Invasive brain stimulation for the treatment of neuropathic pain

Nature Reviews Neurology - Tập 7 Số 12 - Trang 699-709 - 2011
Jean‐Paul Nguyen1, Julien Nizard1, Y Kéravel2, Jean‐Pascal Lefaucheur3
1Service de Neurochirurgie et Center de Traitement de la Douleur, Center Hospitalo-Universitaire de Nantes, Hôpital Nord Laënnec, Saint-Herblain, France
2Service de Neurochirurgie, Center Hospitalo-Universitaire Henri Mondor, France
3EA 4391 et Service de Physiologie—Explorations Fonctionnelles, Faculté de Médecine Henri Mondor, Université Paris Est, France

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Merskey, H. & Bogduk, N. in Classification of Chronic Pain (International Association for the Study of Pain, Seattle, 1994).

Treede, R. D. et al. Neuropathic pain: redefinition and a grading system for clinical and research purposes. Neurology 70, 1630–1635 (2008).

Gilron, I., Watson, C. P., Cahill, C. M. & Moulin, D. E. Neuropathic pain: a practical guide for the clinician. CMAJ 175, 265–275 (2006).

Attal, N. et al. EFNS guidelines on pharmacological treatment of neuropathic pain. Eur. J. Neurol. 13, 1153–1169 (2006).

Dworkin, R. H. et al. Pharmacologic management of neuropathic pain: evidence-based recommendations. Pain 132, 237–251 (2007).

Namaka, M. et al. A treatment algorithm for neuropathic pain: an update. Consult. Pharm. 24, 885–902 (2009).

Finnerup, N. B., Sindrup, S. H. & Jensen, T. S. The evidence for pharmacological treatment of neuropathic pain. Pain 150, 573–581 (2010).

Aichaoui, F., Mertens, P. & Sindou, M. Dorsal root entry zone lesioning for pain after brachial plexus avulsion: Results with special emphasis on differential effects on the paroxysmal versus the continuous components. A prospective study in a 29-patient consecutive series. Pain 152, 1932–1930 (2011).

Ali, M. et al. Differential efficacy of electrical motor cortex stimulation and lesioning of the dorsal root entry zone for continuous versus paroxysmal pain after brachial plexus avulsion. Neurosurgery 65, 1252–1258 (2011).

Cruccu, G. et al. EFNS guidelines on neurostimulation therapy for neuropathic pain. Eur. J. Neurol. 14, 952–970 (2007).

Lefaucheur, J. P. The use of repetitive transcranial magnetic stimulation (rTMS) in chronic neuropathic pain. Neurophysiol. Clin. 36, 117–124 (2006).

Lefaucheur, J. P. et al. The use of repetitive transcranial magnetic stimulation (rTMS) and transcranial direct current stimulation (tDCS) to relieve pain. Brain Stimul. 1, 337–344 (2008).

Lefaucheur, J. P. Use of repetitive transcranial magnetic stimulation in pain relief. Expert Rev. Neurother. 8, 799–808 (2008).

Katayama, Y., Yamamoto, T., Kobayashi, K., Kasai, M., Oshima, H. & Fukaya, C. Motor cortex stimulation for post-stroke pain: comparison of spinal cord and thalamic stimulation. Stereotact. Funct. Neurosurg. 77, 183–186 (2001).

Canavero, S. & Bonicalzi, V. Spinal cord stimulation for central pain. Pain 103, 225–226 (2003).

Aly, M. M. et al. Spinal cord stimulation for central poststroke pain. Neurosurgery 67 (Suppl.), 206–212 (2010).

Canavero, S. & Bonicalzi, V. in Central Pain Syndrome, 2nd edn (Cambridge University Press, New York, 2011).

Heath, R. G. & Mickle, W. A. Evaluation of seven years' experience with depth electrode studies in human patients, in Electrical Studies on the Unanesthetized Brain (eds Ramey, E. R. & O'Doherty, D. S.) 214–247 (Paul B. Hoeber, New York, 1960).

Melzack, R. & Wall, P. D. Pain mechanisms: a new theory. Science 150, 971–979 (1965).

Nashold, B. S. Jr & Friedman, H. Dorsal column stimulation for control of pain. Preliminary report on 30 patients. J. Neurosurg. 36, 590–597 (1972).

