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Experimental Jaw-Muscle Pain Has a Differential Effect on Different Jaw Movement Tasks

  • Daraporn Sae-Lee1
  • Terry Whittle1
  • Chris C. Peck1
  • Anna R. C. Forte1
  • Iven J. Klineberg1
  • Greg M. Murray1,*,

1Jaw Function and Orofacial Pain Research Unit, Faculty of Dentistry, University of Sydney, Westmead Hospital Centre for Oral Health, Westmead, Australia

DOI: 10.11607/jofph.22.1.03 Vol.22,Issue 1,March 2008 pp.15-29

Published: 30 March 2008

*Corresponding Author(s): Greg M. Murray E-mail: gregm@usyd.edu.au

Abstract

Aims: To determine the effects of experimental jaw-muscle pain on jaw movements. Methods: Mandibular mid-incisor point was tracked in 22 asymptomatic subjects during standardized (at 2.2 mm/s) protrusion, contralateral excursion, and open jaw movements, as well as free, right-sided chewing and chewing standardized for timing (900 ms/cycle). Tonic infusion of 4.5% hypertonic saline into the right masseter muscle maintained pain intensity between 30 and 60 mm on a 100-mm visual analog scale. Subjects performed tasks in 3 sessions on the same experimental day: control condition (baseline trials), test condition 1 (during hypertonic or 0.9% isotonic saline infusion), and test condition 2 (during isotonic or hypertonic saline infusion). Results: In comparison with control, there were no significant effects of hypertonic saline infusion on amplitude or velocity for protrusion or contralateral jaw movements or on velocity for jaw opening. Jaw-opening amplitude was significantly smaller in comparison with control during hypertonic, but not isotonic, saline infusion. During free but not standardized chewing, subjects chewed faster and exhibited larger amplitude gapes during hypertonic and isotonic infusion in comparison with control. Therefore, it was unlikely that pain had an effect on the kinematic parameters of jaw movement during free chewing. Qualitatively, individual subject data revealed considerable variability in the effects of hypertonic saline on movement parameters, which suggests that the effect of pain on jaw movement may not be uniform between individuals. Conclusions: The data indicate that the effect of pain on jaw movement may vary with the task performed.

Keywords

chewing; experimental pain; hypertonic saline; jaw movement; Pain Adaptation Model

Cite and Share

Daraporn Sae-Lee,Terry Whittle,Chris C. Peck,Anna R. C. Forte,Iven J. Klineberg,Greg M. Murray. Experimental Jaw-Muscle Pain Has a Differential Effect on Different Jaw Movement Tasks. Journal of Oral & Facial Pain and Headache. 2008. 22(1);15-29.

References

1. von Korff M, Dworkin SF, LeResche L, Kruger A. An epidemiologic comparison of pain complaints. Pain 1988;32:173–183.

2. LeResche L. Epidemiology of orofacial pain. In: Lund JP, Lavigne G, Dubner R, et al (eds). Orofacial Pain: From Basic Science to Clinical Management. Chicago: Quintessence, 2001:15–25.

3. Bakke M. Jaw muscle disorders. In: Klineberg IJ, Jagger R (eds). Occlusion and Clinical Practice: An Evidence-based Approach. Edinburgh: Wright, 2004:75–82.

4. Lund JP, Donga R, Widmer CG, Stohler CS. The painadaptation model: A discussion of the relationship between chronic musculoskeletal pain and motor activity. Can J Physiol Pharmacol 1991;69:683–694.

5. Lund JP. Pain and movement. In: Lund JP, Lavigne G, Dubner R et al (eds). Orofacial Pain: From Basic Science to Clinical Management. Chicago: Quintessence, 2001:151–163.

6. Murray GM, Peck CC. Orofacial pain and jaw muscle activity: A new model. J Orofac Pain 2007;21:263–278.

7. Stohler CS, Zhang X, Lund JP. The effect of experimental jaw muscle pain on postural muscle activity. Pain 1996;66:215–221.

8. Svensson P, Houe L, Arendt-Nielsen L. Bilateral experimental muscle pain changes electromyographic activity of human jaw-closing muscles during mastication. Exp Brain Res 1997;116:182–185.

9. Svensson P, Arendt-Nielsen L, Houe L. Muscle pain modulates mastication: An experimental study in humans. J Orofac Pain 1998;12:7–16.

