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Published on: June 3, 2018
Loss of Cardiac PFKFB2 Drives Metabolic, Functional, and Electrophysiological Remodeling in the Heart
Kylene M Harold1,2, Satoshi Matsuzaki1, Atul Pranay1
1Aging and Metabolism Research Program, Oklahoma Medical Research Foundation Oklahoma City OK USA.
Background:
Phosphofructo-2-kinase/fructose-2,6-bisphosphatase (PFK-2) is a critical glycolytic regulator responsible for upregulation of glycolysis in response to insulin and adrenergic signaling. PFKFB2, the cardiac isoform of PFK-2, is degraded in the heart in the absence of insulin signaling, contributing to diabetes-induced cardiac metabolic inflexibility. However, previous studies have not examined how the loss of PFKFB2 affects global cardiac metabolism and function.
Methods And Results:
To address this, we have generated a mouse model with a cardiomyocyte-specific knockout of PFKFB2 (cKO). Using 9-month-old cKO and control mice, we characterized the impacts of PFKFB2 on cardiac metabolism, function, and electrophysiology. cKO mice have a shortened life span of 9 months. Metabolically, cKO mice are characterized by increased glycolytic enzyme abundance and pyruvate dehydrogenase activity, as well as decreased mitochondrial abundance and beta oxidation, suggesting a shift toward glucose metabolism. This was supported by a decrease in the ratio of palmitoyl carnitine to pyruvate-dependent mitochondrial respiration in cKO relative to control animals. Metabolomic, proteomic, and Western blot data support the activation of ancillary glucose metabolism, including pentose phosphate and hexosamine biosynthesis pathways. Physiologically, cKO animals exhibited impaired systolic function and left ventricular dilation, represented by reduced fractional shortening and increased left ventricular internal diameter, respectively. This was accompanied by electrophysiological alterations including increased QT interval and other metrics of delayed ventricular conduction.
Conclusions:
Loss of PFKFB2 results in metabolic remodeling marked by cardiac ancillary pathway activation. This could delineate an underpinning of pathologic changes to mechanical and electrical function in the heart.
Insights
Loss of cardiac phosphofructo-2-kinase/fructose-2,6-bisphosphatase (PFKFB2) impairs heart function and alters metabolism. This study reveals how PFKFB2 deficiency impacts cardiac pathways and physiology.
Area of Science:
- Cardiovascular Biology
- Metabolic Regulation
- Molecular Cardiology
Background:
- Phosphofructo-2-kinase/fructose-2,6-bisphosphatase (PFK-2) regulates glycolysis, crucial for heart energy. The cardiac isoform, PFKFB2, is vital for insulin and adrenergic signaling.
- PFKFB2 degradation in the heart contributes to diabetes-induced metabolic inflexibility.
- The specific effects of PFKFB2 loss on global cardiac metabolism and function remain uncharacterized.
Purpose of the Study:
- To investigate the impact of cardiomyocyte-specific PFKFB2 knockout (cKO) on cardiac metabolism, function, and electrophysiology.
- To elucidate the metabolic remodeling and functional consequences of PFKFB2 deficiency in the heart.
Main Methods:
- Generation of a cardiomyocyte-specific PFKFB2 knockout (cKO) mouse model.
- Comprehensive analysis of cardiac metabolism, function, and electrophysiology in 9-month-old cKO and control mice.
- Utilized metabolomic, proteomic, and Western blot analyses.
Main Results:
- cKO mice exhibited a shortened lifespan (9 months).
- Metabolic changes included increased glycolytic enzyme abundance, pyruvate dehydrogenase activity, and activation of ancillary glucose pathways (pentose phosphate, hexosamine biosynthesis).
- Decreased mitochondrial abundance, beta oxidation, impaired systolic function, left ventricular dilation, and electrophysiological alterations (increased QT interval) were observed.
Conclusions:
- Loss of PFKFB2 leads to significant cardiac metabolic remodeling with activation of ancillary glucose metabolism pathways.
- This metabolic shift is associated with pathological changes in cardiac mechanical and electrical function.

