PubMed Health⌕ Search

Biomedical subjects

Patrick Decherchi

Publications and source records attributed to Patrick Decherchi.

6 recordsLinked to original sources

EMG versus oxygen uptake during cycling exercise in trained and untrained subjects.

The aim of this study was to test the hypothesis that bicycle training may improve the relationship between the global SEMG energy and VO2. We already showed close adjustment of the root mean square (RMS) of the surface electromyogram (SEMG) to the oxygen uptake (VO2) during cycling exercise in untrained subjects. Because in these circumstances an altered neuromuscular transmission which could affect SEMG measurement occurred in untrained individuals only, we searched for differences in the SEMG vs. VO2 relationship between untrained subjects and well-trained cyclists. Each subject first performed an incremental exercise to determine VO2max and the ventilatory threshold, and second a constant-load threshold cycling exercise, continued until exhaustion. SEMG from both vastus lateralis muscles was continuously recorded. RMS was computed. M-Wave was periodically recorded. During incremental exercise: (1) a significant non-linear positive correlation was found between RMS increase and VO2 increase in untrained subjects, whereas the relationship was best fitted by a straight line in trained cyclists; (2) the RMS/VO2 ratio decreased progressively throughout the incremental exercise, its decline being significantly and markedly accentuated in trained cyclists; (3) in untrained subjects, significant M-wave alterations occurred at the end of the trial. These M-wave alterations could explain the non-linear RMS increase in these individuals. During constant-load exercise: (1) after an initial increase, the VO2 ratio decreased progressively to reach a plateau after 2 min of exercise, but no significant inter-group differences were noted; (2) no M-wave changes were measured in the two groups. We concluded that the global SEMG energy recorded from the vastus lateralis muscle is a good estimate of metabolic energy expenditure during incremental cycling exercise only in well-trained cyclists.

Adult↗

Neuromuscular rehabilitation by treadmill running or electrical stimulation after peripheral nerve injury and repair.

Numerous studies have been devoted to the regeneration of the motor pathway toward a denervated muscle after nerve injury. However, the regeneration of sensory muscle endings after repair by self-anastomosis are little studied. In previous electrophysiological studies, our laboratory showed that the functional characteristics of tibialis anterior muscle afferents are differentially affected after injury and repair of the peroneal nerve with and without chronic electrostimulation. The present study focuses on the axonal regeneration of mechano- (fibers I and II) and metabosensitive (fibers III and IV) muscle afferents by evaluating the recovery of their response to different test agents after nerve injury and repair by self-anastomosis during 10 wk of treadmill running (LSR). Data were compared with control animals (C), animals with nerve lesion and suture (LS), and animals with lesion, suture, and chronic muscle rehabilitation by electrostimulation (LSE) with a biphasic current modulated in pulse duration and frequency, eliciting a pattern mimicking the activity delivered by the nerve to the muscle. Compared with the C group, results indicated that 1) muscle weight was smaller in LS and LSR groups, 2) the fatigue index was greater in the LS group and smaller in the LSE group, 3) metabosensibility remained altered in the LS and LSE groups, and 4) mechanosensitivity presented a large increase of the activation pattern in the LS and LSE groups. Our data indicated that chronic muscle electrostimulation partially favors the recovery of muscle properties (i.e., muscle weight and twitch response were close to the C group) and that rehabilitation by treadmill running also efficiently induced a better functional muscle afferent recovery (i.e., the discharge pattern was similar to the C group). The effectiveness of the chronic electromyostimulation and the treadmill exercise on afferent recovery is discussed with regard to parameters listed above.

Action Potentials↗

Transplantation of olfactory ensheathing cells into spinal cord lesions restores breathing and climbing.

One of the most devastating effects of damage to the upper spinal cord is the loss of the ability to breathe; patients suffering these injuries can be kept alive only with assisted ventilation. No known method for repairing these injuries exists. We report here the return of supraspinal control of breathing and major improvements in climbing after the application of a novel endogenous matrix transfer method. This method permits efficient transfer and retention of cultured adult rat olfactory ensheathing cells when transplanted into large lesions that destroy all tracts on one side at the upper cervical level of the adult rat spinal cord. This demonstrates that transplantation can produce simultaneous repair of two independent spinal functions.

