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The Role of Sensory Information in the Control of Rhythmic Open-Close Movements in Humans
A. van der Bilt
Laboratory of Oral Pathophysiology, Department of Oral-Maxillofacial Surgery, Prosthodontics and Special Dental Care, Faculty of Medicine, Utrecht University, PO Box 80.037, 3508 TA Utrecht, The Netherlands
EG Weijnen
Laboratory of Oral Pathophysiology, Department of Oral-Maxillofacial Surgery, Prosthodontics and Special Dental Care, Faculty of Medicine, Utrecht University, PO Box 80.037, 3508 TA Utrecht, The Netherlands
F.A.M. Ottenhoff
Laboratory of Oral Pathophysiology, Department of Oral-Maxillofacial Surgery, Prosthodontics and Special Dental Care, Faculty of Medicine, Utrecht University, PO Box 80.037, 3508 TA Utrecht, The Netherlands
H.W. van der Glas
Laboratory of Oral Pathophysiology, Department of Oral-Maxillofacial Surgery, Prosthodontics and Special Dental Care, Faculty of Medicine, Utrecht University, PO Box 80.037, 3508 TA Utrecht, The Netherlands
F. Bosman
Laboratory of Oral Pathophysiology, Department of Oral-Maxillofacial Surgery, Prosthodontics and Special Dental Care, Faculty of Medicine, Utrecht University, PO Box 80.037, 3508 TA Utrecht, The Netherlands
Chewing requires a low level of muscle activity for jaw movement. Additional muscle activity is required to overcome the resistance of the food. The additional muscle activity consists of two contributions, an anticipating contribution before food contact and a peripherally induced contribution, about 23 ms after food contact. The amounts of both contributions depend on the information about food resistance obtained in preceding chewing cycles. It is not known whether this information is preserved if the resistance is absent during only a limited number of chewing cycles. Our aim was to investigate the extent to which information about food resistance obtained during chewing is used during subsequent cycles to generate anticipating and peripherally induced muscle activity. Subjects made rhythmic open-close movements at their natural chewing frequency, controlled by a metronome. Food resistance was simulated by an external force acting on the jaw in a downward direction during part of the closing movement. Jaw movement and surface EMG of the masseter and suprahyoid muscles were recorded during experiments in which sequences of at least 20 cycles with the force were alternated with a small, random number (from 1 to 10) of cycles without the force. The amount of anticipating muscle activity as well as the peripherally induced muscle activity in the first cycle with the force gradually decreased as a function of the number of preceding forceless cycles. About 30% of the additional muscle activity had an anticipatory origin, whereas the rest of the activity was evoked by the force regardless of the number of preceding forceless cycles.
Key Words: electromyography food mastication masticatory muscles reflex
REFERENCES
- Ahlgren J. (1966). Mechanism of mastication. Acta Odontol Scand 24(Suppl 44):1-109.
- Dellow PG, Lund JP ( 1971). Evidence for central timing of rhythmical mastication. J Physiol 215:1-13.[Abstract/Free Full Text]
- Goldberg LJ, Chandler SH (1990). Central mechanisms of rhythmic trigeminal activity. In: Neurophysiology of the jaws and teeth. Taylor A, editor. Hong Kong: The Macmillan Press Ltd, pp. 268-293.
- Horio T., Kawamura Y. (1989). Effects of texture of food on chewing patterns in the human subject. J Oral Rehabil 16:177-183. Johansson RS, Westling G. (1987). Signals in tactile afferents from
- the fingers eliciting adaptive motor responses during precision grip. Exp Brain Res 66:141-154.
- Lavigne G., Kim JS, Valiquette C., Lund JP ( 1987). Evidence that periodontal pressoreceptors provide positive feedback to jaw closing muscles during mastication. J Neurophysiol 58:342-358. Lund JP (1976). Evidence for a central neural pattern generator regulating the chewing cycle. In: Mastication. Anderson DJ, Matthews B, editors. Bristol: John Wright and Sons, pp. 204-212. Lund JP (1991). Mastication and its control by the brain stem. Crit Rev Oral Biol Med 2:33-64.[Abstract/Free Full Text]
- Miles TS, Madigan ML (1983). Programming of antagonist muscle stiffness during masticatory muscle unloading in man. Arch Oral Biol 28:947-951.[CrossRef][Medline]
[Order article via Infotrieve]
- Morimoto T., Inoue T., Masuda Y., Nagashima T. (1989). Sensory components facilitating jaw-closing muscle activities in the rabbit. Exp Brain Res 76:424-440.[Medline]
[Order article via Infotrieve]
- Morimoto T., Nakamura O., Ogata K., Liu ZJ, Matsuo R., Inoue T., et al. (1995). Autoregulation of masticatory force in the anesthetized rabbit. In: Brain and oral function. Morimoto T, editor. Amsterdam: Elsevier, pp. 115-124.
- Nozaki S., Iriki A., Nakamura Y. (1986). Localization of central rhythm generator involved in cortically induced rhythmical masticatory jaw-opening movement in the guinea-pig. J Neurophysiol 55:806-825.[Abstract/Free Full Text]
- Ottenhoff FAM, van der Bilt A., van der Glas HW, Bosman F. (1992a). Peripherally induced and anticipating elevator muscle activity during simulated chewing in humans. J Neurophysiol 67:75-83. Ottenhoff FAM, van der Bilt A., van der Glas HW, Bosman F. (1992b). Control of elevator muscle activity during simulated chewing with varying food resistance in humans. J Neurophysiol 68:933-944.[Abstract/Free Full Text]
- Ottenhoff FAM, van der Bilt A., van der Glas HW, Bosman F. (1993). Control of human jaw elevator muscle activity during simulated chewing with varying bolus size. Exp Brain Res 96:501-512. Ottenhoff FAM, van der Bilt A., van der Glas HW, Bosman F. (1994). A computer-controlled experimental set-up enabling the quantification of motor performance in man, applied to mastication. J Oral Rehabil 21:397-410.[Medline]
[Order article via Infotrieve]
- Plesh O., Bishop B., McCall W. (1986). Effect of gum hardness on chewing pattern. Exp Neurol 92:502-512.[CrossRef][Medline]
[Order article via Infotrieve]
- Plesh O, Bishop B., McCall WD Jr (1988). Comparison of automatic and voluntary chewing patterns and performance. Exp Neurol 99:326-341.[CrossRef][Medline]
[Order article via Infotrieve]
- Slagter AP, Bosman F., van der Glas HW, van der Bilt A. (1993). Human jaw elevator muscle activity and food comminution in the dentate and edentulous state. Arch Oral Biol 38:195-205. Thexton AJ, Hiiemae KM, Crompton AW (1980). Food consistency and bite size as regulators of jaw movement during feeding in the cat. J Neurophysiol 44:456-474.[Free Full Text]
- Trulsson M. (1993). Multiple-tooth receptive fields of single human periodontal mechanoreceptive afferents. J Neurophysiol 69:474-481. van der Bilt A., van der Glas HW, Olthoff LW, Bosman F. (1991). The effect of particle size reduction on the jaw gape in human mastication. J Dent Res 70:931-937.
- van Willigen JD, Broekhuijsen ML, Melchior HJ, Karkazis HC, Kossioni A., Heath MR (1993). Digastric muscle response as a function of knowledge of the task to be performed. Arch Oral Biol 38:113-121.[Medline]
[Order article via Infotrieve]
Journal of Dental Research, Vol. 74, No. 10,
1658-1664 (1995)
DOI: 10.1177/00220345950740100601

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