Skip to main content
Top
Published in: Neurological Sciences 1/2021

01-01-2021 | Propranolol | Original Article

Neuronavigation based 10 sessions of repetitive transcranial magnetic stimulation therapy in chronic migraine: an exploratory study

Authors: Anant Kumar, Bhawna Mattoo, Rohit Bhatia, Senthil Kumaran, Renu Bhatia

Published in: Neurological Sciences | Issue 1/2021

Login to get access

Abstract

Introduction

Chronic migraine is a disease of altered cortical excitability. Repetitive transcranial magnetic stimulation provides a novel non-invasive method to target the nociceptive circuits in the cortex. Motor cortex is one such potential target. In this study, we targeted the left motor cortex using fMRI-guided neuronavigation.

Materials and Methods

Twenty right-handed patients were randomized into real and sham rTMS group. Baseline subjective pain assessments were done using visual analog scale (VAS) and questionnaires: State-Trait Anxiety Inventory, Becks Depression Inventory, and Migraine Disability Assessment (MIDAS) questionnaire. Objectively, pain was assessed by means of thermal pain thresholds using quantitative sensory testing. For corticomotor excitability parameters, resting motor thresholds and motor-evoked potentials were mapped. For rTMS total, 600 pulses in 10 trains at 10 Hz with an intertrain interval of 60 s were delivered in each session. Ten such sessions were given 5 days per week over 2 consecutive weeks. The duration of each session was 10 min. Real rTMS was administered at 70% of Resting MT. All the tests were repeated post-intervention and after 1 month of follow-up. There are no studies reporting the use of fMRI-based TMS for targeting the motor cortex in CM patients.

Results

We observed a significant reduction in the mean VAS rating, headache frequency, and MIDAS questionnaire in real rTMS group which was maintained after 1 month of follow-up.

