Are Prepubertal Children Metabolically Comparable to Well-Trained Adult Endurance Athletes?
Sébastien Ratel1, Anthony J Blazevich2
1Université Clermont Auvergne, Laboratoire des Adaptations Métaboliques à l'Exercice en conditions Physiologiques et Pathologiques (AME2P, EA 3533), F-63000, Clermont-Ferrand, France. Sebastien.RATEL@univ-bpclermont.fr.
Insights
Prepubertal children exhibit metabolic advantages similar to endurance athletes, with a greater reliance on aerobic energy and less muscle fatigue. This metabolic profile shifts during development, impacting exercise capacity and disease risk.
Area of Science:
- Exercise Physiology
- Pediatric Metabolism
- Sports Science
Background:
- Prepubertal children have lower mechanical efficiency and work capacity compared to adults.
- Despite physical differences, children show unique metabolic characteristics during exercise.
Purpose of the Study:
- To compare the metabolic and fatigue profiles of prepubertal children with well-trained adult endurance athletes.
- To investigate the developmental changes in aerobic metabolism from childhood to adulthood.
Main Methods:
- Analysis of energy contribution from aerobic and anaerobic metabolism during exercise.
- Intramuscular measurements including fiber type, enzyme activity, and mitochondrial density.
- Assessment of phosphocreatine re-synthesis and muscle byproduct clearance rates.
- Evaluation of peak power output decrements during repeated exercise bouts.
Main Results:
- Prepubertal children demonstrate a comparable relative oxidative energy contribution to trained adults.
- Children exhibit reduced susceptibility to muscular fatigue and faster aerobic metabolic response.
- Muscle characteristics like type I fiber percentage and mitochondrial density align with trained athletes.
- Peak power output decline during repeated exercise is similar in children and trained adults.
Conclusions:
- Prepubertal children possess metabolic characteristics similar to well-trained adult endurance athletes.
- A decline in relative oxidative contribution occurs from childhood to early adulthood.
- Understanding these metabolic differences is crucial for developing exercise interventions for metabolic diseases.
Abstract:
It is well acknowledged that prepubertal children have smaller body dimensions and a poorer mechanical (movement) efficiency, and thus a lower work capacity than adults. However, the scientific evidence indicates that prepubertal children have a greater net contribution of energy derived from aerobic metabolism in exercising muscle and reduced susceptibility to muscular fatigue, which makes them metabolically comparable to well-trained adult endurance athletes. For example, the relative energy contribution from oxidative and non-oxidative (i.e. anaerobic) sources during moderate-to-intense exercise, the work output for a given anaerobic energy contribution and the rate of acceleration of aerobic metabolic machinery in response to submaximal exercise are similar between prepubertal children and well-trained adult endurance athletes. Similar conclusions can be drawn on the basis of experimental data derived from intra-muscular measurements such as type I fibre percentage, succinate dehydrogenase enzyme activity, mitochondrial volume density, post-exercise phosphocreatine re-synthesis rate and muscle by-product clearance rates (i.e. H+ ions). On a more practical level, prepubertal children also experience similar decrements in peak power output as well-trained adult endurance athletes during repeated maximal exercise bouts. Therefore, prepubertal children have a comparable relative oxidative contribution to well-trained adult endurance athletes, but a decrease in this relative contribution occurs from childhood through to early adulthood. In a clinical context, this understanding may prove central to the development of exercise-based strategies for the prevention and treatment of many metabolic diseases related to mitochondrial oxidative dysfunction (e.g. in obese, insulin-resistant and diabetic patients), which are often accompanied by muscular deconditioning during adolescence and adulthood.
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