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Pathogenesis of structural vascular changes in hypertension
1Department of Medicine, VA Medical Center and University of Minnesota Medical School, Minneapolis, Minnesota 55417, USA. simo0038@tc.umn.edu
Insights
Angiotensin II (ANG II) is the primary driver of structural vascular changes (SVCs) in hypertension, meeting all criteria for predictability, reversibility, and reproducibility. Other factors like salt and aldosterone play lesser roles in SVC development.
Area of Science:
- Cardiovascular Research
- Nephrology
- Hypertension Pathophysiology
Background:
- Structural vascular changes (SVCs) are key in hypertension development.
- The roles of angiotensin II (ANG II), sodium chloride, sympathetic activation, obesity, and aldosterone in SVCs are debated.
Purpose of the Study:
- To evaluate the pathogenic roles of ANG II, sodium chloride, sympathetic activation, obesity, and aldosterone in hypertension-related SVCs.
- To assess these factors based on predictability, reversibility, and reproducibility of SVCs.
Main Methods:
- Review of existing literature and experimental data.
- Analysis of factors based on three criteria: predictability, reversibility, and reproducibility of SVCs.
Main Results:
- Only ANG II met all three criteria for inducing SVCs.
- ANG II increases preglomerular vascular resistance via structural changes in renal arteries.
- High salt intake and aldosterone showed limited or differing roles in SVCs; sympathetic activation evidence was inconclusive; obesity was not directly linked to SVCs.
Conclusions:
- Structural changes in renal cortical arteries, driven by ANG II, are crucial for hypertension.
- Progressive trophic stimulation of preglomerular resistance vessels by ANG II is a primary cause of hypertension.
Abstract:
The pathogenic role of angiotensin II (ANG II), dietary sodium chloride, sympathetic activation, obesity and aldosterone in the development of structural vascular changes (SVCs) in hypertension is considered from three perspectives (criteria): their utility in predicting hypertension and its complications (predictability); the effect of their inhibition or removal on the reversal of SVCs (reversibility); and their ability to induce SVCs in experimental animals (reproducibility). Only ANG II meets all three criteria. Importantly, ANG II increases preglomerular vascular resistance by inducing structural changes in renal cortical resistance arteries and arterioles. High salt intake, by dilating and thereby stiffening some arteries, may play a role in the development of systolic hypertension with aging, but does not produce structural changes in renal cortical resistance vessels. While high circulating levels of norepinephrine are associated with SVCs, the experimental evidence for the role of sympathetic nerve stimulation in the development of SVCs is inconclusive. Obesity is associated with hypertension, but is not known to be associated with SVCs. Salt-loading is required for aldosterone to produce SVCs, but vascular pathology in this experimental model differs from that in benign essential hypertension. The findings of this review indicate that SVCs in extra-renal sites by themselves do not lead to hypertension; structural changes in renal cortical arteries and arterioles that increase preglomerular vascular resistance are needed. Progressive trophic stimulation of preglomerular resistance vessels by itself may lead to hypertension. ANG II is prime candidate for such stimulus.
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