Cardiac phosphorus-31 two-dimensional chemical shift imaging in patients with hereditary hemochromatosis
Michael F H Schocke1, Heinz Zoller, Wolfgang Vogel
1Department of Radiology, University Hospital of Innsbruck, Anichstrasse 35, 6020 Innsbruck, Tyrol, Austria. michael.schocke@uibk.ac.at
Insights
Hereditary hemochromatosis (HHC) patients show decreased cardiac high-energy phosphate metabolism, indicated by lower phosphocreatine (PCr) to beta-adenosine triphosphate (beta-ATP) ratios. This occurs before structural heart disease develops, suggesting early mitochondrial impairment from iron overload.
Area of Science:
- Cardiology
- Biochemistry
- Medical Imaging
Background:
- Hereditary hemochromatosis (HHC) is an iron overload disorder.
- Cardiac complications, including restrictive cardiomyopathy, are known in HHC.
- Early detection of cardiac metabolic changes is crucial.
Purpose of the Study:
- To detect alterations in cardiac high-energy phosphate metabolism in HHC patients.
- To investigate these changes before the onset of structural heart disease.
- To evaluate the utility of cardiac phosphorus-31 two-dimensional chemical shift imaging ((31)P 2D CSI).
Main Methods:
- Utilized cardiac phosphorus-31 two-dimensional chemical shift imaging ((31)P 2D CSI).
- Studied 24 male HHC patients (C282Y mutation) and 24 age-matched healthy male volunteers.
- Performed electrocardiograph-triggered transversal (31)P 2D CSI on a 1.5-Tesla MRI scanner.
Main Results:
- Significantly decreased left ventricle mean phosphocreatine (PCr) to beta-adenosine triphosphate (beta-ATP) ratios in HHC patients (1.60 +/- 0.41) compared to controls (1.93 +/- 0.36).
- Detected moderate, negative correlations between PCr/beta-ATP ratios and transferrin saturation, cholesterol, LDL, and triglycerides.
- Demonstrated (31)P 2D CSI's ability to detect metabolic alterations without structural heart disease evidence.
Conclusions:
- Cardiac (31)P 2D CSI can detect early alterations in high-energy phosphate metabolism in HHC.
- Decreased PCr/beta-ATP ratios in HHC may result from mitochondrial dysfunction due to cardiac iron overload.
- This finding highlights potential therapeutic targets for preventing HHC-related heart disease.
Abstract:
Hemochromatosis is a hereditary iron overload syndrome characterized by increased iron storage, followed by liver cirrhosis and is often associated with restrictive cardiomyopathy. The purpose of this study was to detect alterations of cardiac high-energy phosphate metabolism in patients with hereditary hemochromatosis (HHC) prior to the development of structural heart diseases. Therefore cardiac phosphorus-31 two-dimensional chemical shift imaging ((31)P 2D CSI) was employed. Twenty-four male patients (mean age 47.2 +/- 12 years) homozygous for the C282Y mutation in the hemochromatosis associated HFE gene and twenty-four male healthy volunteers (mean age 47 +/- 11 years) as age-matched controls were included in this study. Using a 1.5-Tesla whole-body magnetic resonance scanner, electrocardiograph-triggered transversal 31P 2D CSI was performed. Left ventricle mean phosphocreatine (PCr) to beta-adenosine triphosphate (beta-ATP) ratios of patients with HHC (1.60 +/- 0.41) were significantly decreased in comparison to healthy volunteers (1.93 +/- 0.36; p = 0.004). Furthermore, we detected moderate, negative correlations between left ventricular PCr to beta-ATP ratios and transferrin saturation, cholesterol, low-density lipoprotein as well as triglyceride. This study shows that 31P 2D CSI permits the detection of alterations of cardiac high-energy phosphate metabolism in patients with HHC, but without any evidence for heart disease. The decreased PCr to beta-ATP ratios in HHC might be caused by mitochondrial impairment due to cardiac iron overload.
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