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循环线粒体促进脑下器官内皮细胞 cGAS 衍生的神经炎症,加重心力衰竭小鼠的交感神经过度兴奋。

Circulating mitochondria promoted endothelial cGAS-derived neuroinflammation in subfornical organ to aggravate sympathetic overdrive in heart failure mice.

机构信息

Department of Cardiac Surgery, Zhongshan Hospital, Fudan University, Shanghai, 200032, China.

Shanghai Institute of Cardiovascular Diseases, Shanghai, 200032, China.

出版信息

J Neuroinflammation. 2024 Jan 19;21(1):27. doi: 10.1186/s12974-024-03013-x.


DOI:10.1186/s12974-024-03013-x
PMID:38243316
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10799549/
Abstract

BACKGROUND: Sympathoexcitation contributes to myocardial remodeling in heart failure (HF). Increased circulating pro-inflammatory mediators directly act on the Subfornical organ (SFO), the cardiovascular autonomic center, to increase sympathetic outflow. Circulating mitochondria (C-Mito) are the novel discovered mediators for inter-organ communication. Cyclic GMP-AMP synthase (cGAS) is the pro-inflammatory sensor of damaged mitochondria. OBJECTIVES: This study aimed to assess the sympathoexcitation effect of C-Mito in HF mice via promoting endothelial cGAS-derived neuroinflammation in the SFO. METHODS: C-Mito were isolated from HF mice established by isoprenaline (0.0125 mg/kg) infusion via osmotic mini-pumps for 2 weeks. Structural and functional analyses of C-Mito were conducted. Pre-stained C-Mito were intravenously injected every day for 2 weeks. Specific cGAS knockdown (cGAS KD) in the SFO endothelial cells (ECs) was achieved via the administration of AAV9-TIE-shRNA (cGAS) into the SFO. The activation of cGAS in the SFO ECs was assessed. The expression of the mitochondrial redox regulator Dihydroorotate dehydrogenase (DHODH) and its interaction with cGAS were also explored. Neuroinflammation and neuronal activation in the SFO were evaluated. Sympathetic activity, myocardial remodeling, and cardiac systolic dysfunction were measured. RESULTS: C-Mito were successfully isolated, which showed typical structural characteristics of mitochondria with double-membrane and inner crista. Further analysis showed impaired respiratory complexes activities of C-Mito from HF mice (C-Mito) accompanied by oxidative damage. C-Mito entered ECs, instead of glial cells and neurons in the SFO of HF mice. C-Mito increased the level of ROS and cytosolic free double-strand DNA (dsDNA), and activated cGAS in cultured brain endothelial cells. Furthermore, C-Mito highly expressed DHODH, which interacted with cGAS to facilitate endothelial cGAS activation. C-Mito aggravated endothelial inflammation, microglial/astroglial activation, and neuronal sensitization in the SFO of HF mice, which could be ameliorated by cGAS KD in the ECs of the SFO. Further analysis showed C-Mito failed to exacerbate sympathoexcitation and myocardial sympathetic hyperinnervation in cGAS KD HF mice. C-Mito promoted myocardial fibrosis and hypertrophy, and cardiac systolic dysfunction in HF mice, which could be ameliorated by cGAS KD. CONCLUSION: Collectively, we demonstrated that damaged C-Mito highly expressed DHODH, which promoted endothelial cGAS activation in the SFO, hence aggravating the sympathoexcitation and myocardial injury in HF mice, suggesting that C-Mito might be the novel therapeutic target for sympathoexcitation in HF.