Hosobuchi, Y., Adams, J. E. & Rutkin, B. Chronic thalamic stimulation for the control of facial anesthesia dolorosa. Arch. Neurol. 29, 158–161 (1973).

Adams, J. E., Hosobuchi, Y. & Fields, H. L. Stimulation of internal capsule for relief of chronic pain. J. Neurosurg. 41, 740–744 (1974).

Hosobuchi, Y., Adams, J. E. & Linchitz, R. Pain relief by electrical stimulation of the central gray matter in humans and its reversal by naloxone. Science 197, 183–186 (1977).

Richardson, D. E. & Akil, H. Long term results of periventricular gray self-stimulation. Neurosurgery 1, 199–202 (1977).

Akil, H., Richardson, D. E., Barchas, J. D. & Li, C. H. Appearance of β-endorphin-like immunoreactivity in human ventricular cerebrospinal fluid upon analgesic electrical stimulation. Proc. Natl Acad. Sci. USA. 75, 5170–5172 (1978).

Akil, H., Richardson, D. E., Hughes, J. & Barchas, J. D. Enkephalin-like material elevated in ventricular cerebrospinal fluid of pain patients after analgetic focal stimulation. Science 201, 463–465 (1978).

Hosobuchi, Y., Rossier, J., Bloom, F. E. & Guillemin, R. Stimulation of human periaqueductal gray for pain relief increases immunoreactive β-endorphin in ventricular fluid. Science 203, 279–281 (1979).

Dionne, R. A. et al. Contrast medium causes the apparent increase in β-endorphin levels in human cerebrospinal fluid following brain stimulation. Pain 20, 313–321 (1984).

Hosobuchi, Y. Dorsal periaqueductal gray-matter stimulation in humans. Pacing Clin. Electrophysiol. 10, 213–216 (1987).

Young, R. F. & Chambi, V. I. Pain relief by electrical stimulation of the periaqueductal and periventricular gray matter. Evidence for a non-opioid mechanism. J. Neurosurg. 66, 364–371 (1987).

Young, R. F., Bach, F. W., Van Norman, A. S. & Yaksh, T. L. Release of β-endorphin and methionine–enkephalin into cerebrospinal fluid during deep brain stimulation for chronic pain. Effects of stimulation locus and site of sampling. J. Neurosurg. 79, 816–825 (1993).

Head, H. & Holmes, G. Sensory disturbances from cerebral lesions. Brain 34, 102–254 (1911).

Vilela Filho, O. Thalamic ventrobasal stimulation for pain relief. Probable mechanisms, pathways and neurotransmitters. Arq. Neuropsiquiatr. 52, 578–584 (1994).

Nandi, D., Aziz, T., Carter, H. & Stein, J. Thalamic field potentials in chronic central pain treated by periventricular gray stimulation—a series of eight cases. Pain 101, 97–107 (2003).

Mazars, G., Merienne, L. & Cioloca, C. Treatment of certain types of pain by implantable thalamic stimulators. Neurochirurgie 20, 117–124 (1974).

Mazars, G. Intermittent stimulation of nucleus ventralis posterolateralis for intractable pain. Surg. Neurol. 4, 93–95 (1975).

Bittar, R. G. et al. Deep brain stimulation for pain relief: a meta-analysis. J. Clin. Neurosci. 12, 515–519 (2005).

Levy, R. M., Lamb, S. & Adams, J. E. Treatment of chronic pain by deep brain stimulation: long term follow-up and review of the literature. Neurosurgery 21, 885–893 (1987).

Kumar, K., Wyant, G. M. & Nath, R. Deep brain stimulation for control of intractable pain in humans, present and future: a ten-year follow-up. Neurosurgery 26, 774–782 (1990).

Kumar, K., Toth, C. & Nath, R. K. Deep brain stimulation for intractable pain: a 15-year experience. Neurosurgery 40, 736–747 (1997).

Rasche, D., Rinaldi, P. C., Young, R. F. & Tronnier, V. M. Deep brain stimulation for the treatment of various chronic pain syndromes. Neurosurg. Focus 21, E8 (2006).

Siegfried, J. Sensory thalamic neurostimulation for chronic pain. Pacing Clin. Electrophysiol. 10, 209–212 (1987).

