A translational model of MASLD-associated HFpEF defines mitochondrial dysfunction and cardiac plasticity during
Souradipta Ganguly1, Betul Gunes2, Yusu Gu2
1Sanford Burnham Prebys Medical Discovery Institute, La Jolla, CA, USA; Department of Medicine, University of California, San Diego, La Jolla, CA, USA.
Background:
Metabolic dysfunction-associated steatotic liver disease (MASLD) and its advanced form, MASH, are closely linked to cardiac dysfunction, particularly heart failure with preserved ejection fraction (HFpEF). However, the mechanisms underlying MASLD-associated HFpEF and its reversibility remain poorly understood, largely due to the lack of robust preclinical models. Here, we established a translational model of MASLD-associated cardiac dysfunction that recapitulates the key features of human HFpEF. We applied functional and transcriptomic analyses of the left ventricle (LV) to define the pathways associated with cardiac dysfunction and its reversibility.
Methods:
Alms1-/- (Foz/Foz) mice and wild-type littermates were fed normal chow (NC) or Western diet (WD) for up to 36 weeks (wk). Reversibility was modeled by switching WD-fed Foz/Foz mice at 12wk back to NC for 12wk. Cardiac assessment included echocardiography, invasive hemodynamics with dobutamine stimulation, histopathology, electron microscopy and isolated cardiomyocyte contractility. LV transcriptomes were profiled by bulk RNA sequencing and analyzed by differential expression and pathway enrichment.
Results:
Foz/Foz mice on WD for 24wk developed metabolic syndrome and MASH with advanced liver fibrosis. Cardiac phenotyping showed LV hypertrophy, impaired cardiomyocyte contractility, reduced β-adrenergic reserve, elevated plasma BNP, and increased mortality while the ejection fraction was preserved (>50%), consistent with HFpEF. The progression of cardiac dysfunction was closely associated with liver fibrosis that developed during MASH. Switching WD-fed Foz/Foz mice at 12wk to normal chow diet reversed hepatic fibrosis, restored LV function, and reduced mortality, demonstrating plasticity of the liver-heart axis. LV transcriptomic analysis revealed that cardiac impairment in these mice was associated with mitochondrial dysfunction, altered substrate utilization, extracellular matrix remodeling, and metabolic stress; pathways that are similarly dysregulated in human HFpEF. Cardiac electron microscopy revealed swollen mitochondria with disrupted cristae, which improved following dietary intervention.
Conclusions:
Mitochondrial dysfunction and fibroinflammatory remodeling are prominent features of MASLD-associated cardiac dysfunction. Reversal of hepatic and cardiac phenotypes with dietary intervention, together with elucidation of underlying pathways, establish the Foz/Foz model as a useful translational platform for studying liver-heart axis in MASLD.
Insights
Dietary intervention reversed liver fibrosis and cardiac dysfunction in a mouse model of metabolic dysfunction associated steatotic liver disease (MASLD). This study highlights mitochondrial dysfunction and fibroinflammatory remodeling as key factors in MASLD-associated heart failure with preserved ejection fraction (HFpEF).
Area of Science:
- Cardiovascular Biology
- Metabolic Disease Research
- Translational Medicine
Background:
- Metabolic dysfunction associated steatotic liver disease (MASLD) and MASH are linked to heart failure with preserved ejection fraction (HFpEF).
- Mechanisms and reversibility of MASLD-associated HFpEF are poorly understood due to limited preclinical models.
- A translational model was developed to study MASLD-associated cardiac dysfunction and HFpEF.
Purpose of the Study:
- To establish and characterize a preclinical model of MASLD-associated cardiac dysfunction.
- To investigate the mechanisms underlying cardiac impairment in MASLD.
- To explore the reversibility of cardiac dysfunction through dietary intervention.
Main Methods:
- Alms1-/- (Foz/Foz) mice were fed a Western diet (WD) or normal chow (NC).
- Cardiac function was assessed via echocardiography, hemodynamics, and cardiomyocyte contractility.
- Left ventricle (LV) transcriptomes were analyzed by bulk RNA sequencing.
Main Results:
- Foz/Foz mice on WD developed MASH, liver fibrosis, and HFpEF-like cardiac dysfunction.
- Dietary switch from WD to NC reversed hepatic fibrosis and improved cardiac function and survival.
- LV transcriptomics revealed mitochondrial dysfunction, altered substrate utilization, and metabolic stress.
Conclusions:
- Mitochondrial dysfunction and fibroinflammatory remodeling are key features of MASLD-associated cardiac dysfunction.
- Dietary intervention can reverse hepatic and cardiac phenotypes in this model.
- The Foz/Foz model provides a platform for studying the liver-heart axis in MASLD.
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