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Inhibition of cGAS in Paraventricular Nucleus Attenuates Hypertensive Heart Injury Via Regulating Microglial
Chengzhi Han1,2, Xinyi Qian1,2, Xiaorong Ren1,2
1Department of Physiology and Pathophysiology, School of Basic Medical Sciences, Fudan University, No. 130, Dongan Road, Shanghai, 200032, People's Republic of China.
Abstract:
Neuroinflammation in the cardiovascular center plays a critical role in the progression of hypertensive heart disease. And microglial autophagy is involved in the regulation of neuroinflammation. Cyclic GMP-AMP synthase (cGAS), a cytosolic DNA sensor, senses mitochondrial DNA (mtDNA) and regulates autophagy. The detailed mechanisms of central cGAS affects neuroinflammatory response in hypertensive heart disease via regulating autophagy remain unknown. Angiotensin II (Ang II, 1.5 mg·kg-1·12 h-1, 2 weeks) was intraperitoneally injected to induce hypertension in mice. The cGAS-STING pathway was activated in the paraventricular nucleus (PVN) of Ang II-induced hypertensive mice. The contractile dysfunction of heart was alleviated in Ang II-induced hypertensive cGAS-/- mice. To observe the central effects of cGAS on regulating hypertensive heart disease, the RU.521 (a cGAS inhibitor) was intracisternally infused in hypertensive mice. Intracisternal infusion of the RU.521-alleviated myocardial interstitial fibrosis, cardiomyocyte hypertrophy, and the contractile dysfunction in Ang II-induced hypertensive mice. Intracisternal infusion of RU.521 attenuated the microglial activation, neuroinflammation, sympathetic/parasympathetic activity ratio, and lowered blood pressure. The autophagic flux in the PVN cells was blocked, while intracisternal infusion of RU.521 alleviated this effect in the Ang II-induced hypertensive mice. In vitro, it was found that cGAS-STING activation-induced autophagic flux blockage, while when the impaired autophagic flux was facilitated by rapamycin, an autophagy inducer, the microglial M1 polarization was decreased correspondingly. In conclusion, cGAS induces the inflammatory phenotype of microglia via impairing autophagic flux, thereby participating in neuroinflammation, which leads to sympathetic overactivation in hypertension and further caused hypertensive myocardial injury.
Insights
Cyclic GMP-AMP synthase (cGAS) impairs microglial autophagy, driving neuroinflammation and sympathetic overactivation in hypertension. Inhibiting cGAS alleviates hypertensive heart disease by restoring autophagy and reducing inflammation.
Area of Science:
- Cardiovascular Research
- Neuroscience
- Immunology
Background:
- Neuroinflammation in the cardiovascular center is key to hypertensive heart disease progression.
- Microglial autophagy regulates neuroinflammation, and cyclic GMP-AMP synthase (cGAS) influences autophagy.
- The role of central cGAS in hypertensive heart disease via autophagy is unclear.
Purpose of the Study:
- To investigate the mechanisms by which central cGAS affects neuroinflammation in hypertensive heart disease by regulating autophagy.
- To determine if inhibiting cGAS can ameliorate hypertensive heart disease.
Main Methods:
- Hypertension induced in mice via Angiotensin II (Ang II) injection.
- Investigated cGAS-STING pathway activation, autophagy, and neuroinflammation in the paraventricular nucleus (PVN).
- Utilized cGAS knockout mice and intracisternal infusion of a cGAS inhibitor (RU.521).
- Assessed cardiac function, fibrosis, hypertrophy, and autonomic activity.
Main Results:
- cGAS-STING pathway was activated in the PVN of hypertensive mice.
- cGAS deficiency or inhibition alleviated cardiac dysfunction, fibrosis, and hypertrophy.
- RU.521 treatment reduced microglial activation, neuroinflammation, and sympathetic overactivity, lowering blood pressure.
- cGAS activation blocked autophagic flux in PVN cells; RU.521 reversed this.
- In vitro, cGAS-STING activation impaired autophagy, while rapamycin treatment reduced M1 microglial polarization.
Conclusions:
- Central cGAS induces microglial inflammatory phenotype by impairing autophagic flux.
- This process contributes to neuroinflammation and sympathetic overactivation in hypertension.
- Inhibition of cGAS offers a potential therapeutic strategy for hypertensive heart disease.
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