Owen, S. L., Green, A. L., Stein, J. F. & Aziz, T. Z. Deep brain stimulation for the alleviation of post-stroke neuropathic pain. Pain 120, 202–206 (2006).

Bittar, R. G., Otero, S., Carter, H. & Aziz, T. Z. Deep brain stimulation for phantom limb pain. J. Clin. Neurosci. 12, 399–404 (2005).

Owen, S. L., Green, A. L., Nandi, D. D., Bittar, R. G., Wang, S. & Aziz, T. Z. Deep brain stimulation for neuropathic pain. Acta Neurochir. Suppl. 97, 111–116 (2007).

Levy, R., Deer, T. R. & Henderson, J. Intracranial neurostimulation for pain control: a review. Pain Physician 13, 157–165 (2010).

Hamani, C. et al. Deep brain stimulation for chronic neuropathic pain: long-term outcome and the incidence of insertional effect. Pain 125, 188–196 (2006).

Coffey, R. J. Deep brain stimulation for chronic pain: results of two multicenter trials and a structured review. Pain Med. 2, 183–192 (2001).

Tsubokawa, T., Katayama, Y., Yamamoto, T., Hirayama, T. & Koyama, S. Chronic motor cortex stimulation for the treatment of central pain. Acta Neurochir. Suppl. 52, 137–139 (1991).

Tsubokawa, T., Katayama, Y., Yamamoto, T., Hirayama, T. & Koyama, S. Chronic motor cortex stimulation in patients with thalamic pain. J. Neurosurg. 78, 393–401 (1993).

Meyerson, B. A., Lindblom, U., Lind, G. & Herregodts, P. Motor cortex stimulation as treatment of trigeminal neuropathic pain. Acta Neurochir. Suppl. 58, 150–153 (1993).

Canavero, S. Cortical stimulation for central pain. J. Neurosurg. 83, 1117 (1995).

Canavero, S. & Bonicalzi, V. Therapeutic extradural cortical stimulation for central and neuropathic pain: a review. Clin. J. Pain 18, 48–55 (2002).

Carroll, D. et al. Motor cortex stimulation for chronic neuropathic pain: a preliminary study of 10 cases. Pain 84, 431–437 (2000).

Ebel, H., Rust, D., Tronnier, V., Böker, D. & Kunze, S. Chronic precentral stimulation in trigeminal neuropathic pain. Acta Neurochir. 138, 1300–1306 (1996).

Garcia-Larrea, L. et al. Electrical stimulation of motor cortex for pain control: a combined PET-scan and electrophysiological study. Pain 83, 259–273 (1999).

Herregodts, P., Stadnik, T., De Ridder, F. & D'Haens, J. Cortical stimulation for central neuropathic pain: 3-D surface MRI for easy determination of the motor cortex. Acta Neurochir. Suppl. 64, 132–135 (1995).

Hosomi, K. et al. Electrical stimulation of primary motor cortex within the central sulcus for intractable neuropathic pain. Clin. Neurophysiol. 119, 993–1001 (2008).

Katayama, Y., Fukaya, C. & Yamamoto, T. Poststroke pain control by chronic motor cortex stimulation: neurological characteristics predicting a favorable response. J. Neurosurg. 89, 585–591 (1998).

Katayama, Y. et al. Motor cortex stimulation for phantom limb pain: a comprehensive therapy with spinal cord and thalamic stimulation. Stereotact. Funct. Neurosurg. 77, 159–161 (2001).

Katayama, Y., Yamamoto, T., Kobayashi, K., Oshima, H. & Fukaya, C. Deep brain and motor cortex stimulation for post-stroke movement disorders and post-stroke pain. Acta Neurosurg. 87, 121–123 (2003).

Mertens, P. et al. Precentral cortex stimulation for the treatment of central neuropathic pain. Stereotact. Funct. Neurosurg. 73, 122–125 (1999).

Mogilner, A. Y. & Rezai, A. R. Epidural motor cortex stimulation with functional imaging guidance. Neurosurg. Focus 11, 4 (2001).

Nguyen, J. P. et al. Treatment of deafferentation pain by chronic motor cortex stimulation: report of a series of 20 cases. Acta Neurochir. Suppl. 68, 54–60 (1997).

