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PLOS ONE  2012 

Central Projection of Pain Arising from Delayed Onset Muscle Soreness (DOMS) in Human Subjects

DOI: 10.1371/journal.pone.0047230

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Abstract:

Delayed onset muscle soreness (DOMS) is a subacute pain state arising 24–48 hours after a bout of unaccustomed eccentric muscle contractions. Functional magnetic resonance imaging (fMRI) was used to examine the patterns of cortical activation arising during DOMS-related pain in the quadriceps muscle of healthy volunteers evoked by either voluntary contraction or physical stimulation. The painful movement or physical stimulation of the DOMS-affected thigh disclosed widespread activation in the primary somatosensory and motor (S1, M1) cortices, stretching far beyond the corresponding areas somatotopically related to contraction or physical stimulation of the thigh; activation also included a large area within the cingulate cortex encompassing posteroanterior regions and the cingulate motor area. Pain-related activations were also found in premotor (M2) areas, bilateral in the insular cortex and the thalamic nuclei. In contrast, movement of a DOMS-affected limb led also to activation in the ipsilateral anterior cerebellum, while DOMS-related pain evoked by physical stimulation devoid of limb movement did not.

References

[1]  Mense S (1993) Nociception from skeletal muscle in relation to clinical muscle pain. Pain 54: 241–289.
[2]  Takahashi K, Taguchi T, Tanaka S, Sadato N, Qiu Y, et al. (2011) Painful muscle stimulation preferentially activates emotion-related brain regions compared to painful skin stimulation. Neurosci Res 70: 285–293.
[3]  Arendt-Nielsen L, Svensson P (2001) Referred muscle pain: basic and clinical findings. Clin J Pain 17: 11–19.
[4]  Graven-Nielsen T, Mense S (2001) The peripheral apparatus of muscle pain: evidence from animal and human studies. Clin J Pain 17: 2–10.
[5]  Svensson P, Graven-Nielsen T (2001) Craniofacial muscle pain: review of mechanisms and clinical manifestations. J Orofac Pain 15: 117–145.
[6]  Pockett S (1995) Spinal cord synaptic plasticity and chronic pain. Anesth Analg 80: 173–179.
[7]  Svensson P, Beydoun A, Morrow TJ, Casey KL (1997) Non-painful and painful stimulation of human skin and muscle: analysis of cerebral evoked potentials. Electroencephalogr Clin Neurophysiol 104: 343–350.
[8]  Torebjork HE, Ochoa JL, Schady W (1984) Referred pain from intraneural stimulation of muscle fascicles in the median nerve. Pain 18: 145–156.
[9]  Svensson P, Cairns BE, Wang K, Hu JW, Graven-Nielsen T, et al. (2003) Glutamate-evoked pain and mechanical allodynia in the human masseter muscle. Pain 101: 221–227.
[10]  Babenko V, Graven-Nielsen T, Svensson P, Drewes AM, Jensen TS, et al. (1999) Experimental human muscle pain induced by intramuscular injections of bradykinin, serotonin, and substance P. Eur J Pain. 3: 93–102.
[11]  Svensson P, Graven-Nielsen T, Arendt-Nielsen L (1998) Mechanical hyperesthesia of human facial skin induced by tonic painful stimulation of jaw muscles. Pain 74: 93–100.
[12]  Graven-Nielsen T, McArdle A, Phoenix J, Arendt-Nielsen L, Jensen TS, et al. (1997) In vivo model of muscle pain: quantification of intramuscular chemical, electrical, and pressure changes associated with saline-induced muscle pain in humans. Pain 69: 137–143.
[13]  Niddam DM, Yeh TC, Wu YT, Lee PL, Ho LT, et al. (2002) Event-related functional MRI study on central representation of acute muscle pain induced by electrical stimulation. Neuroimage 17: 1437–1450.