10. Svensson P, Graven-Nielsen T. Craniofacial muscle pain: Review of mechanisms and clinical manifestations. J Orofac Pain 2001;15:117–145.

11. van Dieën J, Selen LPJ, Cholewicki J. Trunk muscle activation in low-back pain patients, an analysis of the literature. J Electromyogr Kines 2003;13:333–351.

12. Stohler CS. Craniofacial pain and motor function: Pathogenesis, clinical correlates, and implications. Crit Rev Oral Biol Med 1999;10:504–518.

13. Graven-Nielsen T, Svensson P, Arendt-Nielsen L. Interaction between muscle pain and motor control. In: Johansson H, Windhorst U, Djupsjöbacka M et al (eds). Chronic Work-Related Myalgia: Neuromuscular Mechanisms Behind Work-Related Chronic Muscle Pain Syndromes. Umeå, Sweden: Gävle University Press, 2003:141–154.

14. Arendt-Nielsen L, Graven-Nielsen T, Svarrer H, Svensson

P. The influence of low back pain on muscle activity and coordination during gait: A clinical and experimental study. Pain 1996;64:231–240.

15. Dworkin SF, Huggins KH, LeResche L, et al. Epidemiology of signs and symptoms in temporomandibular disorders: Clinical signs in cases and controls. J Am Dent Assoc 1990;120:273–281.

16. Tsolka P, Fenlon MR, McCullock AJ, Prieskel HW. A controlled clinical, electromyographic, and kinesiographic assessment of craniomandibular disorders in women. J Orofac Pain 1994;8:80–89.

17. Graven-Nielsen T, Svensson P, Arendt-Nielsen L. Effects of experimental muscle pain on muscle activity and co-ordination during static and dynamic motor function. Electroencephalogr Clin Neurophysiol 1997;105:156–164.

18. Zedka M, Prochazka A, Knight B, Gillard D, Gauthier M. Voluntary and reflex control of human back muscles during induced pain. J Physiol 1999;520.2:591–604.

19. Svensson P, Arendt-Nielsen L, Houe L. Sensory-motor interactions of human experimental unilateral jaw muscle pain: A quantitative analysis. Pain 1995;64:241–249.

20. Schwartz G, Lund JP. Modification of rhythmical movements by noxious pressure applied to the periosteum of the zygomain decerebrate rabbits. Pain 1995;63:153–161.

21. Westberg K-G, Clavelou P, Schwartz G, Lund JP. Effects of chemical modulation of masseter muscle nociceptors on trigeminal motoneuron and interneuron activities during fictive mastication in the rabbit. Pain 1997;73:295–308.

22. Birch L, Christensen H, Arendt-Nielsen L, Graven-Nielsen T, Søgaard K. The influence of experimental muscle pain on motor unit activity during low-level contraction. Eur J Appl Physiol 2000;83:200–206.

23. Schulte E, Ciubotariu A, Arendt-Nielsen L, Disselhorst-Klug C, Rau G, Graven-Nielsen T. Experimental muscle pain increases trapezius muscle activity during sustained isometric contractions of arm muscles. Clin Neurophysiol 2004;115:1767–1778.

24. Madeleine P, Lundager B, Voigt M, Arendt-Nielsen L. Shoulder muscle co-ordination during chronic and acute experimental neck-shoulder pain. An occupational study. Eur J Appl Physiol 1999;79:127–140.

25. Ervilha UF, Arendt-Nielsen L, Duarte M, Graven-Nielsen T. Effect of load level and muscle pain intensity on the motor control of elbow-flexion movements. Eur J Appl Physiol 2004;92:168–175.

26. Yu X-M, Sessle BJ, Vernon H, Hu JW. Effects of inflammatory irritant application to the rat temporomandibular joint on jaw and neck muscle activity. Pain 1995;60:143–149.

27. Hu JW, Tsai C-M, Bakke M, et al. Deep craniofacial pain: Involvement of trigeminal subnucleus caudalis and its modulation. In: Jensen TS, Turner JA, Wiesenfeld-Hallin Z (eds). Proceedings of the 8th World Congress on Pain, Progress in Pain Research and Management, vol 8. Seattle: IASP Press, 1997:497–506.

