Abstract
Little attention has been paid to children with respect to factors controlling maximal
oxygen uptake (V·O2max). This study was therefore specifically designed to examine the potential relationships
between cardiac size, diastolic function and O2 carrying capacity with maximal aerobic capacity. Specifically, body size indices
(body surface area, lean body mass), resting left ventricular dimensions and filling
characteristics, blood haemoglobin concentration as well as V·O2max established during a maximal cycle exercise test were assessed in a large cohort
(n = 142) of healthy 10 - 11 year old boys and girls. Results were compared between
groups of low (< 50, L), moderate (50 - 60, M) and high (> 60, H) V·O2max (ml · min-1 · kg-1 of lean body mass). Moreover, potential contributors to V·O2max variance were investigated using univariate and multivariate regression analyses
over the overall population. The major results show no differences between the 3 groups
for all diastolic and systolic function indices as well as blood haemoglobin and systemic
vascular resistances (used as an index of afterload). None of these variables emerged
from regression analyses as potential predictors of V·O2max. After accounting for body size variation, heart dimensions, and especially left ventricular
internal dimensions, differed between H and M and L and were associated with higher
cardiac filling and subsequently stroke volume. Strong relationships between V·O2max and heart dimensions were noticed, due primarily but not exclusively to the influence
of body size. After adjusting for lean body mass, end-diastolic diameter contributed
modestly (8 %) but significantly to V·O2max variance, which is biologically meaningful.
Key words
V·O2max
- cardiac size - diastolic function - O2 carrying capacity - children
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Prof. P. Obert
Laboratoire de Physiologie des Adaptations Cardiovasculaires à l'Exercice · Faculté
des Sciences · Département STAPS
33 rue Louis Pasteur
84000 Avignon
France
Phone: + 33432743201
Fax: + 33 4 90 14 44 09
Email: Philippe.obert@univ-avignon.fr