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Neuroinflammation and sympathetic overactivity: Mechanisms and implications in hypertension
Dhanush Haspula1, Michelle A Clark1
1Department of Pharmaceutical Sciences, College of Pharmacy, Nova Southeastern University, Fort Lauderdale, FL 33328, United States.
Insights
Essential hypertension involves genetic factors and neuroinflammation. Targeting brainstem neuroinflammation and glial cell roles in the renin-angiotensin system may offer new hypertension treatments.
Area of Science:
- Cardiovascular Research
- Neuroscience
- Molecular Biology
Background:
- Essential hypertension is multifactorial with genetic links, and many patients remain hypertensive despite medication.
- Central sympathetic activity and neuroinflammation are elevated in prehypertension, suggesting a key role for brain mechanisms.
Purpose of the Study:
- To review the molecular mechanisms of hypertension focusing on neuroinflammation within brainstem cardiovascular centers.
- To elucidate the impact of Angiotensin II and neuroinflammatory mediators on cardioregulatory centers and glial cell involvement.
Main Methods:
- Review of existing research on hypertension pathophysiology, focusing on neuroinflammation.
- Analysis of the roles of the brain renin-angiotensin system (RAS), oxidative stress, and glial cells (microglia, astroglia).
Main Results:
- Hyperactive brain RAS, oxidative stress, and neuroinflammation in brainstem cardiovascular centers augment sympathetic activity.
- Angiotensin II triggers pro-inflammatory cytokines and reactive oxygen species (ROS), involving microglial and astroglial activation.
Conclusions:
- Understanding Ang II-mediated sympathoexcitation and neuroinflammation is crucial for developing novel hypertension therapies.
- Targeting neuroinflammatory pathways and glial responses in the brainstem may offer new therapeutic strategies for cardiovascular diseases.
Abstract:
Essential hypertension is a multifactorial disorder with a strong genetic predisposition. Although anti-hypertensive medications have drastically reduced cardiovascular diseases mortality and morbidity rates, a significant percentage of hypertensive individuals currently on anti-hypertensive therapy, remain hypertensive. In spite of the emergence of transgenic animals and sophisticated tools to study the pathophysiology of hypertension, unraveling the causal mechanisms remains a challenge. Research on borderline hypertensive humans and/or prehypertensive rat models revealed an elevation in centrally-mediated sympathetic activity and a heightened neuroinflammatory state. Hyperactive brain renin angiotensin system (RAS), oxidative stress and neuroinflammation in brainstem cardiovascular centers and other brain regions are implicated as key factors in augmenting sympathetic activity in hypertension and other cardiovascular abnormalities. Angiotensin (Ang) II, the main RAS effector peptide, has been shown to trigger significant upsurges in pro-inflammatory cytokines and reactive oxygen species (ROS). Both microglial and astroglial cells, via a host of different mechanisms, contribute to pro-inflammatory states and ROS generation in the brain. Hence, it becomes essential to understand the impact of Ang II and neuroinflammatory mediators on the impairment of cardioregulatory centers in the brain, and to investigate the role of glia in Ang II-mediated sympathoexcitation. Understanding the mechanisms leading to an elevation in neuroinflammatory states, and the possible ways of counteracting it, could aid in devising better therapeutic strategies for the treatment of cardiovascular diseases and hypertension. This review primarily focuses on the molecular aspects of hypertension from a neuroinflammatory standpoint within brainstem cardiovascular centers.
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