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H Monod

Publications and source records attributed to H Monod.

97 records · Page 6Linked to original sources

Standard anaerobic exercise tests.

Anaerobic tests are divided into tests measuring anaerobic power and anaerobic capacity. Anaerobic power tests include force-velocity tests, vertical jump tests, staircase tests, and cycle ergometer tests. The values of maximal anaerobic power obtained with these different protocols are different but generally well correlated. Differences between tests include factors such as whether average power or instantaneous power is measured, active muscle mass is the same in all the protocols, the legs act simultaneously or successively, maximal power is measured at the very beginning of exercise or after several seconds, inertia of the devices and body segments are taken into account. Force-velocity tests have the advantage of enabling the estimation of the force and velocity components of power, which is not possible with tests such as a staircase test, a vertical jump, the Wingate test and other long-duration cycle ergometer protocols. Maximal anaerobic capacity tests are subdivided into maximal oxygen debt test, ergometric tests (all-out tests and constant load tests), measurement of oxygen deficit during a constant load test and measurement of peak blood lactate. The measurement of the maximal oxygen debt is not valid and reliable enough to be used as an anaerobic capacity test. The aerobic metabolism involvement during anaerobic capacity tests, and the ignorance of the mechanical efficiency, limit the validity of the ergometric tests which are only based on the measurement of work. The amount of work performed during the Wingate test depends probably on glycolytic and aerobic power as well as anaerobic capacity. The fatigue index (power decrease) of the all-out tests is not reliable and depends probably on aerobic power as well as the fast-twich fibre percentage. Reliability of the constant load tests has seldom been studied and has been found to be rather low. In theory, the measure of the oxygen deficit during a constant load test is more valid than the other tests but its reliability is unknown. The validity and reliability of postexercise blood lactate as a test of maximal anaerobic capacity are probably not better than that of the current erogmetric tests. The choice of an anaerobic test depends on the aims and subjects of a study and its practicability within a testing session.

Anaerobiosis↗

Influence of cycle ergometer characteristics on the adolescents' anaerobic abilities testing.

The present study examined whether the reported lower values of anaerobic abilities in children and adolescents, both in absolute and related to bodyweight values, as compared to adults can be explained, partially at least, by a non-optimal testing apparatus. So, they cannot express their anaerobic abilities. Specifically, we examined the force-velocity (F-V) relationship on a mechanical cycle ergometer, in 23 adolescents and 11 adults, with two wheels of very different weights: 6.3 kg (Wh6) and 18 kg (Wh18). A higher wheel inertia might explain a late reach or no reach of the true peak velocity and the maximal anaerobic power (PmaxAn). The adolescent group showed higher Vo (V for zero braking force) values with Wh6 (238 +/- 14 vs 223 +/- 16 rpm) (P < 0.001) than with Wh18. The absolute or relative PmaxAn values for this group were slightly higher, but not significantly, with Wh6 (10.6 +/- 2.2 vs 10.2 +/- 1.9 W/kg). The delay to reach peak velocity was higher with Wh18 than with Wh6 (P < 0.001) in the two groups. In addition, the delay was always higher (P < 0.001) in the adolescent group compared to the adult group for both wheels. This suggests that the fatigue related to the observed late reach and the rapid decrease of power over time could lead to an underestimation of the PmaxAn peak in children.

Adolescent↗

Prediction of exhaustion time from heart rate drift.

Beaury and Eclache (1978) proposed to extrapolate the drift of the heart rate up to maximal heart rate (Hrmax measured during an incremental maximal test) as a convenient way of estimation of the exhaustion tim (tlim) of an exercise at constant power (75 or 80% of Maximal Aerobic Power (MAP)). The purpose of this study was to evaluate this method of estimation of exhaustion time for a large range of power (60, 73, 86, 100 and 120% MAP). We compared the exercise duration calculated with this method (1limtheo) and the actual exhaustion time (tlim). The results showed that the subjects did not reach their maximal heart rate (Hrmax) at tlim and consequently that tlimtheo, calculated by extrapolation of heart rate drift, overestimated tlim, for all the loads in our study. The difference between tlimtheo and tlim (delta tlim expressed as a percentage of tlim) is significantly lower at 86% MAP than delta tlim at the other loads. It is likely that delta tlim is minimal around 80% MAP, i.e. the loads used in the study by Beaury and Eclache (1978). The values of heart rate (Hrlim), oxygen uptake (VO2lim) and oxygen puls (O2pulslim) measured at exhaustion suggested that the high level of energy cost is one of the main limiting factors at 86% MAP, in contrast with other loads.

Adult↗

Complementary roles of central command and muscular reflex in the regulation of heart rate during submaximal isometric contraction.

During submaximal isometric contraction, the heart rate (HR) and the electromyographic activity (EMG) increase continuously. Although activation of the muscle and the cardiovascular center is placed partly under the common control of the central command, the nature of the relationship that may exist between HR and the integrated electromyogram (iEMG) is seldom studied. Seventeen healthy men, 22.4 +/- 0.5 years of age (M +/- SE), performed isometric contractions with the right elbow flexors. Forces of 25, 40, 50 and 65% of the maximum voluntary contraction (MVC) were used, and the contractions were sustained until (isotonic isometric contraction: IIC) and beyond exhaustion (anisotonic isometric contraction: AIC). During IIC, a linear relationship exists between HR and iEMG; the slope of this relationship is independent of the relative force developed, which is in favor of a predominant role played by the central command in HR increase. The increase in the ratio iEMG/HR at the approach of local muscular exhaustion would indicate that at the end of IIC there is an increase in the relative part furnished by the information of peripheral origin in HR regulation. During AIC, the force (F) decreases in an exponential manner and stabilizes at around 25% MVC from tAIC = 70 s on. The iEMG and HR change independently: iEMG decreases like F such that iEMG/F remains constant; HR continues to increase in the first phase corresponding to the rapid decrease in F and iEMG, then in a second phase, it decreases linearly with respect to time. Our results suggest that the action of the central command is dominant during stage 1 of AIC, while during stage 2 the relative part furnished by the muscle reflexes increases. Beyond tAIC = 70 s, there seems to be a certain degree of central fatigue.

Adolescent↗

Typology of the respiratory muscles in normal men and in patients with moderate chronic respiratory diseases.

Histochemical muscle fibre composition was studied in biopsies from the diaphragm, the external and internal intercostal muscles in the fifth intercostal space and horizontal and vertical parts of the serratus in 8 subjects with normal lung function and in 18 patients with abnormal lung function (6 restrictive and 12 obstructive). Muscle fibres were classified as type I (slow twitch) or type II (fast twitch) on the basis of their myofibrillar ATPase pH lability. All the muscles studied showed a mosaic pattern with the two fibre types. In every respiratory muscle, the percentage of type I fibres was higher than 50%. There was no significant difference between the three groups (normal, restrictive and obstructive) for each of the six muscles studied. The fibre diameters were similar for all types and muscles (range of means: 41-63 micron), except for the diaphragm in which the diameters of type I and type II fibres were significantly higher in the normal subjects as compared to the obstructive and restrictive patients. Moreover, there was a significant linear correlation between the diameter of the diaphragmatic fibres and vital capacity and FEV1. A low "atrophy factor" was found for each muscle studied with a large intra-individual variation. The results support the idea that the increased respiratory loading due to disease do not hypertrophy the respiratory muscles and suggest that the effect of the disease on the respiratory muscles is more related to the increased mechanical impedance of the respiratory system rather than to the changes in thoracic configuration.

Adenosine Triphosphatases↗