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Published on: March 5, 2019
Blockade of Microglial Activation in Hypothalamic Paraventricular Nucleus Improves High Salt-Induced Hypertension
Xiao-Jing Yu1, Xiao-Jing Liu2, Jing Guo1
1Department of Physiology and Pathophysiology, Xi'an Jiaotong University School of Basic Medical Sciences, Shaanxi Engineering and Research Center of Vaccine, Key Laboratory of Environment and Genes Related to Diseases of Ministry of Education, Xi'an Jiaotong University, Xi'an, China.
Background:
It has been shown that activated microglia in brain releasing proinflammatory cytokines (PICs) contribute to the progression of cardiovascular diseases. In this study, we tested the hypothesis that microglial activation in hypothalamic paraventricular nucleus (PVN), induced by high-salt diet, increases the oxidative stress via releasing PICs and promotes sympathoexcitation and development of hypertension.
Methods:
High-salt diet was given to male Dahl salt-sensitive rats to induce hypertension. Those rats were bilaterally implanted with cannula for PVN infusion of minocycline, a selective microglial activation blocker, or artificial cerebrospinal fluid for 4 weeks.
Results:
High-salt diet elevated mean arterial pressure of Dahl salt-sensitive rats. Meanwhile, elevations of renal sympathetic nerve activity and central prostaglandin E2, as well as increase of plasma norepinephrine, were observed in those hypertensive rats. Tumor necrosis factor-α, interleukin-1β (IL-1β), and IL-6 increased in the PVN of those rats, associated with a significant activation of microglia and prominent disruption of redox balance, which was demonstrated by higher superoxide and NAD(P)H oxidase 2 (NOX-2) and NAD(P)H oxidase 4 (NOX-4), and lower Cu/Zn superoxide dismutase in PVN. PVN infusion of minocycline attenuated all hypertension-related alterations described above.
Conclusion:
This study indicates that high salt leads to microglial activation within PVN of hypertensive rats, and those activated PVN microglia release PICs and trigger the production of reactive oxygen species, which contributes to sympathoexcitation and development of hypertension. Blockade of PVN microglial activation inhibits inflammation and oxidative stress, therefore attenuating the development of hypertension induced by high-salt diet.
Insights
High salt intake activates brain microglia, increasing oxidative stress and promoting hypertension. Blocking this microglial activation in the hypothalamus reduces inflammation and prevents high blood pressure development.
Area of Science:
- Neuroscience
- Cardiovascular Science
- Immunology
Background:
- Activated microglia in the brain release proinflammatory cytokines (PICs), contributing to cardiovascular disease progression.
- Microglial activation in the hypothalamic paraventricular nucleus (PVN) is implicated in hypertension development.
Purpose of the Study:
- To test if microglial activation in the PVN, induced by a high-salt diet, increases oxidative stress via PICs.
- To determine if this process promotes sympathoexcitation and hypertension.
Main Methods:
- Male Dahl salt-sensitive rats were fed a high-salt diet to induce hypertension.
- Rats received PVN infusions of minocycline (microglial activation blocker) or artificial cerebrospinal fluid for 4 weeks.
Main Results:
- High-salt diet elevated blood pressure, renal sympathetic nerve activity, and norepinephrine levels.
- PVN showed increased PICs (TNF-α, IL-1β, IL-6), microglial activation, and oxidative stress (increased superoxide, NOX-2/4; decreased Cu/Zn SOD).
- Minocycline treatment attenuated these hypertension-related changes.
Conclusions:
- High salt induces PVN microglial activation, leading to PIC and reactive oxygen species production, promoting sympathoexcitation and hypertension.
- Blocking PVN microglial activation inhibits inflammation and oxidative stress, thus attenuating high-salt-induced hypertension.
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