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Published on: October 19, 2016
Arterial Stiffness in Hypertension and Function of Large Arteries
Yi Zhang1, Patrick Lacolley2, Athanase D Protogerou3
1Department of Cardiology, Shanghai Tenth People's Hospital, Tongji University School of Medicine, Shanghai, China.
Insights
Arterial stiffness, measured by pulse wave velocity, increases with age and is higher in hypertension, especially with diabetes. This stiffening elevates cardiovascular risk by augmenting pressure transmission to vital organs.
Area of Science:
- Cardiovascular Physiology
- Vascular Biology
- Hypertension Research
Background:
- Arterial stiffness is a key cardiovascular risk predictor in essential hypertension.
- Non-invasive pulse wave velocity (PWV) assessment is commonly used.
- PWV measures stiffness between the carotid and femoral arteries.
Purpose of the Study:
- To review the impact of aging and hypertension on arterial stiffness.
- To explore the relationship between arterial stiffness, hypertension, and diabetes mellitus.
- To understand the mechanisms and consequences of arterial stiffening.
Main Methods:
- Review of existing literature on carotid-femoral pulse wave velocity.
- Analysis of age- and gender-matched comparisons between hypertensive and non-hypertensive individuals.
- Examination of arterial wall composition changes with aging and disease.
Main Results:
- Carotid-femoral PWV increases with age and is significantly higher in hypertensive individuals.
- Arterial stiffness is particularly elevated in hypertension associated with diabetes mellitus.
- Aging and long-standing hypertension alter the arterial stiffness gradient, increasing pulsatile pressure transmission.
Conclusions:
- Hypertension augments pulsatile pressure transmission, raising risks for brain, heart, and kidney damage.
- Arterial stiffening is exacerbated by aging, genetic factors (e.g., angiotensin/aldosterone), and vascular calcification.
- Elevated pulse pressure contributes to end-stage renal disease, particularly in older hypertensive patients.
Background:
Arterial stiffness-typically assessed from non-invasive measurement of pulse wave velocity along a straight portion of the vascular tree between the right common carotid and femoral arteries-is a reliable predictor of cardiovascular risk in patients with essential hypertension.
Methods:
We reviewed how carotid-femoral pulse wave velocity increases with age and is significantly higher in hypertension (than in age- and gender-matched individuals without hypertension), particularly when hypertension is associated with diabetes mellitus.
Results:
From the elastic aorta to the muscular peripheral arteries of young healthy individuals, there is a gradual but significant increase in stiffness, with a specific gradient. This moderates the transmission of pulsatile pressure towards the periphery, thus protecting the microcirculatory network. The heterogeneity of stiffness between the elastic and muscular arteries causes the gradient to disappear or be inversed with aging, particularly in long-standing hypertension.
Conclusions:
In hypertension therefore, pulsatile pressure transmission to the microcirculation is augmented, increasing the potential risk of damage to the brain, the heart, and the kidney. Furthermore, elevated pulse pressure exacerbates end-stage renal disease, particularly in older hypertensive individuals. With increasing age, the elastin content of vessel walls declines throughout the arterial network, and arterial stiffening increases further due to the presence of rigid wall material such as collagen, but also fibronectin, proteoglycans, and vascular calcification. Certain genes, mainly related to angiotensin and/or aldosterone, affect this aging process and contribute to the extent of arterial stiffness, which can independently affect both forward and reflected pressure waves.
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