Conclusion

Ten sessions of fMRI-based rTMS over the left motor cortex may provide long-term pain relief in CM, but further studies are warranted to confirm our preliminary findings.
Appendix
Available only for authorised users
Literature
1.
go back to reference Brighina F, Palermo A, Daniele O, Aloisio A, Fierro B (2010) High-frequency transcranial magnetic stimulation on motor cortex of patients affected by migraine with aura: a way to restore normal cortical excitability? Cephalalgia Int J Headache 30(1):46–52CrossRef Brighina F, Palermo A, Daniele O, Aloisio A, Fierro B (2010) High-frequency transcranial magnetic stimulation on motor cortex of patients affected by migraine with aura: a way to restore normal cortical excitability? Cephalalgia Int J Headache 30(1):46–52CrossRef
2.
go back to reference Brighina F, Piazza A, Vitello G, Aloisio A, Palermo A, Daniele O, Fierro B (2004) rTMS of the prefrontal cortex in the treatment of chronic migraine: a pilot study. J Neurol Sci 227(1):67–71CrossRef Brighina F, Piazza A, Vitello G, Aloisio A, Palermo A, Daniele O, Fierro B (2004) rTMS of the prefrontal cortex in the treatment of chronic migraine: a pilot study. J Neurol Sci 227(1):67–71CrossRef
3.
go back to reference Misra UK, Kalita J, Bhoi SK (2013) High-rate repetitive transcranial magnetic stimulation in migraine prophylaxis: a randomized, placebo-controlled study. J Neurol 260(11):2793–2801CrossRef Misra UK, Kalita J, Bhoi SK (2013) High-rate repetitive transcranial magnetic stimulation in migraine prophylaxis: a randomized, placebo-controlled study. J Neurol 260(11):2793–2801CrossRef
4.
go back to reference Schoenen J (2006) Neurophysiological features of the migrainous brain. Neurol Sci 27(2):s77–s81CrossRef Schoenen J (2006) Neurophysiological features of the migrainous brain. Neurol Sci 27(2):s77–s81CrossRef
5.
go back to reference Barbanti P, Fofi L, Aurilia C, Egeo G (2019) Does the migraine attack start in the cortex and is the cortex critical in the migraine process? Neurol Sci 40(1):31–37CrossRef Barbanti P, Fofi L, Aurilia C, Egeo G (2019) Does the migraine attack start in the cortex and is the cortex critical in the migraine process? Neurol Sci 40(1):31–37CrossRef
6.
go back to reference Teepker M, Hötzel J, Timmesfeld N, Reis J, Mylius V, Haag A, Oertel WH, Rosenow F, Schepelmann K (2010) Low-frequency rTMS of the vertex in the prophylactic treatment of migraine. Cephalalgia. 30(2):137–144CrossRef Teepker M, Hötzel J, Timmesfeld N, Reis J, Mylius V, Haag A, Oertel WH, Rosenow F, Schepelmann K (2010) Low-frequency rTMS of the vertex in the prophylactic treatment of migraine. Cephalalgia. 30(2):137–144CrossRef
7.
go back to reference Conforto AB, Amaro E, Gonçalves AL, Mercante JP, Guendler VZ, Ferreira JR et al (2014) Randomized, proof-of-principle clinical trial of active transcranial magnetic stimulation in chronic migraine. Cephalalgia. 34(6):464–472CrossRef Conforto AB, Amaro E, Gonçalves AL, Mercante JP, Guendler VZ, Ferreira JR et al (2014) Randomized, proof-of-principle clinical trial of active transcranial magnetic stimulation in chronic migraine. Cephalalgia. 34(6):464–472CrossRef
8.
go back to reference Andreou AP, Holland ÃPR, Akerman ÃS, Summ O, Fredrick J, Goadsby PJ (2016) Transcranial magnetic stimulation and potential cortical and trigeminothalamic mechanisms in migraine. Brain 139(Pt 7):2002–14 Andreou AP, Holland ÃPR, Akerman ÃS, Summ O, Fredrick J, Goadsby PJ (2016) Transcranial magnetic stimulation and potential cortical and trigeminothalamic mechanisms in migraine. Brain 139(Pt 7):2002–14
9.
go back to reference Kalita J, Laskar S, Bhoi SK, Misra UK (2016) Efficacy of single versus three sessions of high rate repetitive transcranial magnetic stimulation in chronic migraine and tension-type headache. J Neurol 263(11):2238–2246CrossRef Kalita J, Laskar S, Bhoi SK, Misra UK (2016) Efficacy of single versus three sessions of high rate repetitive transcranial magnetic stimulation in chronic migraine and tension-type headache. J Neurol 263(11):2238–2246CrossRef
10.
go back to reference García-Larrea L, Peyron R, Mertens P, Gregoire MC, Lavenne F, Le Bars D et al (1999) Electrical stimulation of motor cortex for pain control: a combined PET-scan and electrophysiological study. Pain. 83(2):259–273CrossRef García-Larrea L, Peyron R, Mertens P, Gregoire MC, Lavenne F, Le Bars D et al (1999) Electrical stimulation of motor cortex for pain control: a combined PET-scan and electrophysiological study. Pain. 83(2):259–273CrossRef
11.
go back to reference Di Lazzaro V, Ziemann U (2013) The contribution of transcranial magnetic stimulation in the functional evaluation of microcircuits in human motor cortex. Front Neural Circuits 7(February):1–9 Di Lazzaro V, Ziemann U (2013) The contribution of transcranial magnetic stimulation in the functional evaluation of microcircuits in human motor cortex. Front Neural Circuits 7(February):1–9
