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Updated: Jul 12, 2025

Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Can we reverse arterial stiffness by intervening on CKD-MBD biomarkers?
1Amsterdam University Medical Centres, Nephrology, Amsterdam, The Netherlands.
Insights
Chronic kidney disease (CKD) increases cardiovascular risk partly due to arterial stiffness. This review examines how CKD-MBD mineral and hormone imbalances acutely affect arterial stiffness, finding calcium is a key factor.
Area of Science:
- Nephrology
- Cardiology
- Endocrinology
Background:
- Chronic kidney disease (CKD) is linked to heightened cardiovascular risk, significantly influenced by arterial stiffness.
- Mineral and hormone imbalances in CKD, known as CKD-MBD (CKD-Mineral and Bone Disorder), are associated with vascular calcification and arterial stiffness.
Purpose of the Study:
- To review the acute effects of short-term changes in calcium, phosphate, parathyroid hormone (PTH), vitamin D, magnesium, and FGF23 on arterial stiffness in CKD patients.
- To differentiate direct effects on large artery stiffness from indirect effects mediated by vascular calcification.
Main Methods:
- Systematic review of observational studies and interventional trials assessing arterial stiffness, primarily using pulse wave velocity.
- Analysis of studies involving interventions like PTH infusion, calcimimetic use, surgery, and vitamin D administration.
Main Results:
- Elevated calcium levels are associated with worsening arterial stiffness.
- Phosphate, PTH, magnesium, and FGF23 showed no clear direct acute effects on large artery stiffness.
- Evidence for vitamin D's direct impact is conflicting and requires further investigation.
Conclusions:
- While vascular calcification is a major contributor to arterial stiffness in CKD, acute mineral and hormone derangements, particularly calcium, can directly influence arterial stiffness.
- Further research is needed to clarify the direct role of specific CKD-MBD components on arterial stiffness independent of calcification.
Abstract:
The increased cardiovascular risk of chronic kidney disease may in part be the consequence of arterial stiffness, a typical feature of kidney failure. Deranged homeostasis of minerals and hormones involved (CKD-MBD), are also strongly associated with this increased risk. It is well established that CKD-MBD is a main driver of vascular calcification, which in turn worsens arterial stiffness. However, there are other contributors to arterial stiffness in CKD than calcification. An overlooked possibility is that CKD-MBD may have detrimental effects on this potentially better modifiable component of arterial stiffness. In this review, the individual contributions of short-term changes in calcium, phosphate, PTH, vitamin D, magnesium, and FGF23 to arterial stiffness, in most studies assessed as pulse wave velocity, is summarized. Indeed, there is evidence from both observational studies and interventional trials that higher calcium concentrations can worsen arterial stiffness. This, however, has not been shown for phosphate, and it seems unlikely that, apart from being a contributor to vascular calcification and having effects on the microcirculation, phosphate has no acute effect on large artery stiffness. Several interventional studies, both by infusing PTH and by abrupt lowering PTH by calcimimetics or surgery, virtually ruled out direct effects on large artery stiffness. A well-designed trial using both active and nutritional vitamin D as intervention found a beneficial effect for the latter. Unfortunately, the study had a baseline imbalance and other studies did not support its finding. Both magnesium and FGF23 do not seem do modify central arterial stiffness.
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