[14]  Schreckenberger M, Siessmeier T, Viertmann A, Landvogt C, Buchholz HG, et al. (2005) The unpleasantness of tonic pain is encoded by the insular cortex. Neurology 64: 1175–1183.
[15]  Thunberg J, Lyskov E, Korotkov A, Ljubisavljevic M, Pakhomov S, et al. (2005) Brain processing of tonic muscle pain induced by infusion of hypertonic saline. Eur J Pain 9: 185–194.
[16]  Kupers RC, Svensson P, Jensen TS (2004) Central representation of muscle pain and mechanical hyperesthesia in the orofacial region: a positron emission tomography study. Pain 108: 284–293.
[17]  Korotkov A, Ljubisavljevic M, Thunberg J, Kataeva G, Roudas M, et al. (2002) Changes in human regional cerebral blood flow following hypertonic saline induced experimental muscle pain: a positron emission tomography study. Neurosci Lett 335: 119–123.
[18]  Morgan DL (1990) New insights into the behavior of muscle during active lengthening. Biophys J 57: 209–221.
[19]  Schoedel AL, Zimmermann K, Handwerker HO, Forster C (2008) The influence of simultaneous ratings on cortical BOLD effects during painful and non-painful stimulation. Pain 135: 131–141.
[20]  Taguchi T, Sato J, Mizumura K (2005) Augmented mechanical response of muscle thin-fiber sensory receptors recorded from rat muscle-nerve preparations in vitro after eccentric contraction. J Neurophysiol 94: 2822–2831.
[21]  Handwerker HO, Anton F, Reeh PW (1987) Discharge patterns of afferent cutaneous nerve fibers from the rat's tail during prolonged noxious mechanical stimulation. Exp Brain Res 65: 493–504.
[22]  Jantsch HH, Kemppainen P, Ringler R, Handwerker HO, Forster C (2005) Cortical representation of experimental tooth pain in humans. Pain 118: 390-399. S0304-3959(05)00467-7 [pii];10.1016/j.pain.2005.09.017 [doi].
[23]  Talairach J. and Tournoux P. (1988) Co-planar Stereotaxic Atlas of the Human Brain: 3-Dimensional Proportional System - an Approach to Cerebral Imaging. New York: Thieme Medical Publishers.
[24]  Collignon A, Maes D, Delaere D, Vandermeulen D, Suetens P et al. (1995) Automated multimodality image registration using information theory. In: Proceedings of Information Processing and Medical Imaging. Kluwen Academic Publishers. 263–274.
[25]  Liu H, Gao J (2000) An investigation of the impulse functions for the nonlinear BOLD response in functional MRI. Magn Reson Imaging 18: 931–938.
[26]  Liu HL, Pu Y, Nickerson LD, Liu Y, Fox PT, et al. (2000) Comparison of the temporal response in perfusion and BOLD-based event-related functional MRI. Magn Reson Med 43: 768–772.
[27]  Damasio H. (1995) Human Brain Anatomy in Computerizes Images. New York; Oxford: Oxford University Press.
[28]  Henderson LA, Bandler R, Gandevia SC, Macefield VG (2006) Distinct forebrain activity patterns during deep versus superficial pain. Pain 120: 286–296.
[29]  Niddam DM, Hsieh JC (2009) Neuroimaging of muscle pain in humans. J Chin Med Assoc 72: 285–293.
[30]  Maihofner C, Handwerker HO, Neundorfer B, Birklein F (2004) Cortical reorganization during recovery from complex regional pain syndrome. Neurology 63: 693–701.
[31]  Maihofner C, Handwerker HO, Neundorfer B, Birklein F (2003) Patterns of cortical reorganization in complex regional pain syndrome. Neurology 61: 1707–1715.
[32]  Wiech K, Preissl H, Birbaumer N (2000) Neuroimaging of chronic pain: phantom limb and musculoskeletal pain. Scand J Rheumatol Suppl 113: 13–18.
[33]  Ploner M, Freund HJ, Schnitzler A (1999) Pain affect without pain sensation in a patient with a postcentral lesion. Pain 81: 211–214.
