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A Rat Model of Pressure Overload Induced Moderate Remodeling and Systolic Dysfunction as Opposed to Overt Systolic Heart Failure
Published on: April 30, 2020
Key pathways associated with heart failure development revealed by gene networks correlated with cardiac remodeling
Zhong Gao1, Andreas S Barth, Deborah DiSilvestre
1The Institute for Computational Medicine, The Johns Hopkins University, Baltimore, Maryland 21205, USA.
Insights
Early gene expression changes in tachycardia-induced heart failure (HF) in dogs reveal molecular systems involved in cardiac remodeling. Most transcriptional changes occur early, suggesting posttranscriptional regulation in later stages of HF.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Systems Biology
Background:
- Heart failure (HF) is a major cause of death globally.
- Transcriptomic changes in end-stage HF are known, but early development is unclear.
- Large mammal models are needed to study HF development.
Purpose of the Study:
- To investigate gene expression patterns during the development of tachycardia-induced HF in a canine model.
- To correlate transcriptomic changes with hemodynamic and electrical remodeling.
- To identify molecular systems involved in early HF pathogenesis.
Main Methods:
- Utilized a canine model of tachycardia-induced HF.
- Examined global gene expression in left ventricular myocardium using oligonucleotide arrays at multiple time points (days 3, 7, 14, 21).
- Measured action potential duration, conduction velocity, and cardiac function (dP/dt(max), LVEDP).
Main Results:
- A phenotype-centered gene association network was developed, linking molecular systems to remodeling processes.
- Gene Ontology analysis showed early regulation of oxidative phosphorylation, ATP synthesis, signaling, and extracellular matrix components by day 3.
- These early changes coincided with initial declines in cardiac function and action potential duration.
- Few additional transcriptomic changes were observed as HF progressed to overt dysfunction.
Conclusions:
- The majority of gene expression alterations in tachypacing-induced HF occur early in the disease process.
- Early transcriptomic changes are linked to the initiation of hemodynamic and electrical remodeling.
- Posttranscriptional modifications may play a more significant role in later stages of HF progression.
Abstract:
Heart failure (HF) is the leading cause of morbidity and mortality in the industrialized world. While the transcriptomic changes in end-stage failing myocardium have received much attention, no information is available on the gene expression patterns associated with the development of HF in large mammals. Therefore, we used a well-controlled canine model of tachycardia-induced HF to examine global gene expression in left ventricular myocardium with Affymetrix canine oligonucleotide arrays at various stages after initiation of rapid ventricular pacing (days 3, 7, 14, and 21). The gene expression data were complemented with measurements of action potential duration, conduction velocity, and left ventricular end diastolic pressure, and dP/dt(max) over the time course of rapid ventricular pacing. As a result, we present a phenotype-centered gene association network, defining molecular systems that correspond temporally to hemodynamic and electrical remodeling processes. Gene Ontology analysis revealed an orchestrated regulation of oxidative phosphorylation, ATP synthesis, cell signaling pathways, and extracellular matrix components, which occurred as early as 3 days after the initiation of ventricular pacing, coinciding with the early decline in left ventricular pump function and prolongation of action potential duration. The development of clinically overt left ventricular dysfunction was associated with few additional changes in the myocardial transcriptome. We conclude that the majority of tachypacing-induced transcriptional changes occur early after initiation of rapid ventricular pacing. As the transition to overt HF is characterized by few additional transcriptional changes, posttranscriptional modifications may be more critical in regulating myocardial structure and function during later stages of HF.
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