Related Experiment Video
Updated: Aug 22, 2025

Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Cardiac epigenetic changes in VEGF signaling genes associate with myocardial microvascular rarefaction in
Alfonso Eirin1, Alejandro R Chade2,3
1Division of Nephrology and Hypertension, Mayo Clinic, Rochester, Minnesota.
Insights
Epigenetic changes in vascular endothelial growth factor (VEGF)-related genes contribute to cardiac damage in chronic kidney disease with left ventricular diastolic dysfunction (CKD-LVDD). These changes impair blood vessel formation and reduce heart microvascular density in pigs.
Area of Science:
- Cardiovascular Biology
- Nephrology
- Epigenetics
Background:
- Chronic kidney disease (CKD) is a prevalent condition in heart failure patients, frequently leading to left ventricular diastolic dysfunction (LVDD).
- The precise mechanisms driving cardiac damage in CKD-LVDD are not fully understood, particularly the role of epigenetic modifications.
- Epigenetic alterations, such as DNA methylation, can induce lasting changes in gene expression and cellular function.
Purpose of the Study:
- To investigate the potential involvement of cardiac site-specific DNA methylation changes in the cardiac abnormalities observed in CKD-LVDD.
- To explore the relationship between DNA methylation, gene expression, and cardiac microvascular function in a swine model of CKD-LVDD.
Main Methods:
- A swine model was used, comparing pigs with CKD-LVDD (n=6) to normal controls (n=6) over 14 weeks.
- Hemodynamic parameters were assessed using multidetector CT and echocardiography.
- Cardiac DNA methylation (5-methylcytosine immunoprecipitation sequencing) and mRNA sequencing were performed on a subset of pigs, followed by integrated analysis and ex vivo validation.
Main Results:
- DNA methylation sequencing identified significant alterations in genes related to vascular endothelial growth factor (VEGF) signaling and angiogenesis in CKD-LVDD pigs.
- Integrated analysis revealed specific VEGF-related genes with increased DNA methylation but decreased mRNA expression in CKD-LVDD.
- Cardiac VEGF signaling and protein expression were reduced in CKD-LVDD, correlating with diminished subendocardial microvascular density.
Conclusions:
- Cardiac epigenetic modifications in VEGF-related genes are linked to impaired angiogenesis and reduced microvascular density in swine with CKD-LVDD.
- These findings elucidate mechanisms of cardiac microvascular damage in CKD-LVDD.
- The study suggests potential therapeutic targets for mitigating cardiac damage in patients with CKD-LVDD.
Abstract:
Chronic kidney disease (CKD) is common in patients with heart failure and often results in left ventricular diastolic dysfunction (LVDD). However, the mechanisms responsible for cardiac damage in CKD-LVDD remain to be elucidated. Epigenetic alterations may impose long-lasting effects on cellular transcription and function, but their exact role in CKD-LVDD is unknown. We investigate whether changes in cardiac site-specific DNA methylation profiles might be implicated in cardiac abnormalities in CKD-LVDD. CKD-LVDD and normal control pigs (n = 6 each) were studied for 14 wk. Renal and cardiac hemodynamics were quantified by multidetector CT and echocardiography. In randomly selected pigs (n = 3/group), cardiac site-specific 5-methylcytosine (5mC) immunoprecipitation (MeDIP)- and mRNA-sequencing (seq) were performed, followed by integrated (MeDiP-seq/mRNA-seq analysis), and confirmatory ex vivo studies. MeDIP-seq analysis revealed 261 genes with higher (fold change > 1.4; P < 0.05) and 162 genes with lower (fold change < 0.7; P < 0.05) 5mC levels in CKD-LVDD versus normal pigs, which were primarily implicated in vascular endothelial growth factor (VEGF)-related signaling and angiogenesis. Integrated MeDiP-seq/mRNA-seq analysis identified a select group of VEGF-related genes in which 5mC levels were higher, but mRNA expression was lower in CKD-LVDD versus normal pigs. Cardiac VEGF signaling gene and VEGF protein expression were blunted in CKD-LVDD compared with controls and were associated with decreased subendocardial microvascular density. Cardiac epigenetic changes in VEGF-related genes are associated with impaired angiogenesis and cardiac microvascular rarefaction in swine CKD-LVDD. These observations may assist in developing novel therapies to ameliorate cardiac damage in CKD-LVDD.NEW & NOTEWORTHY Chronic kidney disease (CKD) often leads to left ventricular diastolic dysfunction (LVDD) and heart failure. Using a novel translational swine model of CKD-LVDD, we characterize the cardiac epigenetic landscape, identifying site-specific 5-methylcytosine changes in vascular endothelial growth factor (VEGF)-related genes associated with impaired angiogenesis and cardiac microvascular rarefaction. These observations shed light on the mechanisms of cardiac microvascular damage in CKD-LVDD and may assist in developing novel therapies for these patients.
Related Concept Videos
Regulation of Angiogenesis and Blood Supply
Chronic Kidney Disease II: Clinical Manifestations
Heart Failure II: Pathophysiology
Pathophysiology of Heart Failure
Acute Kidney Injury II: Pathophysiology

