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May 7, 2026Precision Clinical Medicine1 citationsOpen Access

Calming sterile inflammation in intervertebral disc degeneration: taurine disrupts mitochondria-cGAS-STING signaling via autophagy enhancement

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SZShuangjia Zai武武火峰XYXuan You

Key Points

  • This research investigates how taurine affects inflammation and degeneration in intervertebral discs.
  • Utilized genetics and computational biology approaches, along with cellular experiments and animal models.
  • Conducted Mendelian randomization analysis to establish relationships between taurine levels and intervertebral disc degeneration risk.
  • Examined how taurine modulates the cGAS-STING signaling pathway in degenerative disc tissues and progenitor cells.
  • Higher taurine levels are causally linked to reduced incidence of intervertebral disc degeneration.
  • Taurine maintained mitochondrial function and reduced leakage of mitochondrial DNA into the cytosol.
  • Taurine treatment decreased inflammatory responses and apoptosis, preserving disc height and reducing pain sensitivity in animal models.

Abstract

Abstract Background Intervertebral disc degeneration (IVDD) is a major pathological process leading to low back pain, closely associated with the functional decline of nucleus pulposus progenitor cell (NPPC). The role of the cGAS-STING pathway in mediating DNA-sensing-associated inflammation and senescence in IVDD has not been fully elucidated. Methods This study integrated genetics, computational biology, cellular experiments, and animal models to systematically investigate whether Taurine (TAU) exerts protective effects by modulating this pathway. Results Mendelian randomization analysis suggested a causal relationship between higher TAU levels and reduced risk of IVDD. Molecular docking and dynamics simulations demonstrated that TAU stably binds to cGAS and STING. In both degenerated human nucleus pulposus (NP) tissues and an H2O2-induced NPPC senescence model, the cGAS-STING pathway was significantly activated. TAU intervention maintained mitochondrial function, reduced cytosolic mtDNA leakage, and enhanced autophagic degradation of STING, thereby suppressing downstream TBK1-IRF3/NLRP3 inflammatory signaling and subsequently alleviating cellular senescence, inflammatory responses, and apoptosis. TAU treatment effectively delayed intervertebral disc height loss, histopathological progression, and pain sensitivity in a rat IVDD model. Conclusion This study is the first to reveal that TAU mitigates IVDD through multi-targeted modulation of the “mitochondria-cGAS-STING” axis, providing a theoretical foundation for its translational application as a disease-modifying agent.

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Cite This Study

Zai et al. (2026) studied this question.

synapsesocial.com/papers/69fbe2f2164b5133a91a2478https://doi.org/10.1093/pcmedi/pbag013
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