Abstract
Aim of the present investigation was to study the effects of an
eccentric training on the neuromuscular properties of the plantar-flexor
muscles. The experiment was carried out on 14 males divided into two groups
(eccentric and control). Eccentric training consisted of six sets of six
eccentric contractions at 120 % of one maximal concentric
repetition and it was performed four times a week during four weeks. Before and
after the 4-wk period, the plantar-flexor torque and the associated
electromyographic activity were recorded during voluntary contractions
(isometric, concentric and eccentric) and electrically induced contractions
(twitch and tetanus), in order to distinguish central from peripheral
adaptations. For the eccentric group, voluntary torque significantly increased
after training independent of the action mode (relative gains
14 - 30 %, p < 0.05). This
was associated with an increase in agonist EMG activity during isometric action
and a decrease in antagonist coactivation in concentric
(-27 %) and eccentric actions (-22 %)
(p < 0.05). Voluntary activation level significantly increased
from 80 ± 5 % to
91 ± 2 % (p < 0.05). Some
of the twitch contractile properties (peak torque and maximal rate of twitch
tension relaxation) were significantly modified (p < 0.05),
but no changes were observed for the tetanus characteristics. These results
allowed to conclude that the torque gains observed after the present training
were more likely associated to central adaptations, affecting both agonist and
antagonist muscles.
Key words
Plantar-flexor muscles - M wave - coactivation - tetanus - activation
References
- 1
Allen G M, Gandevia S C, McKenzie D K.
Reliability of measurements of muscle strength and voluntary
activation using twitch interpolation.
Muscle Nerve.
1995;
18
593-600
- 2
Allen G M, McKenzie D K, Gandevia S C.
Twitch interpolation of the elbow flexor muscles at high
forces.
Muscle Nerve.
1998;
21
318-328
- 3
Barany M.
ATPase activity of myosin correlated with speed of muscle
shortening.
J Gen Physiol.
1967;
50
197-218
- 4
Bigland-Ritchie B, Jones D A, Woods J J.
Excitation frequency and muscle fatigue: electrical responses
during voluntary and stimulated contractions.
Exp Neurol.
1979;
64
414-427
- 5
Blinks J R, Rüdel R, Taylor S R.
Calcium transients in isolated amphibian skeletal muscle
fibres: detection with aequorin.
J Physiol.
1978;
277
291-323
- 6
Carolan B, Cafarelli E.
Adaptations in coactivation after isometric resistance
training.
J Appl Physiol.
1992;
73
911-917
- 7
Colson S, Pousson M, Martin A, van Hoecke J.
Isokinetic elbow flexion and coactivation following eccentric
training.
J Electromyogr Kinesiol.
1999;
9
13-20
- 8
Colson S, Pousson M, Martin A, van Hoecke J.
Re-examination of training effects by electrostimulation in
the human elbow musculoskeletal system.
Int J Sports Med.
2000;
21
281-288
- 9
Cresswell A G, Löscher W N, Thorstensson A.
Influence of gastrocnemius muscle length on triceps surae
torque development and electromyographic activity in man.
Exp Brain Res.
1995;
105
283-290
- 10
de Luca C J.
The use of electromyography in biomechanics.
J Appl Biomech.
1997;
13
135-163
- 11
Desmedt J E, Hainaut K.
Kinetics of myofilaments activation in potentiated
contractions: staircase phenomenon in human muscle.
Nature.
1968;
217
529-532
- 12
Duchateau J, Hainaut K.
Isometric or dynamic training: differential effects on
mechanical properties of a human muscle.
J Appl Physiol.
1984;
56
296-301
- 13
Duchateau J, Hainaut K.
Nonlinear summation of contractions in striated muscles. II
Potentiation of intracellular Ca2+ movements in single barnacle
muscle fibres.
J Musc Res Cell Motil.
1986;
7
18-24
- 14
Duchateau J, Hainaut K.
Electrical and mechanical changes in immobilised human
muscles.
J Appl Physiol.
1987;
62
2168-2173
- 15
Duchateau J, Hainaut K.
Training effects of sub-maximal electrostimulation in human
muscle.
Med Sci Sports Exerc.
1988;
20
99-104
- 16
Häkkinen K, Komi P V.
Electromyographic changes during strength training and
detraining.
Med Sci Sports Exerc.
1983;
15
455-460
- 17
Häkkinen K, Alén M, Komi P V.