[34]  Ruehle BS, Handwerker HO, Lennerz JK, Ringler R, Forster C (2006) Brain activation during input from mechanoinsensitive versus polymodal C-nociceptors. J Neurosci 26: 5492–5499.
[35]  Casey KL, Minoshima S, Berger KL, Koeppe RA, Morrow TJ, et al. (1994) Positron emission tomographic analysis of cerebral structures activated specifically by repetitive noxious heat stimuli. J Neurophysiol 71: 802–807.
[36]  Kwan CL, Crawley AP, Mikulis DJ, Davis KD (2000) An fMRI study of the anterior cingulate cortex and surrounding medial wall activations evoked by noxious cutaneous heat and cold stimuli. Pain 85: 359–374.
[37]  Rainville P, Duncan GH, Price DD, Carrier B, Bushnell MC (1997) Pain affect encoded in human anterior cingulate but not somatosensory cortex. Science 277: 968–971.
[38]  Paus T (2001) Primate anterior cingulate cortex: where motor control, drive and cognition interface. Nat Rev Neurosci 2: 417–424.
[39]  Svensson P, Minoshima S, Beydoun A, Morrow TJ, Casey KL (1997) Cerebral processing of acute skin and muscle pain in humans. J Neurophysiol 78: 450–460.
[40]  Henderson LA, Gandevia SC, Macefield VG (2007) Somatotopic organization of the processing of muscle and cutaneous pain in the left and right insula cortex: a single-trial fMRI study. Pain 128: 20–30.
[41]  Vogt BA (2005) Pain and emotion interactions in subregions of the cingulate gyrus. Nat Rev Neurosci 6: 533–544.
[42]  Brooks JC, Zambreanu L, Godinez A, Craig AD, Tracey I (2005) Somatotopic organisation of the human insula to painful heat studied with high resolution functional imaging. Neuroimage 27: 201–209.
[43]  Strigo IA, Duncan GH, Boivin M, Bushnell MC (2003) Differentiation of visceral and cutaneous pain in the human brain. J Neurophysiol 89: 3294–3303.
[44]  Allison T, Puce A, McCarthy G (2000) Social perception from visual cues: role of the STS region. Trends Cogn Sci 4: 267–278.
[45]  Pandya DN, Yeterian EH (1996) Comparison of prefrontal architecture and connections. Philos Trans R Soc Lond B Biol Sci 351: 1423–1432.
[46]  Clower DM, West RA, Lynch JC, Strick PL (2001) The inferior parietal lobule is the target of output from the superior colliculus, hippocampus, and cerebellum. J Neurosci 21: 6283–6291.
[47]  Niddam DM, Chan RC, Lee SH, Yeh TC, Hsieh JC (2008) Central representation of hyperalgesia from myofascial trigger point. Neuroimage 39: 1299-1306. S1053-8119(07)00886-5 [pii];10.1016/j.neuroimage.2007.09.051 [doi].
[48]  Stippich C, Blatow M, Durst A, Dreyhaupt J, Sartor K (2007) Global activation of primary motor cortex during voluntary movements in man. Neuroimage 34: 1227-1237. S1053-8119(06)00883-4 [pii];10.1016/j.neuroimage.2006.08.046 [doi].
[49]  Montes C, Magnin M, Maarrawi J, Frot M, Convers P, et al. (2005) Thalamic thermo-algesic transmission: ventral posterior (VP) complex versus VMpo in the light of a thalamic infarct with central pain. Pain 113: 223–232.
[50]  Davis KD, Kwan CL, Crawley AP, Mikulis DJ (1998) Functional MRI study of thalamic and cortical activations evoked by cutaneous heat, cold, and tactile stimuli. J Neurophysiol 80: 1533–1546.
[51]  Peyron R, Laurent B, Garcia-Larrea L (2000) Functional imaging of brain responses to pain. A review and meta-analysis. Neurophysiol Clin 30: 263–288.
[52]  Dimitrova A, Kolb FP, Elles HG, Maschke M, Forsting M, et al. (2003) Cerebellar responses evoked by nociceptive leg withdrawal reflex as revealed by event-related FMRI. J Neurophysiol 90: 1877–1886.

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