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Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Assessment of Stiffness of Large to Small Arteries in Multistage Renal Disease Model: A Numerical Study
Hasan Obeid1,2, Vasiliki Bikia3, Catherine Fortier1,4
1CHU de Québec Research Center, L'Hôtel-Dieu de Québec Hospital, Québec City, QC, Canada.
Insights
Kidney removal increases arterial stiffness (AS) and blood pressure (BP) by altering arterial biomechanics. These changes in pulse wave velocity (PWV) correlate with clinical findings in chronic kidney disease (CKD).
Area of Science:
- Cardiovascular Physiology
- Nephrology
- Biomedical Engineering
Background:
- Arterial stiffness (AS), measured by pulse wave velocity (PWV), is a key cardiovascular risk biomarker in chronic kidney disease (CKD).
- The precise mechanisms driving PWV changes in CKD, particularly biomechanical alterations, remain incompletely understood.
Purpose of the Study:
- To investigate the direct biomechanical impact of staged kidney removal on arterial pressure and flow.
- To differentiate these biomechanical effects from biochemical or compensatory mechanisms in CKD.
Main Methods:
- Utilized a validated one-dimensional (1-D) cardiovascular model.
- Simulated arterial pressure and flow with varying kidney configurations: two kidneys (2KDN), one kidney (1KDN), no kidneys (0KDN), and a transplanted kidney (TX).
- Evaluated changes in blood pressure (BP) and arterial stiffness (AS) via carotid-femoral (cfPWV), carotid-radial (crPWV), and radial-digital (rdPWV).
Main Results:
- Blood pressure (BP) increased in 1KDN and 0KDN configurations; systolic BP normalized in the TX configuration.
- All tested pulse wave velocities (PWVs) increased across configurations.
- The relative increase in arterial stiffness (AS) was more pronounced in medium-sized arteries (crPWV) than large arteries (cfPWV) with kidney removal.
Conclusions:
- Staged kidney removal significantly alters arterial biomechanics, affecting BP and central/peripheral PWV.
- These simulated biomechanical changes align with clinical observations in CKD patients.
- Arterial tree biomechanical alterations contribute to observed PWV variations in different stages of kidney disease.
Abstract:
Arterial stiffness (AS), as assessed via pulse wave velocity (PWV), is a major biomarker for cardiovascular risk assessment in patients with chronic kidney disease (CKD). However, the mechanisms responsible for the changes in PWV in the presence of kidney disease are not yet fully elucidated. In the present study, we aimed to investigate the direct effects attributable to biomechanical changes in the arterial tree caused by staged renal removal, independent of any biochemical or compensatory effects. Particularly, we simulated arterial pressure and flow using a previously validated one-dimensional (1-D) model of the cardiovascular system with different kidney configurations: two kidneys (2KDN), one single kidney (1KDN), no kidneys (0KDN), and a transplanted kidney (TX) attached to the external iliac artery. We evaluated the respective variations in blood pressure (BP), as well as AS of large-, medium-, and small-sized arteries via carotid-femoral PWV (cfPWV), carotid-radial PWV (crPWV), and radial-digital PWV (rdPWV), respectively. Our results showed that BP was increased in 1KDN and 0KDN, and that systolic BP values were restored in the TX configuration. Furthermore, a rise was reported in all PWVs for all tested configurations. The relative difference in stiffness from 2KDN to 0KDN was higher in the case of crPWV (15%) in comparison with the increase observed for cfPWV (11%). In TX, we observed a restoration of the PWVs to values close to 1KDN. Globally, it was demonstrated that alterations of the outflow boundaries to the renal arteries with staged kidney removal led to changes in BP and central and peripheral PWV in line with previously reported clinical data. Our findings suggest that the PWV variations observed in clinical practice with different stages of kidney disease may be partially attributed to biomechanical alterations of the arterial tree and their effect on BP.
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