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Published on: February 12, 2011
Magnetic resonance spectroscopy in congenital heart disease
V M Miall-Allen1, G J Kemp, B Rajagopalan
1Vascular Biology and Pharmacology Unit, Institute of Child Health, London, UK.
Insights
31P magnetic resonance spectroscopy (MRS) is a safe, non-invasive tool for assessing heart and muscle energy metabolism in children with congenital heart disease. Hypoxemic children showed altered skeletal muscle energy reserves, while those with heart failure had reduced myocardial energy stores.
Area of Science:
- Biophysics
- Cardiovascular Medicine
- Pediatric Cardiology
Background:
- Congenital heart disease (CHD) impacts cardiac and skeletal muscle function.
- Assessing bioenergetics in pediatric patients presents unique challenges.
Purpose of the Study:
- To evaluate the feasibility of using 31P magnetic resonance spectroscopy (MRS) for studying myocardial and skeletal muscle bioenergetics in infants and young children with CHD.
- To investigate bioenergetic differences in children with cyanotic CHD, heart failure, and post-Senning procedure.
Main Methods:
- 31P MRS was performed on 18 pediatric patients with CHD and 16 age-matched controls using a 1.9 Tesla MRI scanner.
- Myocardial and skeletal muscle (gastrocnemius) bioenergetics were assessed at rest and during exercise in a subset of patients.
Main Results:
- Hypoxemic patients exhibited elevated resting skeletal muscle pH and faster fatigue during exercise, with normal phosphocreatine recovery.
- Skeletal muscle bioenergetics were normal in patients with heart failure.
- Myocardial phosphocreatine/ATP ratio was reduced in heart failure patients but normal in hypoxemic subjects.
Conclusions:
- 31P MRS is a safe and feasible non-invasive method for assessing pediatric myocardial and skeletal muscle bioenergetics.
- Hypoxemic children demonstrate altered skeletal muscle energy metabolism, while heart failure is associated with reduced myocardial energy stores.
- Findings suggest potential mitochondrial dysfunction and impaired oxygen supply in hypoxemic children post-exercise.
Objective:
To determine the feasibility of studying myocardial and skeletal muscle bioenergetics using 31P magnetic resonance spectroscopy (MRS) in babies and young children with congenital heart disease.
Subjects:
16 control subjects aged 5 months to 24 years and 18 patients with CHD, aged 7 months to 23 years, of whom 11 had cyanotic CHD, five had cardiac failure, and two had had a Senning procedure.
Design:
31P MRS was carried out using a 1.9 Tesla horizontal 65 cm bore whole body magnet to study the myocardium in 10 patients and skeletal muscle (gastrocnemius) in 14 patients, eight of whom were exercised, together with appropriate controls.
Results:
In hypoxaemic patients, in skeletal muscle at rest intracellular pH (pHi) was abnormally high [7.06 (SEM 0.04) v 7.04 (0.05), P < 0.01] and showed a positive correlation with haemoglobin (P < 0.03). On exercise, hypoxaemic patients fatigued more quickly but end-exercise pHi and phosphocreatine recovery were normal, implying that an equivalent but smaller amount of work had been performed. End-exercise ADP concentration was lower. On recovery, the initial rate of phosphocreatine resynthesis was low. Skeletal muscle bioenergetics were within normal limits in those in heart failure. In the myocardium, the phosphocreatine/ATP ratio was similar in controls and hypoxaemic subjects, but low in those in heart failure.
Conclusions:
In heart failure, the myocardial phosphocreatine/ATP ratio was reduced, as in adults, while resting skeletal muscle studies were normal. By contrast, hypoxaemic children had normal myocardial bioenergetics, but showed skeletal muscle alkalinity, and energy reserves were more readily depleted on exercise. On recovery, the initially slow phosphocreatine resynthesis rate reflects a low rate of mitochondrial ATP synthesis, probably due to an inadequate oxygen supply. 31P MRS offers a safe, non-invasive method of studying myocardial and skeletal muscle bioenergetics in children as young as 5 months.
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