Changes in isometric force and relaxation time,
electromyographic and muscle fibre characteristics of human skeletal muscle
during strength training and detraining.
Acta Physiol Scand.
1985;
125
573-585
- 18
Häkkinen K, Komi P V.
Training-induced changes in neuromuscular performance under
voluntary and reflex conditions.
Eur J Appl Physiol.
1986;
55
147-155
- 19
Häkkinen K, Kallinen M, Izquierdo M, Jokelainen K, Lassila H, Malkia E, Kraemer W J,
Newton R U, Alén M.
Changes in agonist-antagonist EMG, muscle CSA, and force
during strength training in middle-aged and older people.
J Appl Physiol.
1998;
84
1341-1349
- 20
Herbert R D, Dean C, Gandevia S C.
Effects of real and imagined training on voluntary muscle
activation during maximal isometric contraction.
Acta Physiol Scand.
1998;
163
361-368
- 21
Higbie E J, Cureton K J, Warren G L, Prior B M.
Effects of concentric and eccentric training on muscle
strength, cross-sectional area, and neural activation.
J Appl Physiol.
1996;
80
2173-2181
- 22
Hortobagyi T, Hill J P, Houmard J A, Fraser D D, Lambert N J, Israel R G.
Adaptive responses to muscle lengthening and shortening in
humans.
J Appl Physiol.
1996;
80
765-772
- 23
Hortobagyi T, Barrier J, Beard D, Braspenninex J, Koens P, Devita P, Dempsey L, Lambert J.
Greater initial adaptations to submaximal muscle lengthening
than maximal shortening.
J Appl Physiol.
1996;
81
1677-1682
- 24
Hortobagyi T, Dempsey L, Fraser D, Zheng D, Hamilton G, Lambert J, Dohm L.
Changes in muscle strength, muscle fibre size and
myofibrillar gene expression after immobilisation and retraining in
humans.
J Physiol.
2000;
1
293-304
- 25
Kellis E, Baltzopoulos V.
Muscle activation differences between eccentric and
concentric isokinetic exercise.
Med Sci Sports Exerc.
1998;
30
1616-1623
- 26
Moritani T, de Vries H A.
Neural factors versus hypertrophy in the time course of
muscle strength gain.
Am J Physiol Med.
1979;
58
115-130
- 27
Moritani T, Muro M, Kijima A.
Electromechanical changes during electrically induced and
maximal voluntary contractions: electrophysiologic responses of different
muscle fibre types during stimulated contractions.
Exp Neurol.
1985;
88
471-483
- 28
Murray M P, Guten G N, Baldwin J M, Gardner G M.
A comparison of plantar flexion torque with and without the
triceps surae.
Acta Orthop Scand.
1976;
47
22-124
- 29
Palmer B M, Moore R L.
Myosin light chain phosphorylation and tension potentiation
in mouse skeletal muscle.
Am J Physiol.
1989;
257
C1012-C1019
- 30
Reich T E, Lindstedt S L, Lastayo P C, Pierotti D J.
Is the spring quality of muscle plastic?.
Am J Physiol.
2000;
278
R1661-R1666
- 31
Sale D G, McComas A J, MacDougall J D, Upton A RM.
Neuromuscular adaptations in human thenar muscles following
strength training and immobilization.
J Appl Physiol.
1982;
53
419-424
- 32
Solomonow M, Baratta R, Zhou B H, D'Ambrosia R.
Electromyogram coactivation patterns of the elbow antagonist
muscles during slow isokinetic movement.
Exp Neurol.
1988;
100
470-477
- 33
Taylor N A, Sanders R H, Howick E I, Stanley S N.
Static and dynamic assessment of the Biodex dynamometer.
Eur J Appl Physiol .
1991;
62
80-188
- 34
Thépaut-Mathieu C, van Hoecke J, Maton B.
Myoelectrical and mechanical changes linked to length
specificity during isometric training.
J Appl Physiol.
1988;
64
1500-1505
- 35
Van Cutsem M, Duchateau J, Hainaut K.
Changes in single motor unit behaviour contribute to the
increase in contraction speed after dynamic training in humans.
J Physiol.
1998;
15;513
295-305
- 36
Vandenboom R, Grange R W, Houston M E.
Threshold for force potentiation associated with skeletal
myosin phosphorylation.
Am J Physiol.
1983;
265
1456-1462
M. Pensini
Groupe Analyse du Mouvement · UFR STAPS ·
Faculté des Sciences du Sport · Université de
Bourgogne
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