摘要

背景:交感神经兴奋促进心力衰竭(HF)中的心肌重构。循环中增多的促炎介质直接作用于心血管自主神经中枢——穹窿下器(SFO),增加交感神经输出。循环中的线粒体(C-Mito)是发现的用于器官间通讯的新型介质。环鸟苷酸-腺苷酸合酶(cGAS)是受损线粒体的促炎传感器。 目的:本研究旨在通过促进 SFO 内皮细胞 cGAS 衍生的神经炎症来评估 C-Mito 在 HF 小鼠中的交感兴奋作用。 方法:通过渗透微型泵输注 0.0125mg/kg 异丙肾上腺素 2 周,建立 HF 小鼠模型,分离 C-Mito。对 C-Mito 进行结构和功能分析。每天静脉注射预染色的 C-Mito 持续 2 周。通过向 SFO 中注射 AAV9-TIE-shRNA(cGAS)实现 SFO 内皮细胞(ECs)中特异性 cGAS 敲低(cGAS KD)。评估 SFO ECs 中 cGAS 的激活情况。还探索了线粒体氧化还原调节剂二氢乳清酸脱氢酶(DHODH)的表达及其与 cGAS 的相互作用。评估 SFO 中的神经炎症和神经元激活。测量交感神经活性、心肌重塑和心脏收缩功能障碍。 结果:成功分离了 C-Mito,其显示出典型的线粒体双层膜和内部嵴的结构特征。进一步分析表明,HF 小鼠的 C-Mito 呼吸复合物活性受损(C-Mito),同时伴有氧化损伤。C-Mito 进入 SFO 中 HF 小鼠的 ECs,而不是神经胶质细胞和神经元。C-Mito 增加了培养的脑内皮细胞中 ROS 和胞质游离双链 DNA(dsDNA)的水平,并激活了 cGAS。此外,C-Mito 高度表达 DHODH,它与 cGAS 相互作用以促进内皮细胞 cGAS 的激活。C-Mito 加重了 SFO 中 HF 小鼠的内皮炎症、小胶质细胞/星形胶质细胞激活和神经元致敏,而 SFO 内皮细胞中的 cGAS KD 可改善这种情况。进一步分析表明,C-Mito 未能加重 cGAS KD HF 小鼠中的交感兴奋和心肌交感神经过度支配。C-Mito 促进 HF 小鼠的心肌纤维化和肥大以及心脏收缩功能障碍,而 SFO 中的 cGAS KD 可改善这种情况。 结论:总之,我们证明了受损的 C-Mito 高度表达 DHODH,促进了 SFO 中的内皮细胞 cGAS 激活,从而加重了 HF 小鼠的交感兴奋和心肌损伤,提示 C-Mito 可能是 HF 中交感兴奋的新型治疗靶点。

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本文引用的文献

[1]
Decreased MFN2 activates the cGAS-STING pathway in diabetic myocardial ischaemia-reperfusion by triggering the release of mitochondrial DNA.

Cell Commun Signal. 2023-8-3

[2]
cGAS-STING drives ageing-related inflammation and neurodegeneration.

Nature. 2023-8

[3]
Intercellular mitochondrial component transfer triggers ischemic cardiac fibrosis.

Sci Bull (Beijing). 2023-8-30

[4]
Heart failure and the heart-brain axis.

QJM. 2023-11-24

[5]
Blood-brain barrier lesion - a novel determinant of autonomic imbalance in heart failure and the effects of exercise training.

Clin Sci (Lond). 2023-8-14

[6]
Ultrasound-responsive low-dose doxorubicin liposomes trigger mitochondrial DNA release and activate cGAS-STING-mediated antitumour immunity.

Nat Commun. 2023-6-30

[7]
Hexokinase dissociation from mitochondria promotes oligomerization of VDAC that facilitates NLRP3 inflammasome assembly and activation.

Sci Immunol. 2023-6-23

[8]
Microglia-Mediated Neuroimmune Response Regulates Cardiac Remodeling After Myocardial Infarction.

J Am Heart Assoc. 2023-6-20

[9]
The Warburg effect modulates DHODH role in ferroptosis: a review.

Cell Commun Signal. 2023-5-5

[10]
MitoEVs: A new player in multiple disease pathology and treatment.

J Extracell Vesicles. 2023-4

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