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Updated: Jun 18, 2026

A Murine Model of Hyperlipidemia-Induced Heart Failure with Preserved Ejection Fraction
Published on: March 29, 2024
Mice over-expressing the myocardial creatine transporter develop progressive heart failure and show decreased
Darci Phillips1, Michiel Ten Hove, Jurgen E Schneider
1Department of Cardiovascular Medicine, University of Oxford, Henry Wellcome Building of Genomic Medicine, Roosevelt Drive, Oxford OX3 7BN, UK.
Abstract:
The metabolic phenotype of the failing heart includes a decrease in phosphocreatine and total creatine concentration [Cr], potentially contributing to contractile dysfunction. Surprisingly, in 32- week-old mice over-expressing the myocardial creatine transporter (CrT-OE), we previously demonstrated that elevated [Cr] correlates with left ventricular (LV) hypertrophy and failure. The aim of this study was to determine the temporal relationship between elevated [Cr] and the onset of cardiac dysfunction and to screen for potential molecular mechanisms. CrT-OE mice were compared with wild-type (WT) littermate controls longitudinally using cine-MRI to measure cardiac function and single-voxel (1)H-MRS to measure [Cr] in vivo at 6, 16, 32, and 52 weeks of age. CrT-OE mice had elevated [Cr] at 6 weeks (mean 1.9-fold), which remained constant throughout life. Despite this increased [Cr], LV dysfunction was not apparent until 16 weeks and became more pronounced with age. Additionally, LV tissue from 12 to 14 week old CrT-OE mice was compared to WT using 2D difference in-gel electrophoresis (DIGE). These analyses detected a majority of the heart's metabolic enzymes and identified seven proteins that were differentially expressed between groups. The most pronounced protein changes were related to energy metabolism: alpha- and beta-enolase were selectively decreased (p<0.05), while the remaining enzymes of glycolysis were unchanged. Consistent with a decrease in enolase content, its activity was significantly lower in CrT-OE hearts (in WT, 0.59+/-0.02 micromol ATP produced/microg protein/min; CrT-OE, 0.31+/-0.06; p<0.01). Additionally, anaerobic lactate production was decreased in CrT-OE mice (in WT, 102+/-3 micromol/g wet myocardium; CrT-OE, 78+/-13; p=0.02), consistent with decreased glycolytic capacity. Finally, we found that enolase may be regulated by increased expression of the beta-enolase repressor transcription factor, which was significantly increased in CrT-OE hearts. This study demonstrates that chronically increased myocardial [Cr] in the CrT-OE model leads to the development of progressive hypertrophy and heart failure, which may be mediated by a compromise in glycolytic capacity at the level of enolase.
Insights
Elevated myocardial creatine (Cr) in CrT-OE mice leads to heart failure, despite normal creatine levels in healthy hearts. This study reveals a link between high Cr and cardiac dysfunction, mediated by altered energy metabolism.
Area of Science:
- Cardiology
- Biochemistry
- Molecular Biology
Background:
- Decreased phosphocreatine and total creatine concentration [Cr] characterize failing hearts.
- Overexpression of the myocardial creatine transporter (CrT-OE) leads to elevated [Cr], left ventricular (LV) hypertrophy, and heart failure in mice.
Purpose of the Study:
- To determine the temporal relationship between elevated [Cr] and cardiac dysfunction onset.
- To investigate potential molecular mechanisms underlying CrT-OE-induced heart failure.
Main Methods:
- Longitudinal in vivo cine-MRI and (1)H-MRS in CrT-OE and wild-type (WT) mice from 6 to 52 weeks.
- 2D difference in-gel electrophoresis (DIGE) of LV tissue to identify differentially expressed proteins.
- Enzyme activity assays and measurement of anaerobic lactate production.
Main Results:
- Elevated [Cr] was observed in CrT-OE mice from 6 weeks of age.
- LV dysfunction was evident by 16 weeks and worsened with age.
- Decreased alpha- and beta-enolase expression and activity were observed, correlating with reduced glycolytic capacity and lactate production.
- Increased expression of a beta-enolase repressor transcription factor was noted in CrT-OE hearts.
Conclusions:
- Chronically elevated myocardial [Cr] in CrT-OE mice induces progressive cardiac hypertrophy and heart failure.
- Compromised glycolytic capacity, specifically at the enolase level, may mediate this process.
- Findings suggest a complex role for creatine metabolism in cardiac function and dysfunction.

