin accessibility at SASP loci, dampens inflammation and improves healthspan in aged mice. Together, these findings identify a mitochondrial metabolic checkpoint that enables the epigenetic execution of innate immune signalling, revealing a mechanism that selectively controls the inflammatory output of senescent cells. In senescent cells, mitochondria-derived acetyl-CoA promotes histone acetylation and increases chromatin accessibility at inflammatory gene loci. Inhibition of SLC25A1 attenuates these effects, underscoring the therapeutic potential of targeting mitochondrial metabolism and its epigenetic crosstalk to delay age-related functional decline.
A stress-responsive signalling network in which metabolic and mechanical cues are integrated at the epigenetic level to control the inflammatory fate of β-cells is unveiled, providing a new mechanistic framework for diabetic pathogenesis and a rationale for combinatorial therapeutic intervention.
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