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Updated: Jan 25, 2026

Cardiac Magnetic Resonance Imaging at 7 Tesla
Published on: January 6, 2019
Cardiac applications of hyperpolarised magnetic resonance
Kerstin N Timm1, Jack J Miller2, John A Henry1
1Department of Physiology, Anatomy and Genetics, University of Oxford, UK.
Insights
Hyperpolarized magnetic resonance imaging offers a novel, non-invasive method to assess cardiac metabolism and energetics in real-time. This technique shows promise for evaluating heart disease and treatment responses in clinical settings.
Area of Science:
- Cardiovascular Medicine
- Metabolic Imaging
- Biophysics
Background:
- Cardiovascular disease is a leading global cause of mortality.
- Cardiac pathologies are linked to metabolic changes and impaired cardiac energetics.
- The heart's high ATP turnover necessitates efficient substrate utilization and oxidation.
Purpose of the Study:
- To review cardiac metabolism in healthy and diseased states.
- To introduce hyperpolarized magnetic resonance spectroscopy and imaging (dynamic nuclear polarization).
- To explore preclinical studies of cardiac metabolism and heart disease models using this technique.
Main Methods:
- Review of preclinical studies utilizing hyperpolarized magnetic resonance.
- Summary of dynamic nuclear polarization (DNP) principles for metabolic imaging.
- Assessment of clinical translation progress and remaining technical challenges.
Main Results:
- Hyperpolarized magnetic resonance enables real-time in vivo metabolic flux assessment.
- Preclinical studies have explored cardiac metabolism in various heart disease models.
- Advances in clinical translation of DNP for cardiac applications are emerging.
Conclusions:
- Hyperpolarized magnetic resonance is a valuable tool for assessing cardiac metabolism and energetics.
- The technique has potential for routine clinical care in cardiology.
- Further research is needed to address clinical needs and explore new metabolic substrates.
Abstract:
Cardiovascular disease is the leading cause of death world-wide. It is increasingly recognised that cardiac pathologies show, or may even be caused by, changes in metabolism, leading to impaired cardiac energetics. The heart turns over 15 times its own weight in ATP every day and thus relies heavily on the availability of substrates and on efficient oxidation to generate this ATP. A number of old and emerging drugs that target different aspects of metabolism are showing promising results with regard to improved cardiac outcomes in patients. A non-invasive imaging technique that could assess the role of different aspects of metabolism in heart disease, as well as measure changes in cardiac energetics due to treatment, would be valuable in the routine clinical care of cardiac patients. Hyperpolarised magnetic resonance spectroscopy and imaging have revolutionised metabolic imaging, allowing real-time metabolic flux assessment in vivo for the first time. In this review we summarise metabolism in the healthy and diseased heart, give an introduction to the hyperpolarisation technique, 'dynamic nuclear polarisation' (DNP), and review the preclinical studies that have thus far explored healthy cardiac metabolism and different models of human heart disease. We furthermore show what advances have been made to translate this technique into the clinic, what technical challenges still remain and what unmet clinical needs and unexplored metabolic substrates still need to be assessed by researchers in this exciting and fast-moving field.
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