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Assessment of Vascular Tone Responsiveness using Isolated Mesenteric Arteries with a Focus on Modulation by Perivascular Adipose Tissues
Published on: June 3, 2019
How Structure, Mechanics, and Function of the Vasculature Contribute to Blood Pressure Elevation in Hypertension
1Lady Davis Institute for Medical Research and Department of Medicine, Sir Mortimer B. Davis-Jewish General Hospital, McGill University, Montréal, Québec, Canada.
Insights
Large arteries and microcirculation interact to elevate blood pressure (BP) throughout life. Arterial stiffening in aging and microvascular changes in younger individuals contribute to hypertension and organ damage.
Area of Science:
- Cardiovascular Physiology
- Hypertension Research
- Vascular Biology
Background:
- Blood pressure (BP) elevation involves both large conduit arteries and the microcirculation.
- Arterial stiffening, particularly after middle age, increases systolic BP and pulsatility, impacting distal vasculature.
- In younger individuals, factors like genetics, salt intake, and lifestyle contribute to hypertension via sympathetic activity and vasoconstriction.
Purpose of the Study:
- To elucidate the mechanisms by which large arteries and the microcirculation interact to elevate blood pressure.
- To understand the roles of aging, genetic predisposition, and lifestyle factors in hypertension development.
- To explore the microcirculatory remodeling, endothelial dysfunction, and target organ damage associated with elevated BP.
Main Methods:
- The study synthesizes existing knowledge on vascular physiology and pathophysiology of hypertension.
- It analyzes the progression of hypertension from microcirculatory alterations to large artery stiffening.
- Mechanisms discussed include myogenic tone, extracellular matrix changes, hormonal systems, and inflammation.
Main Results:
- Aging leads to large artery stiffening, increasing systolic BP and pulsatility, causing microcirculatory injury and endothelial dysfunction.
- In younger individuals, risk factors trigger persistent vasoconstriction and microvascular remodeling, raising resistance and BP.
- Microcirculatory changes like rarefaction compromise tissue perfusion and contribute to sustained hypertension and arterial stiffening.
Conclusions:
- Large arteries and the microcirculation dynamically interact across the lifespan to drive hypertension.
- Microvascular remodeling and endothelial dysfunction are key early events that promote sustained BP elevation and target organ damage.
- Understanding these interactions is crucial for developing effective hypertension management strategies.
Abstract:
Large conduit arteries and the microcirculation participate in the mechanisms of elevation of blood pressure (BP). Large vessels play roles predominantly in older subjects, with stiffening progressing after middle age leading to increases in systolic BP found in most humans with aging. Systolic BP elevation and increased pulsatility penetrate deeper into the distal vasculature, leading to microcirculatory injury, remodelling, and associated endothelial dysfunction. The result is target organ damage in the heart, brain, and kidney. In younger individuals genetically predisposed to high BP, increased salt intake or other exogenous or endogenous risk factors for hypertension, including overweight and excess alcohol intake, lead to enhanced sympathetic activity and vasoconstriction. Enhanced vasoconstrictor responses and myogenic tone become persistent when embedded in an increased extracellular matrix, resulting in remodelling of resistance arteries with a narrowed lumen and increased media-lumen ratio. Stimulation of the renin-angiotensin-aldosterone and endothelin systems and inflammatory and immune activation, to which gut microbiome dysbiosis may contribute as a result of salt intake, also participate in the injury and remodelling of the microcirculation and endothelial dysfunction. Inflammation of perivascular fat and loss of anticontractile factors play roles as well in microvessel remodelling. Exaggerated myogenic tone leads to closure of terminal arterioles, collapse of capillaries and venules, functional rarefaction, and eventually to anatomic rarefaction, compromising tissue perfusion. The remodelling of the microcirculation raises resistance to flow, and accordingly raises BP in a feedback process that over years results in stiffening of conduit arteries and systo-diastolic or predominantly systolic hypertension and, more rarely, predominantly diastolic hypertension. Thus, at different stages of life and the evolution of hypertension, large vessels and the microcirculation interact to contribute to BP elevation.
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