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Published on: June 14, 2016
Myocardial Cytoskeletal Adaptations in Advanced Kidney Disease
Arvin Halim1, Gayatri Narayanan1, Takashi Hato1
1Division of Nephrology and Hypertension Indiana University School of Medicine Indianapolis IN.
Insights
Heart failure in chronic kidney disease involves cytoskeletal damage, particularly the focal adhesion pathway. This disruption impairs mitochondrial function and cell survival, highlighting a critical link between kidney disease and cardiac health.
Area of Science:
- Cardiovascular Biology
- Renal Medicine
- Cellular Biology
Background:
- The myocardial cytoskeleton is crucial for heart function, energy production, and structural adaptation.
- Impairment of the myocardial cytoskeleton in advanced chronic kidney disease (CKD) is poorly understood.
- CKD affects cardiac structure and function, but the underlying cytoskeletal changes are largely undescribed.
Purpose of the Study:
- To investigate myocardial cytoskeletal alterations in patients with advanced CKD undergoing hemodialysis.
- To identify specific molecular pathways involved in CKD-associated cardiac dysfunction.
- To explore the mechanisms driving cytoskeletal changes in CKD.
Main Methods:
- Cross-sectional study of explanted human heart tissues from hemodialysis patients, hypertension patients, and healthy controls.
- Pathologic examination and next-generation RNA sequencing of left ventricular tissues.
- In vitro mechanistic studies using human cardiac fibroblast models and interference RNA.
Main Results:
- Hemodialysis patients showed increased myocardial wall thickness and fibrosis compared to controls.
- Transcriptomic analysis revealed significant enrichment of the focal adhesion pathway in hemodialysis patients.
- Key cytoskeletal proteins (β-actin, β-tubulin, vimentin) were reduced, while vinculin was increased, associated with impaired mitochondrial bioenergetics and cell survival.
Conclusions:
- Myocardial failure in advanced CKD is characterized by cytoskeletal impairment, specifically disruption of the focal adhesion pathway.
- These cytoskeletal changes are linked to mitochondrial dysfunction and loss of cell survival pathways.
- Uremic and metabolic abnormalities in CKD can drive these cytoskeletal alterations.
Abstract:
Background The myocardial cytoskeleton functions as the fundamental framework critical for organelle function, bioenergetics and myocardial remodeling. To date, impairment of the myocardial cytoskeleton occurring in the failing heart in patients with advanced chronic kidney disease has been largely undescribed. Methods and Results We conducted a 3-arm cross-sectional cohort study of explanted human heart tissues from patients who are dependent on hemodialysis (n=19), hypertension (n=10) with preserved renal function, and healthy controls (n=21). Left ventricular tissues were subjected to pathologic examination and next-generation RNA sequencing. Mechanistic and interference RNA studies utilizing in vitro human cardiac fibroblast models were performed. Left ventricular tissues from patients undergoing hemodialysis exhibited increased myocardial wall thickness and significantly greater fibrosis compared with hypertension patients (P<0.05) and control (P<0.01). Transcriptomic analysis revealed that the focal adhesion pathway was significantly enriched in hearts from patients undergoing hemodialysis. Hearts from patients undergoing hemodialysis exhibited dysregulated components of the focal adhesion pathway including reduced β-actin (P<0.01), β-tubulin (P<0.01), vimentin (P<0.05), and increased expression of vinculin (P<0.05) compared with controls. Cytoskeletal adaptations in hearts from the hemodialysis group were associated with impaired mitochondrial bioenergetics, including dysregulated mitochondrial dynamics and fusion, and loss of cell survival pathways. Mechanistic studies revealed that cytoskeletal changes can be driven by uremic and metabolic abnormalities of chronic kidney disease, in vitro. Furthermore, focal adhesion kinase silencing via interference RNA suppressed major cytoskeletal proteins synergistically with mineral stressors found in chronic kidney disease in vitro. Conclusions Myocardial failure in advanced chronic kidney disease is characterized by impairment of the cytoskeleton involving disruption of the focal adhesion pathway, mitochondrial failure, and loss of cell survival pathways.
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