Taurine-loaded extracellular vesicles suppress mtDNA–cGAS–STING signaling by enhancing SIRT1-dependent mitophagy to alleviate neuronal senescence after spinal cord injury

Spinal cord injury (SCI) triggers a cascade of secondary pathological processes that lead to progressive neuronal dysfunction and impaired functional recovery. Although cellular senescence has been increasingly implicated in neurodegenerative conditions, its role in SCI remains poorly defined. Here, we identify widespread senescence signatures in the injured spinal cord, with prominent enrichment in neurons, supporting neuronal senescence as a key pathological feature of SCI. To target this process, we developed a neuron-specific delivery system by encapsulating taurine within RVG-engineered extracellular vesicles, enabling efficient neuronal targeting. EV RVG -Taurine reduces neuronal senescence, attenuates neuroinflammation, and promotes axonal regeneration, resulting in improved functional recovery. Mechanistically, EV RVG -Taurine enhances SIRT1-dependent deacetylation of HSPA9 at lysine 409, thereby activating PINK1/Parkin-mediated mitophagy and facilitating the clearance of damaged mitochondria. This limits mitochondrial DNA (mtDNA) release and suppresses cGAS–STING signaling, leading to attenuation of senescence-associated secretory phenotype (SASP) signaling and disruption of the inflammation–senescence feedforward loop. Collectively, our findings identify neuronal senescence as a critical contributor of SCI pathology and support a SIRT1–HSPA9–mitophagy–mtDNA–cGAS–STING axis linking mitochondrial quality control to neuroinflammation. These results highlight a targeted EV-based taurine delivery strategy and support SIRT1-dependent mitophagy as a potential therapeutic target for SCI.

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Publication Details

Journal
Journal of Nanobiotechnology
Published
2026-09-12
DOI
https://doi.org/10.1186/s12951-026-05038-1
Primary Topic
interferon and immune responses
Type
article
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article

Taurine-loaded extracellular vesicles suppress mtDNA–cGAS–STING signaling by enhancing SIRT1-dependent mitophagy to alleviate neuronal senescence after spinal cord injury

Yanle Zhang, Xiaojian Cao, Chaoqin Wu, Yinyang Xu et al.
Journal of Nanobiotechnology
interferon and immune responses
article

Taurine-loaded extracellular vesicles suppress mtDNA–cGAS–STING signaling by enhancing SIRT1-dependent mitophagy to alleviate neuronal senescence after spinal cord injury

Yanle Zhang, Xiaojian Cao, Chaoqin Wu, Yinyang Xu, Yongkang Yang, Hongtao Chen, Buzheng Zhang, Ying Zhang, Yansong Chen, Dingming Liu
article en

Abstract

Spinal cord injury (SCI) triggers a cascade of secondary pathological processes that lead to progressive neuronal dysfunction and impaired functional recovery. Although cellular senescence has been increasingly implicated in neurodegenerative conditions, its role in SCI remains poorly defined. Here, we identify widespread senescence signatures in the injured spinal cord, with prominent enrichment in neurons, supporting neuronal senescence as a key pathological feature of SCI. To target this process, we developed a neuron-specific delivery system by encapsulating taurine within RVG-engineered extracellular vesicles, enabling efficient neuronal targeting. EV RVG -Taurine reduces neuronal senescence, attenuates neuroinflammation, and promotes axonal regeneration, resulting in improved functional recovery. Mechanistically, EV RVG -Taurine enhances SIRT1-dependent deacetylation of HSPA9 at lysine 409, thereby activating PINK1/Parkin-mediated mitophagy and facilitating the clearance of damaged mitochondria. This limits mitochondrial DNA (mtDNA) release and suppresses cGAS–STING signaling, leading to attenuation of senescence-associated secretory phenotype (SASP) signaling and disruption of the inflammation–senescence feedforward loop. Collectively, our findings identify neuronal senescence as a critical contributor of SCI pathology and support a SIRT1–HSPA9–mitophagy–mtDNA–cGAS–STING axis linking mitochondrial quality control to neuroinflammation. These results highlight a targeted EV-based taurine delivery strategy and support SIRT1-dependent mitophagy as a potential therapeutic target for SCI.

Journal of Nanobiotechnology
Nantong University (CN), Soochow University (CN), Nanjing Drum Tower Hospital (CN), Wuxi Ninth People's Hospital (CN), Wuxi Institute of Technology (CN), Nanjing Medical University (CN)
Good health and well-being
Openalex Percentile: Top 17%
interferon and immune responses
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