Nguyen, J. P. et al. Chronic motor cortex stimulation in the treatment of central and neuropathic pain. Correlations between clinical, electrophysiological and anatomical data. Pain 82, 245–251 (1999).

Nguyen, J. P., Lefaucheur, J. P. & Keravel, Y. Motor cortex stimulation, in Electrical Stimulation and the Relief of Pain. Pain Research and Clinical Management (ed. Simpson, B. A.) 197–209 (Elsevier Science, Amsterdam, 2003).

Nuti, C. et al. Motor cortex stimulation for refractory neuropathic pain: four year outcome and predictors of efficacy. Pain 118, 43–52 (2005).

Peyron, R. et al. Electrical stimulation of precentral cortical area in the treatment of central pain: electrophysiological and PET study. Pain 62, 275–286 (1995).

Pirotte, B. et al. Comparison of functional MR imaging guidance to electrical cortical mapping for targeting selective motor cortex areas in neuropathic pain: a study based on intraoperative stereotactic navigation. AJNR Am. J. Neuroradiol. 26, 2256–2266 (2005).

Rainov, N. G., Fels, C., Heidecke, V. & Burkert, W. Epidural electrical motor cortex stimulation in patients with facial neuralgia. Clin. Neurol. Neurosurg. 99, 205–209 (1997).

Roux., F. E., Ibarrola, D., Lazorthes, Y. & Berry, I. Chronic motor cortex stimulation for phantom limb pain: a functional magnetic resonance imaging study: technical case report. Neurosurgery 48, 681–688 (2001).

Saitoh, Y. et al. Motor cortex stimulation for central and peripheral deafferentation pain. J. Neurosurg. 92, 150–155 (2000).

Saitoh, Y. et al. Motor cortex stimulation for deafferentation pain. Neurosurg. Focus 11, 1 (2001).

Saitoh, Y. et al. Primary motor cortex stimulation within the central sulcus for treating deafferentation pain. Acta Neurochir. 87, 149–152 (2003).

Smith, H. et al. Motor cortex stimulation for neuropathic pain. Neurosurg. Focus 11, 2 (2001).

Sol., J. C. et al. Chronic motor cortex stimulation for phantom limb pain: correlations between pain relief and functional imaging studies. Stereotact. Funct. Neurosurg. 77, 172–176 (2001).

Son, B. C., Kim, M. C., Moon, D. E. & Kang, J. K. Motor cortex stimulation in a patient with intractable complex regional pain syndrome type II with hemibody involvement. J. Neurosurg. 98, 175–179 (2003).

Tani, N., Saitoh, Y., Hirata, M., Kato, A. & Yoshimine, T. Bilateral cortical stimulation for deafferentation pain after spinal cord injury. Case report. J. Neurosurg. 101, 687–689 (2004).

Tirakotai, W. et al. Image-guided motor cortex stimulation in patients with central pain. Minim. Invasive Neurosurg. 47, 273–277 (2004).

Yamamoto, T., Katayama, Y., Hirayama, T. & Tsubokawa, T. Pharmacological classification of central post-stroke pain: comparison with the results of chronic motor cortex stimulation therapy. Pain 72, 5–12 (1997).

De Ridder, D., De Mulder, G., Verstraeten, E., Sunaert, S. & Moller, A. Somatosensory cortex stimulation for deafferentation pain. Acta Neurochir. Suppl. 97, 67–74 (2007).

Kuroda, R. et al. Somatosensory cortex stimulation-evoked analgesia in rats: potentiation by NO synthase inhibition. Life Sci. 66, PL271–PL276 (2000).

Hirayama, A. et al. Reduction of intractable deafferentation pain by navigation-guided repetitive transcranial magnetic stimulation of the primary motor cortex. Pain 122, 22–27 (2006).

Brodmann, K. in Vergleichende Lokalisationslehre der Grosshirnrinde in Prinzipien dargestellt auf Grund des Zellenbaues (Johann Ambrosius Barth, Leipzig, 1925).

Penfield, W. & Rasmussen, T. in The Cerebral Cortex of Man. A Clinical Study of Localization of Function (Macmillan, New York, 1950).

