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.

Abstract

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.