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A Mouse 5/6th Nephrectomy Model That Induces Experimental Uremic Cardiomyopathy
Published on: November 7, 2017
In chronic kidney disease altered cardiac metabolism precedes cardiac hypertrophy
Matthew J Williams1, Carmen M Halabi1, Hiral M Patel1
1Renal Division, Department of Pediatrics, Washington University in St. Louis, St. Louis, Missouri, United States.
Insights
Chronic kidney disease (CKD) directly impairs cardiac mitochondrial function by decreasing oxidative phosphorylation, even without arterial disease. This finding reveals a new therapeutic target for heart complications in CKD patients.
Area of Science:
- Nephrology
- Cardiology
- Mitochondrial Biology
Background:
- Conduit arterial disease is a known contributor to cardiac complications in chronic kidney disease (CKD).
- Cardiac function in CKD patients without arterial disease has not been previously investigated.
- Understanding direct CKD effects on the heart is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate cardiac function in a CKD model lacking conduit arterial disease.
- To determine if CKD directly impacts cardiac mitochondrial respiration.
- To explore the role of activin A signaling in CKD-induced cardiac changes.
Main Methods:
- Utilized an Alport syndrome mouse model bred to lack conduit arterial disease, exhibiting CKD stage 4-5.
- Performed cardiac tissue respirometry (Oroboros) to assess mitochondrial oxygen flux.
- Conducted RNA-Seq analysis of cardiac tissue to identify gene expression changes.
- Administered activin A antibody treatment to assess its impact on cardiac and skeletal changes.
Main Results:
- CKD mice showed significantly diminished ADP-stimulated cardiac oxygen flux, indicating impaired mitochondrial respiration.
- RNA-Seq revealed decreased expression of cardiac mitochondrial oxidative phosphorylation genes in CKD mice.
- Activin A antibody treatment did not improve cardiac function but affected skeletal remodeling.
Conclusions:
- CKD directly impairs cardiac mitochondrial respiration and oxidative phosphorylation, independent of arterial disease.
- This study provides the first evidence of CKD directly affecting cardiac respiration.
- Targeting cardiac oxidative phosphorylation may represent a novel therapeutic strategy for CKD-related heart disease.
Abstract:
Conduit arterial disease in chronic kidney disease (CKD) is an important cause of cardiac complications. Cardiac function in CKD has not been studied in the absence of arterial disease. In an Alport syndrome model bred not to have conduit arterial disease, mice at 225 days of life (dol) had CKD equivalent to humans with CKD stage 4-5. Parathyroid hormone (PTH) and FGF23 levels were one log order elevated, circulating sclerostin was elevated, and renal activin A was strongly induced. Aortic Ca levels were not increased, and vascular smooth muscle cell (VSMC) transdifferentiation was absent. The CKD mice were not hypertensive, and cardiac hypertrophy was absent. Freshly excised cardiac tissue respirometry (Oroboros) showed that ADP-stimulated O2 flux was diminished from 52 to 22 pmol/mg (P = 0.022). RNA-Seq of cardiac tissue from CKD mice revealed significantly decreased levels of cardiac mitochondrial oxidative phosphorylation genes. To examine the effect of activin A signaling, some Alport mice were treated with a monoclonal Ab to activin A or an isotype-matched IgG beginning at 75 days of life until euthanasia. Treatment with the activin A antibody (Ab) did not affect cardiac oxidative phosphorylation. However, the activin A antibody was active in the skeleton, disrupting the effect of CKD to stimulate osteoclast number, eroded surfaces, and the stimulation of osteoclast-driven remodeling. The data reported here show that cardiac mitochondrial respiration is impaired in CKD in the absence of conduit arterial disease. This is the first report of the direct effect of CKD on cardiac respiration.NEW & NOTEWORTHY Heart disease is an important morbidity of chronic kidney disease (CKD). Hypertension, vascular stiffness, and vascular calcification all contribute to cardiac pathophysiology. However, cardiac function in CKD devoid of vascular disease has not been studied. Here, in an animal model of human CKD without conduit arterial disease, we analyze cardiac respiration and discover that CKD directly impairs cardiac mitochondrial function by decreasing oxidative phosphorylation. Protection of cardiac oxidative phosphorylation may be a therapeutic target in CKD.
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