Rao, S. M. et al. Somatotopic mapping of the human primary motor cortex with functional magnetic resonance imaging. Neurology 45, 919–924 (1995).

Pirotte, B. et al. Combination of functional magnetic resonance imaging-guided neuronavigation and intraoperative cortical brain mapping improves targeting of motor cortex stimulation in neuropathic pain. Neurosurgery 56, 344–359 (2005).

Lefaucheur, J. P. & de Andrade, D. C. Intraoperative neurophysiologic mapping of the central cortical region for epidural electrode placement in the treatment of neuropathic pain by motor cortex stimulation. Brain Stimul. 2, 138–148 (2009).

Woolsey, C. N., Erickson, T. C. & Gilson, W. E. Localization in somatic sensory and motor areas of human cerebral cortex as determined by direct recording of evoked potentials and electrical stimulation. J. Neurosurg. 51, 476–506 (1979).

McCarthy, G., Allison, T. & Spencer, D. D. Localization of the face area of human sensorimotor cortex by intracranial recording of somatosensory evoked potentials. J. Neurosurg. 79, 874–884 (1993).

Holsheimer, J. et al. The role of intra-operative motor evoked potentials in the optimization of chronic cortical stimulation for the treatment of neuropathic pain. Clin. Neurophysiol. 118, 2287–2296 (2007).

Bezard, E. et al. Cortical stimulation and epileptic seizure: a study of the potential risk in primates. Neurosurgery 45, 364–350 (1999).

Maertens de Noordhout, A. et al. Intraoperative localisation of the primary motor cortex using single electrical stimuli. J. Neurol. Neurosurg. Psychiatry 60, 442–444 (1996).

Karl, A., Birbaumer, N., Lutzenberger, W., Cohen, L. G. & Flor, H. Reorganization of motor and somatosensory cortex in upper extremity amputees with phantom limb pain. J. Neurosci. 21, 3609–3618 (2001).

Coulter, J. D., Maunz, R. A. & Willis, W. D. Effects of stimulation of sensorimotor cortex on primate spinothalamic neurons. Brain Res. 64, 351–356 (1974).

Ranck, L. B. Jr. Which elements are excited in electrical stimulation of mammalian central nervous system: a review. Brain Res. 98, 417–440 (1975).

Amassian, V. E., Stewart, M., Quirk, G. J. & Rosenthal, J. L. Physiological basis of motor effects of a transient stimulus to cerebral cortex. Neurosurgery 20, 74–93 (1987).

Amassian, V. E. & Stewart, M. Motor cortical and other cortical interneuronal networks that generate very high frequency waves. Suppl. Clin. Neurophysiol. 56, 119–142 (2003).

Manola, L., Holsheimer, J., Veltink, P. & Buitenweg, J. R. Anodal vs cathodal stimulation of motor cortex: a modeling study. Clin. Neurophysiol. 118, 464–474 (2007).

Holsheimer, J., Nguyen, J. P., Lefaucheur, J. P. & Manola, L. Cathodal, anodal or bifocal stimulation of the motor cortex in the management of chronic pain. Acta Neurochir. Suppl. 97, 57–66 (2007).

Lefaucheur, J. P., Holsheimer, J., Goujon, C., Keravel, Y. & Nguyen, J. P. Descending volleys generated by efficacious epidural motor cortex stimulation in patients with chronic neuropathic pain. Exp. Neurol. 223, 609–614 (2010).

André-Obadia, N., Mertens, P., Gueguen, A., Peyron, R. & Garcia-Larrea, L. Pain relief by rTMS: differential effect of current flow but no specific action on pain subtypes. Neurology 71, 833–840 (2008).

Villanueva, L. & Fields, H. L. Endogenous central mechanisms of pain modulation, in Progress in Pain Research and Management (eds Villanueva, L. et al.) 223–243 (International Association for the Study of Pain, Seattle, 2004).

Peyron, R., Faillenot, I., Mertens, P., Laurent, B. & Garcia-Larrea, L. Motor cortex stimulation in neuropathic pain. Correlations between analgesic effect and hemodynamic changes in the brain. A PET study. Neuroimage 34, 310–321 (2007).

Maarrawi, J. et al. Motor cortex stimulation for pain control induces changes in the endogenous opioid system. Neurology 69, 827–834 (2007).