28. Cairns BE, Sessle BJ, Hu JW. Evidence that excitatory amino acid receptors within the temporomandibular joint are involved in the reflex activation of the jaw muscles. J Neurosci 1998;18:8056–8064.

29. Sessle BJ. Acute and chronic craniofacial pain: Brainstem mechanisms of nociceptive transmission and neuroplasticity, and their clinical correlates. Crit Rev Oral Biol Med 2000;11:57–91.

30. Ro JY, Svensson P, Capra NF. Effects of experimental muscle pain on electromyographic activity of masticatory muscles in the rat. Muscle Nerve 2002;25:576–584.

31. Obrez A, Stohler CS. Jaw muscle pain and its effect on gothic arch tracings. J Prosthet Dent 1996;75:393–398.

32. Nielsen IL, Marcel T, Chun D, Miller AJ. Patterns of mandibular movements in subjects with craniomandibular disorders. J Prosthet Dent 1990;63:202–217.

33. Graven-Nielsen T, McArdle A, Phoenix J, et al. In vivo model of muscle pain: Quantification of intramuscular chemical, electrical, and pressure changes associated with saline-induced muscle pain in humans. Pain 1997;69:137–143.

34. Svensson P, Wang K, Arendt-Nielsen L, Cairns BE, Sessle BJ. Pain effects of glutamate injections into human jaw or neck muscles. J Orofac Pain 2005;19:109–118.

35. Zubieta J-K, Heitzeg MM, Smith YR, et al. COMT val158met genotype affects m-opioid neurotransmitter responses to a pain stressor. Science 2003;299:1240–1243.

36. Melzack R. From the gate to the neuromatrix. Pain 1999;6(suppl):121–126.

37. Mogil JS. The genetic mediation of individual differences in sensitivity to pain and its inhibition. Proc Natl Acad Sci USA 1999;96:7744–7751.

38. Price DD. Psychological and neural mechanisms of the affective dimension of pain. Science 2000;288:1769–1772.

39. Morgane PJ, Galler JR, Mokler DJ. A review of systems and networks of the limbic forebrain/limbic midbrain. Prog Neurobiol 2005;75:143–160.

40. Hodges PW, Moseley GL, Gabrielsson A, Gandevia SC. Experimental muscle pain changes feedforward postural responses of the trunk muscles. Exp Brain Res 2003;151:262–271.

41. Murray GM, Phanachet I, Hupalo M, Wanigaratne K. Simultaneous recording of mandibular condylar movement and singlemotor-unit activity at verified sites in the human lateral pterygoid muscle. Arch Oral Biol 1999;44:671–682.

42. Phanachet I, Whittle T, Wanigaratne K, Murray GM. Functional properties of single motor units in inferior head of human lateral pterygoid muscle: Task relations and thresholds. J Neurophysiol 2001;86:2204–2218.

43. Sae-Lee D, Wanigaratne K, Whittle T, Peck CC, Murray GM. A method for studying jaw muscle activity during standardized jaw movements under experimental jaw muscle pain. J Neurosci Methods 2006;157:285–293.

44. Mesqui F, Palla S. Real-time non-inversion recording and display of functional movements. J Oral Rehabil 1985;12:541–550.

45. Howell PGT, Ellis S, Johnson CWL, Watson IB, Klineberg IJ. The recording and analysis of EMG and jaw tracking.

II. Reproducibility of jaw tracking. J Oral Rehabil 1993;20:33–43.

46. Kellgren JH. Observations on referred pain arising from muscle. Clin Sciences 1938;3:175–190.

47. Capra NF, Ro JY. Human and animal experimental models of acute and chronic muscle pain: Intramuscular algesic injection. Pain 2004;110:3–7.

48. Stohler CS, Lund JP. Psychophysical and orofacial motor response to muscle pain: Validation and utility of an experimental model. In: Morimoto T, Matsuya T, Takada K (eds). Brain and Oral Function. Amsterdam: Elsevier, 1995:227–237.

49. Graven-Nielsen T, Arendt-Nielsen L, Svensson P, Jensen TS. Experimental muscle pain: A quantitative study of local and referred pain in humans following injection of hypertonic saline. J Musculoskel Pain 1997;5:49–69.

