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Updated: Apr 14, 2026

Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Soluble Flt-1 links microvascular disease with heart failure in CKD
Giovana S Di Marco1, Dominik Kentrup, Stefan Reuter
1Department of Internal Medicine D, University Hospital Münster, Albert Schweitzer Campus 1, Gebäude A1, 48149, Münster, Germany, giodimarco@gmail.com.
Insights
Soluble Flt-1 (sFlt-1) is linked to heart failure (HF) in chronic kidney disease (CKD). This study shows sFlt-1 directly contributes to HF by damaging heart microvasculature in CKD patients and animal models.
Area of Science:
- Nephrology
- Cardiology
- Molecular Biology
Background:
- Chronic kidney disease (CKD) significantly increases heart failure (HF) risk.
- Elevated soluble Flt-1 (sFlt-1) is observed in CKD cardiovascular disease, but its direct role in HF is unclear.
Purpose of the Study:
- To establish the pathophysiological role of sFlt-1 in CKD-associated HF.
- Investigate the link between sFlt-1, renal function, and cardiac outcomes.
Main Methods:
- Measured plasma sFlt-1 in 586 CKD patients with coronary artery disease.
- Utilized rat models treated with recombinant sFlt-1 or subjected to 5/6 nephrectomy.
- Conducted histological and electron microscopy analyses of cardiac tissue.
Main Results:
- sFlt-1 inversely correlated with estimated glomerular filtration rate (eGFR) and associated with HF signs and mortality.
- Recombinant sFlt-1 reduced left ventricular ejection fraction (LVEF), cardiac output, capillary density, and myocardial blood volume in rats.
- sFlt-1 treatment induced mitochondrial damage and fibrosis; sFlt-1 antagonism improved cardiac function in CKD rats.
Conclusions:
- sFlt-1 directly contributes to cardiovascular risk and HF in CKD patients.
- sFlt-1 may mediate microvascular dysfunction, linking CKD to heart failure.
Abstract:
Chronic kidney disease (CKD) is associated with an increased risk of heart failure (HF). Elevated plasma concentrations of soluble Flt-1 (sFlt-1) have been linked to cardiovascular disease in CKD patients, but whether sFlt-1 contributes to HF in CKD is still unknown. To provide evidence that concludes a pathophysiological role of sFlt-1 in CKD-associated HF, we measured plasma sFlt-1 concentrations in 586 patients with angiographically documented coronary artery disease and renal function classified according to estimated glomerular filtration rate (eGFR). sFlt-1 concentrations correlated negatively with eGFR and were associated with signs of heart failure, based on New York Heart Association functional class and reduced left ventricular ejection fraction (LVEF), and early mortality. Additionally, rats treated with recombinant sFlt-1 showed a 15 % reduction in LVEF and a 29 % reduction in cardiac output compared with control rats. High sFlt-1 concentrations were associated with a 15 % reduction in heart capillary density (number of vessels/cardiomyocyte) and a 24 % reduction in myocardial blood volume. Electron microscopy and histological analysis revealed mitochondrial damage and interstitial fibrosis in the hearts of sFlt-1-treated, but not control rats. In 5/6-nephrectomised rats, an animal model of CKD, sFlt-1 antagonism with recombinant VEGF121 preserved heart microvasculature and significantly improved heart function. Overall, these findings suggest that a component of cardiovascular risk in CKD patients could be directly attributed to sFlt-1. Assessment of patients with CKD confirmed that sFlt-1 concentrations were inversely correlated with renal function, while studies in rats suggested that sFlt-1 may link microvascular disease with HF in CKD.
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