Garcia-Larrea, L. et al. Functional imaging and neurophysiological assessment of spinal and brain therapeutic modulation in humans. Arch. Med. Res. 31, 248–257 (2000).

Lefaucheur, J. P., Drouot, X., Ménard-Lefaucheur, I., Keravel, Y. & Nguyen, J. P. Motor cortex rTMS restores defective intracortical inhibition in chronic neuropathic pain. Neurology 67, 1568–1574 (2006).

Schwenkreis, P. et al. Cortical disinhibition occurs in chronic neuropathic, but not in chronic nociceptive pain. BMC Neurosci. 11, 73–83 (2010).

Lima, M. C. & Fregni, F. Motor cortex stimulation for chronic pain: systematic review and meta-analysis of the literature. Neurology 70, 2329–2337 (2008).

Fontaine, D., Hamani, C. & Lozano, A. Efficacy and safety of motor cortex stimulation for chronic neuropathic pain: critical review of the literature. J. Neurosurg. 110, 251–256 (2009).

Nguyen, J. P. et al. in Neuromodulation (eds Krames, E. S. et al.) Motor cortex stimulation for the treatment of neuropathic pain, 515–526 (Elsevier Science, Amsterdam, 2009).

Rasche, D., Ruppolt, M., Stippich, C., Unterberg, A. & Tronnier, V. Motor cortex stimulation for long-term relief of chronic neuropathic pain: a 10 year experience. Pain 121, 43–52 (2006).

Nguyen, J. P. et al. Treatment of chronic neuropathic pain by motor cortex stimulation: Results of a bicentric controlled crossover trial. Brain Stimul. 1, 89–96 (2008).

Velasco, F. et al. Efficacy of motor cortex stimulation in the treatment of neuropathic pain: a randomised double-blind trial. J. Neurosurg. 108, 698–706 (2008).

Lefaucheur, J. P. et al. Motor cortex stimulation for the treatment of refractory peripheral neuropathic pain. Brain 132, 1463–1471 (2009).

Canavero, S., Bonicalzi, V., Castellano, G., Perozzo, P. & Massa-Micon, B. Painful supernumerary phantom arm following motor cortex stimulation for central poststroke pain. J. Neurosurg. 91, 121–123 (1999).

Melzack, R. The McGill Pain Questionnaire: major properties and scoring methods. Pain 1, 277–299 (1975).

Daut, R. L., Cleeland, C. S. & Flanery, R. C. Development of the Wisconsin Brief Pain Questionnaire to assess pain in cancer and other diseases. Pain 17, 197–210 (1983).

Masters Steedman, S. et al. Chronic-pain medications: equivalence levels and method of quantifying usage. Clin. J. Pain 8, 204–214 (1992).

Brown, J. A. & Pilitsis, J. G. Motor cortex stimulation for central and neuropathic facial pain: a prospective study of 10 patients and observations of enhanced sensory and motor function during stimulation. Neurosurgery 56, 290–297 (2005).

Henderson, J. M., Boongird, A., Rosenow, J. M, LaPresto, E. & Rezai, A. R. Recovery of pain control by intensive reprogramming after loss of benefit from motor cortex stimulation for neuropathic pain. Stereotact. Funct. Neurosurg. 82, 207–213 (2004).

Bergner, M., Bobbitt, R. A., Carter, W. B. & Gilson, B. S. The sickness impact profile: development and final revision of a health status measure. Med. Care 19, 787–805 (1981).

Drouot, X., Nguyen, J. P., Peschanski, M. & Lefaucheur, J. P. The antalgic efficacy of chronic motor cortex stimulation is related to sensory changes in the painful zone. Brain 125, 1660–1664 (2002).

André-Obadia, N. et al. Transcranial magnetic stimulation for pain control: double-blind study of different frequencies against placebo, and correlation with motor cortex stimulation efficacy. Clin.Neurophysiol. 117, 1536–1544 (2006).

Lefaucheur, J. P., Ménard-Lefaucheur, I., Goujon, C., Keravel, Y. & Nguyen, J. P. Predictive value of rTMS in the identification of responders to epidural motor cortex stimulation therapy for pain. J. Pain doi: 10.1016/j.jpain.2011.05.004.