Animals↗

Changes in neuromuscular function after training by functional electrical stimulation.

We examined whether the neuromuscular function of rectus femoris (RF) and flexor digitorum brevis (FDB) in humans was modified after a 6-week training period of functional electrical stimulation (FES), and whether any effects persisted at the end of a 6-week post-FES recovery period. In both the stimulated and contralateral nonstimulated muscles, we recorded the muscle force, surface electromyogram, and M wave, and also measured the root mean square (RMS) and the median frequency (MF) during static contraction sustained until exhaustion at 60% of maximal voluntary contraction (MVC). FES was performed with symmetric biphasic pulses, with a ramp modulation of both the stimulation frequency and pulse duration. No changes in MCV and endurance time to exhaustion occurred in nonstimulated muscles, whereas a significant MVC increase occurred immediately after FES in RF (+14 +/- 5%) and FDB (+13 +/- 5%), these effects persisting 6 weeks after the end of FES. In FDB, FES also elicited a significant increase in endurance time to exhaustion (+18 +/- 7%). The M-wave characteristics never varied after FES, but a marked attenuation occurred in the MF decrease and the RMS increase measured at endurance time to sustained 60% MVC, especially in FDB, which contains the higher proportion of type II fibers. These data indicate that FES improves muscle function and elicits changes in central muscle activation. The benefits of FES were greater in FDB, which is highly fatigable, and persisted for at least a 6-week period.

Action Potentials↗

[Role of metabosensitive afferent fibers in neuromuscular adaptive mechanisms].

Role of metabosensitive afferent fibers in neuromuscular adaptive mechanisms. Adaptation to exercise is provided by central neuron activity adjustments which are regulated partly by activation of group I and II (mechanosensitive) and group III and IV (metabosentitive) afferent fibers. These last two groups are activated by exercise-induced changes in muscle metabolism. The role played by these afferents seems to be crucial to exercise and fatigue tolerance adaptive mechanisms. Nevertheless, many questions remain unresolved. The aim of this review is to focus on the involvement of metabosensitivity in sensorimotor loops and neuromuscular adaptive mechanisms. The existence of an adaptive cardiovascular and respiratory reflex to exercise originating from metabosensitive afferent fiber activation is well established. Furthermore, the mechanism of skeletal muscle protection against fatigue could be due to modulation of central motor command at the spinal and supraspinal levels via these afferent fibers.

Adaptation, Physiological↗

Comparison between the effects of chronic and acute hypoxemia on muscle afferent activities from the tibialis anterior muscle.

The reflex loops initiated by the activation of muscle afferents are altered by a reduction of the oxygen supply. This has been shown in different mammalian species under experimental conditions of acute or chronic hypoxemia. In the present study in rats, we compared the effects of acute and chronic hypoxemia on the activity of afferents from the tibialis anterior muscle to investigate the existence of possible adaptive mechanisms to hypoxaemia. The activity in groups I and II (mechanosensitive) and groups III and IV (mechano- and mostly chemosensitive) muscle afferents was recorded under conditions of normoxaemia and acute and chronic hypoxemia. Chronic hypoxaemia was achieved by exposing the rats for 45 consecutive days to a gas mixture containing 10% oxygen in nitrogen, whereas acute hypoxaemia was limited to a 1-h exposure to a 10% oxygen mixture. Different test agents: muscle stimulation (MS), arterial injection of KCl or lactic acid and tendon vibrations, were used to activate muscle afferents. Both acute and chronic hypoxaemia suppressed the post-MS activation of groups III and IV muscle afferents and significantly depressed the response of these afferents to KCl and lactic acid. The pattern of response of mechanosensitive afferents to mechanical tendon vibration was similar under the three conditions but chronic hypoxemia significantly reduced the response to 10-50 Hz vibrations. We conclude that inhibitory effects on muscle metabosensitive afferents occurred in the first minutes following acute hypoxemia and was prolonged with chronic hypoxemia. Our data also suggest that chronic hypoxemia depresses mechanosensitive muscle afferents. This may explain the observation that sensorimotor control of skeletal muscles is often markedly impaired in hypoxemic humans.

Action Potentials↗