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Updated: Oct 7, 2025

Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Impact of Uremic Toxins on Endothelial Dysfunction in Chronic Kidney Disease: A Systematic Review
Eva Harlacher1, Julia Wollenhaupt1, Constance C F M J Baaten1,2
1Institute for Molecular Cardiovascular Research, University Hospital Aachen, Rheinisch-Westfälische Technische Hochschule Aachen University, 52074 Aachen, Germany.
Insights
Chronic kidney disease (CKD) patients face high cardiovascular risks due to endothelial dysfunction. This review details how uremic toxins damage the endothelium, highlighting pathways for potential therapeutic targets to reduce cardiovascular risk.
Area of Science:
- Cardiovascular Research
- Nephrology
- Molecular Biology
Background:
- Patients with chronic kidney disease (CKD) exhibit significantly elevated risks of cardiovascular complications.
- Endothelial dysfunction plays a critical role in the accelerated atherogenesis and heightened thrombotic risk observed in CKD.
Purpose of the Study:
- To systematically review and comprehensively overview CKD-associated endothelial dysfunction.
- To elucidate the underlying molecular mechanisms and signaling pathways involved in uremic toxin-induced endothelial damage.
Main Methods:
- Systematic literature review focusing on studies of uremic serum or specific uremic toxins affecting vascular function, particularly the endothelium.
- Analysis of 39 studies investigating toxins such as indoxyl sulfate, advanced glycation end products, and phosphate.
Main Results:
- Uremic conditions and toxins commonly induce inflammation, oxidative stress, leukocyte adhesion, cell death, and a pro-thrombotic phenotype in endothelial cells.
- Frequently activated cellular signaling pathways include ROS, MAPK/NF-κB, Aryl-Hydrocarbon-Receptor, and RAGE.
Conclusions:
- This review provides detailed insights into the pathophysiological and molecular mechanisms of endothelial dysfunction in CKD.
- Targeting identified pathways offers potential therapeutic strategies to mitigate the increased cardiovascular risk in CKD patients.
Abstract:
Patients with chronic kidney disease (CKD) are at a highly increased risk of cardiovascular complications, with increased vascular inflammation, accelerated atherogenesis and enhanced thrombotic risk. Considering the central role of the endothelium in protecting from atherogenesis and thrombosis, as well as its cardioprotective role in regulating vasorelaxation, this study aimed to systematically integrate literature on CKD-associated endothelial dysfunction, including the underlying molecular mechanisms, into a comprehensive overview. Therefore, we conducted a systematic review of literature describing uremic serum or uremic toxin-induced vascular dysfunction with a special focus on the endothelium. This revealed 39 studies analyzing the effects of uremic serum or the uremic toxins indoxyl sulfate, cyanate, modified LDL, the advanced glycation end products N-carboxymethyl-lysine and N-carboxyethyl-lysine, p-cresol and p-cresyl sulfate, phosphate, uric acid and asymmetric dimethylarginine. Most studies described an increase in inflammation, oxidative stress, leukocyte migration and adhesion, cell death and a thrombotic phenotype upon uremic conditions or uremic toxin treatment of endothelial cells. Cellular signaling pathways that were frequently activated included the ROS, MAPK/NF-κB, the Aryl-Hydrocarbon-Receptor and RAGE pathways. Overall, this review provides detailed insights into pathophysiological and molecular mechanisms underlying endothelial dysfunction in CKD. Targeting these pathways may provide new therapeutic strategies reducing increased the cardiovascular risk in CKD.
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