H4K12 Lactylation Regulates NDUFS7 to Drive Microglia Reverse Electron Transport in Spinal Cord Injury

Microglial polarization toward the pro-inflammatory state drives secondary injury following spinal cord injury (SCI), yet the mechanisms of metabolic reprogramming governing this phenotypic shift remain elusive. Here, we identify a lactate-dependent signaling axis linking histone lactylation to mitochondrial reverse electron transport (RET) that sustains neuroinflammation. We demonstrate that SCI-induced accumulation of lactate promotes histone H4 lysine 12 lactylation (H4K12la), which directly upregulates NDUFS7, a core subunit of mitochondrial Complex I. Elevated NDUFS7 triggers mitochondrial hyperactivity and RET, resulting in a reactive oxygen species (ROS) burst that enforces pro-inflammatory polarization. To intervene in this cascade, we engineered a biomimetic nanotherapeutic, MM@mPTC, comprising an LDHA-targeting PROTAC encapsulated within ROS-responsive micelles and coated with microglial membranes (MM). The biomimetic MM@mPTC system actively targets activated microglia and undergoes ROS-responsive payload release to specifically degrade LDHA. This targeted degradation dismantles the pathogenic "LDHA-H4K12la-NDUFS7-RET" axis, halting RET-driven ROS production and reprogramming microglia toward a reparative phenotype. Consequently, this intervention significantly mitigates neuroinflammation, preserves neuronal tissue, and promotes robust locomotor recovery, presenting a precise metabolic-epigenetic therapeutic paradigm for central nervous system trauma.

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Journal
Advanced Science
Published
2026-09-29
DOI
https://doi.org/10.1002/advs.78057
Primary Topic
Histone Deacetylase Inhibitors Research
Type
article
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article

H4K12 Lactylation Regulates NDUFS7 to Drive Microglia Reverse Electron Transport in Spinal Cord Injury

Chenggui Wang, Zhichen Jiang, Kaijie Guo, Sunren Sheng et al.
Advanced Science
Histone Deacetylase Inhibitors Research
article

H4K12 Lactylation Regulates NDUFS7 to Drive Microglia Reverse Electron Transport in Spinal Cord Injury

Chenggui Wang, Zhichen Jiang, Kaijie Guo, Sunren Sheng, He Xy, Xu Shaobo, Jiang Liu, Chenglong Hong, Yuchen Jin, Chenyu Wu, Yihui Liang, Lei Guo, Hui Xu, Zhouwei Wu
article en

Abstract

Microglial polarization toward the pro-inflammatory state drives secondary injury following spinal cord injury (SCI), yet the mechanisms of metabolic reprogramming governing this phenotypic shift remain elusive. Here, we identify a lactate-dependent signaling axis linking histone lactylation to mitochondrial reverse electron transport (RET) that sustains neuroinflammation. We demonstrate that SCI-induced accumulation of lactate promotes histone H4 lysine 12 lactylation (H4K12la), which directly upregulates NDUFS7, a core subunit of mitochondrial Complex I. Elevated NDUFS7 triggers mitochondrial hyperactivity and RET, resulting in a reactive oxygen species (ROS) burst that enforces pro-inflammatory polarization. To intervene in this cascade, we engineered a biomimetic nanotherapeutic, MM@mPTC, comprising an LDHA-targeting PROTAC encapsulated within ROS-responsive micelles and coated with microglial membranes (MM). The biomimetic MM@mPTC system actively targets activated microglia and undergoes ROS-responsive payload release to specifically degrade LDHA. This targeted degradation dismantles the pathogenic "LDHA-H4K12la-NDUFS7-RET" axis, halting RET-driven ROS production and reprogramming microglia toward a reparative phenotype. Consequently, this intervention significantly mitigates neuroinflammation, preserves neuronal tissue, and promotes robust locomotor recovery, presenting a precise metabolic-epigenetic therapeutic paradigm for central nervous system trauma.

Advanced Science
Wenzhou Medical University (CN), Second Affiliated Hospital & Yuying Children's Hospital of Wenzhou Medical University (CN)
Openalex Percentile: Top 19%
Histone Deacetylase Inhibitors Research
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