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CoQ10 ameliorates intermittent hypoxia-induced ferroptosis by suppressing HMGB1 acetylation and release
Jiefeng Huang1, Ting Lin1, Jia Chen1
1Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital, Fujian Medical University, Fuzhou, People's Republic of China; Respiratory Disease Research Institute, the First Affiliated Hospital, Fujian Medical University, Fuzhou, People's Republic of China; Department of Respiratory and Critical Care Medicine, National Regional Medical Center, Binhai Campus of the First Affiliated Hospital, Fujian Medical University, Fuzhou, People's Republic of China.
Abstract:
Intermittent hypoxia (IH), the core pathological hallmark of obstructive sleep apnea (OSA), elicits long-term cardiac redox imbalance and progressive myocardial dysfunction, yet specific, mechanism-targeted therapies to reverse OSA-associated heart injury remain largely unavailable. This research aimed to systematically unravel the redox-dependent signaling cascade driving IH-induced cardiomyocyte damage and clarify the protective mechanism of coenzyme Q10 (CoQ10), an endogenous antioxidant enriched in cardiac mitochondria. Single-cell RNA-seq profiling identified FAP positive cardiac fibroblasts as the primary cellular source of intermittent hypoxia-induced high-mobility group box 1 (HMGB1), confirming fibroblast-cardiomyocyte paracrine communication as a critical amplifier of myocardial oxidative lesions. In AC16 human cardiomyocytes, IH severely disrupted mitochondrial structure and function, triggering massive reactive oxygen species (ROS) accumulation and excessive lipid peroxidation to initiate ferroptosis, accompanied by suppressed xCT/GPX4/FTH1 and elevated pro-ferroptotic ACSL4. IH also promoted HMGB1 hyperacetylation and subsequent nuclear-to-cytoplasmic translocation to activate the TLR4/NF-κB inflammatory pathway; HMGB1 gene silencing markedly attenuated all IH-triggered pathological phenotypes. Co-IP, ChIP-qPCR and dual-luciferase reporter assays biochemically validated the HMGB1/TLR4/NF-κB/xCT regulatory axis. Consistent findings from in vitro cellular experiments and an in vivo mouse IH model demonstrated that CoQ10 supplementation restores HDAC1/2 expression and enzymatic activity to constrain HMGB1 acetylation, thereby blocking downstream pro-inflammatory and ferroptotic signaling cascades. Collectively, our results confirm that CoQ10 effectively alleviates IH-mediated myocardial oxidative damage by inhibiting HMGB1 release, offering a promising redox-targeted therapeutic candidate for the clinical management of OSA-related cardiovascular complications.
Insights
Obstructive sleep apnea's intermittent hypoxia causes heart damage via HMGB1 release. Coenzyme Q10 protects the heart by inhibiting this release and related ferroptosis, offering a potential therapy for sleep apnea's cardiovascular complications.
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Oxidative Stress
Background:
- Obstructive sleep apnea (OSA) is characterized by intermittent hypoxia (IH), leading to cardiac redox imbalance and dysfunction.
- Current therapies for OSA-associated heart injury are limited, necessitating research into underlying mechanisms.
- Coenzyme Q10 (CoQ10), a mitochondrial antioxidant, is explored for its protective potential.
Purpose of the Study:
- To elucidate the redox-dependent signaling cascade in IH-induced cardiomyocyte damage.
- To clarify the protective mechanisms of CoQ10 against IH-induced cardiac injury.
- To identify therapeutic targets for OSA-related cardiovascular complications.
Main Methods:
- Single-cell RNA-seq to identify cellular sources of HMGB1.
- In vitro studies on human cardiomyocytes (AC16) exposed to cyclic IH.
- In vivo studies using a mouse IH model.
- Biochemical assays including Co-IP, ChIP-qPCR, and dual-luciferase reporter assays.
- CoQ10 supplementation to assess its therapeutic effects.
Main Results:
- Cardiac fibroblasts secrete HMGB1 under IH, amplifying cardiomyocyte damage via paracrine signaling.
- IH induces mitochondrial dysfunction, ROS accumulation, lipid peroxidation, and ferroptosis in cardiomyocytes.
- IH promotes HMGB1 hyperacetylation, nuclear translocation, and activation of the TLR4/NF-κB inflammatory pathway.
- CoQ10 restores HDAC1/2 activity, inhibiting HMGB1 acetylation and downstream inflammatory and ferroptotic signaling.
- HMGB1 gene silencing significantly reduced IH-induced pathological changes.
Conclusions:
- Fibroblast-derived HMGB1 is a key mediator of IH-induced cardiomyocyte ferroptosis and inflammation.
- CoQ10 mitigates IH-mediated myocardial oxidative damage by inhibiting HMGB1 release.
- CoQ10 represents a promising redox-targeted therapeutic strategy for OSA-related cardiovascular complications.
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