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[Hydrogen sulfide: a novel cardiovascular functional regulatory gas factor]
Bin Geng1, Hui Yan, Guang-Zhen Zhong
1Department of Physiology, Peking University School of Basic Medical Sciences, Beijing, China.
Summary
Hydrogen sulfide (H2S), produced by cystathionine gamma-lyase (CSE), plays a role in cardiovascular regulation. Reduced H2S levels are linked to hypertension, and exogenous H2S can lower blood pressure.
Area of Science:
- Biochemistry
- Physiology
- Pharmacology
Context:
- Hydrogen sulfide (H2S) is increasingly recognized as a crucial endogenous signaling molecule in cardiovascular physiology.
- Studies indicate that enzymes like cystathionine beta-lyase (CBS) and cystathionine gamma-lyase (CSE) are key producers of H2S.
- Dysregulation of H2S production is implicated in various cardiovascular pathologies.
Purpose:
- To investigate the role of the cystathionine gamma-lyase/hydrogen sulfide (CSE/H2S) pathway in the development of hypertension.
- To examine the impact of exogenous H2S administration on blood pressure in hypertensive animal models.
- To explore the correlation between H2S levels and nitric oxide (NO) in conditions like septic and endotoxic shock.
Summary:
- Hypoxic pulmonary hypertension (HPH) models showed decreased plasma H2S concentration, lung tissue CSE activity, and gene expression.
- In L-NAME induced hypertension and spontaneous hypertension rats (SHR) models, plasma H2S levels, vascular CSE activity, and mRNA expression were significantly reduced.
- Exogenous H2S administration led to a noticeable decrease in systolic blood pressure, suggesting the CSE/H2S pathway's involvement in hypertension pathophysiology.
- Elevated endogenous H2S levels were observed in septic and endotoxic shock rats, correlating with nitric oxide (NO) levels.
Impact:
- These findings highlight the CSE/H2S pathway as a significant contributor to the pathophysiology of hypertension.
- The study suggests that H2S acts as a novel regulator of cardiovascular function.
- This research opens avenues for exploring H2S-based therapeutic strategies for managing hypertension and related cardiovascular disorders.