50. Wang K, Arima T, Arendt-Nielsen L, Svensson P. EMG-force relationships are influenced by experimental jaw-muscle pain. J Oral Rehabil 2000;27:394–402.

51. Svensson P, Graven-Nielsen T, Arendt-Nielsen L. Mechanical hyperalgesia of human facial skin induced by tonic painful stimulation of jaw muscles. Pain 1998;74:93–100.

52. Cairns BE, Hu JW, Arendt-Nielsen L, Sessle BJ, Svensson

P. Sex-related differences in human pain and rat afferent discharge evoked by injection of glutamate into the masseter muscle. J Neurophysiol 2001;86:782–791.

53. Sessle BJ. Mechanisms of oral somatosensory and motor functions and their clinical correlates. J Oral Rehabil 2006;33:243–261.

54. Türp JC, Schindler HJ, Pritsch M, Rong Q. Antero-posterior activity changes in the superficial masseter muscle after exposure to experimental pain. Eur J Orthod 2002;110:83–91.

55. Svensson P, Arendt-Nielsen L, Houe L. Sensory-motor interactions of human experimental unilateral jaw muscle pain: A quantitative analysis. Pain 1996;64:241–249.

56. Dao TTT, Lund JP, Lavigne G. Pain responses to experimental chewing in myofascial pain patients. J Dent Res 1994;73:1163–1167.

57. Stohler CS, Kowalski CJ. Spatial and temporal summation of sensory and affective dimensions of deep somatic pain. Pain 1999;79:165–173.

58. Ernberg M, Lundeberg T, Kopp S. Pain and allodynia/hyperalgesia induced by intramuscular injection of serotonin in patients with fibromyalgia and healthy individuals. Pain 2000;85:31–39.

59. Stohler CS, Ashton-Miller JA, Carlson DS. The effects of pain from the mandibular joint and muscles on masticatory behaviour in man. Arch Oral Biol 1988;33:175–182.

60. Theusner J, Plesh O, Curtis DA, Hutton JE. Axiographic tracings of temporomandibular joint movements. J Prosthet Dent 1993;69:209–215.

61. Svensson P, Arendt-Nielsen L, Bjerring P, Bak P, Hjorth T, Troest T. Human mastication modulated by experimental trigeminal and extra-trigeminal painful stimuli. J Oral Rehabil 1996;23:838–848.

62. Mohri Y, Fumoto M, Sato-Suzuki I, Umino M, Arita H. Prolonged rhythmic gum chewing suppresses nociceptive response via serotonergic descending inhibitory pathway in humans. Pain 2005;118:35–42.

63. LeResche L. Epidemiology of temporomandibular disorders: Implications for the investigation of etiologic factors. Crit Rev Oral Biol Med 1997;8:291–305.

64. Aloisi AM, Bonifazi M. Sex hormones, central nervous system and pain. Horm Behav 2006;50:1–7.

65. Kuba T, Quinones-Jenab V. The role of female gonadal hormones in behavioral sex differences in persistent and chronic pain: Clinical versus preclinical studies. Brain Res Bull 2005;66:179–188.

66. Craft RM, Mogil JS, Aloisi AM. Sex differences in pain and analgesia: The role of gonadal hormones. Eur J Pain 2004;8:397-411.

67. Keefe FJ, Dixon KE, Pryor RW. Psychological contributions to the understanding and treatment of pain. In: Merskey H, Loeser JD, Dubner R (eds). The Paths of Pain 1975–2005. Seattle: IASP Press, 2005:403–420.

68. Birch L, Graven-Nielsen T, Christensen H, Arendt-Nielsen

L. Experimental muscle pain modulates muscle activity and work performance differently during high and low precision use of a computer mouse. Eur J Appl Physiol 2000;83:492–498.

69. Murray GM, Peck CC. Orofacial pain and jaw muscle activity: A new model. J Orofac Pain 2007;21:263–278.

70. Mense S. Critical commentary 1. Orofacial pain and jaw muscle activity: A new model. J Orofac Pain 2007;21:279–281.

71. Lund JP, Stohler C. Critical commentary 2. Orofacial pain and jaw muscle activity: A new model. J Orofac Pain 2007;21:282–283.

72. Svensson P. Critical commentary 3. Orofacial pain and jaw muscle activity: A new model. J Orofac Pain 2007;21:284–286.

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