12.
go back to reference Mattoo B, Tanwar S, Bhatia R, Tripathi M, Bhatia R (2019) Repetitive transcranial magnetic stimulation in chronic tension-type headache: a pilot study. Indian J Med Res 150:73–80CrossRef Mattoo B, Tanwar S, Bhatia R, Tripathi M, Bhatia R (2019) Repetitive transcranial magnetic stimulation in chronic tension-type headache: a pilot study. Indian J Med Res 150:73–80CrossRef
14.
go back to reference Passard A, Attal N, Benadhira R, Brasseur L, Saba G, Sichere P, Perrot S, Januel D, Bouhassira D (2007) Effects of unilateral repetitive transcranial magnetic stimulation of the motor cortex on chronic widespread pain in fibromyalgia. Brain J Neurol 130(Pt 10):2661–2670CrossRef Passard A, Attal N, Benadhira R, Brasseur L, Saba G, Sichere P, Perrot S, Januel D, Bouhassira D (2007) Effects of unilateral repetitive transcranial magnetic stimulation of the motor cortex on chronic widespread pain in fibromyalgia. Brain J Neurol 130(Pt 10):2661–2670CrossRef
15.
go back to reference Picarelli H, Teixeira MJ, Ciampi de Andrade D, Myczkowski ML, Luvisotto TB, Yeng LT, Fonoff ET, Pridmore S, Marcolin MA, (2010) Repetitive transcranial magnetic stimulation is efficacious as an add-on to pharmacological therapy in complex regional pain syndrome (CRPS) Type I. J Pain Res 11(11):1203–1210 Picarelli H, Teixeira MJ, Ciampi de Andrade D, Myczkowski ML, Luvisotto TB, Yeng LT, Fonoff ET, Pridmore S, Marcolin MA, (2010) Repetitive transcranial magnetic stimulation is efficacious as an add-on to pharmacological therapy in complex regional pain syndrome (CRPS) Type I. J Pain Res 11(11):1203–1210
16.
go back to reference Wu T, Sommer M, Tergau F, Paulus W (2000) Lasting influence of repetitive transcranial magnetic stimulation on intracortical excitability in human subjects. Neurosci Lett 287(1):37–40CrossRef Wu T, Sommer M, Tergau F, Paulus W (2000) Lasting influence of repetitive transcranial magnetic stimulation on intracortical excitability in human subjects. Neurosci Lett 287(1):37–40CrossRef
17.
go back to reference Pascual-Leone A, Valls-Solé J, Wassermann EM, Hallett M (1994) Responses to rapid-rate transcranial magnetic stimulation of the human motor cortex. Brain J Neurol 117(Pt 4):847–858CrossRef Pascual-Leone A, Valls-Solé J, Wassermann EM, Hallett M (1994) Responses to rapid-rate transcranial magnetic stimulation of the human motor cortex. Brain J Neurol 117(Pt 4):847–858CrossRef
18.
go back to reference Modugno N, Nakamura Y, MacKinnon C, Filipovic S, Bestmann S, Berardelli A, Rothwell J (2001) Motor cortex excitability following short trains of repetitive magnetic stimuli. Exp Brain Res 140(4):453–459CrossRef Modugno N, Nakamura Y, MacKinnon C, Filipovic S, Bestmann S, Berardelli A, Rothwell J (2001) Motor cortex excitability following short trains of repetitive magnetic stimuli. Exp Brain Res 140(4):453–459CrossRef
19.
go back to reference Peinemann A, Reimer B, Löer C, Quartarone A, Münchau A, Conrad B, Roman Siebner H (2004) Long-lasting increase in corticospinal excitability after 1800 pulses of subthreshold 5 Hz repetitive TMS to the primary motor cortex. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 115(7):1519–1526CrossRef Peinemann A, Reimer B, Löer C, Quartarone A, Münchau A, Conrad B, Roman Siebner H (2004) Long-lasting increase in corticospinal excitability after 1800 pulses of subthreshold 5 Hz repetitive TMS to the primary motor cortex. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 115(7):1519–1526CrossRef
20.
go back to reference Maeda F, Keenan JP, Tormos JM, Topka H, Pascual-Leone A (2000) Modulation of corticospinal excitability by repetitive transcranial magnetic stimulation. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 111(5):800–805CrossRef Maeda F, Keenan JP, Tormos JM, Topka H, Pascual-Leone A (2000) Modulation of corticospinal excitability by repetitive transcranial magnetic stimulation. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 111(5):800–805CrossRef
21.
go back to reference Siebner HR, Mentschel C, Auer C, Lehner C, Conrad B (2000) Repetitive transcranial magnetic stimulation causes a short-term increase in the duration of the cortical silent period in patients with Parkinson’s disease. Neurosci Lett 284(3):147–150CrossRef Siebner HR, Mentschel C, Auer C, Lehner C, Conrad B (2000) Repetitive transcranial magnetic stimulation causes a short-term increase in the duration of the cortical silent period in patients with Parkinson’s disease. Neurosci Lett 284(3):147–150CrossRef
22.
go back to reference Daskalakis ZJ, Möller B, Christensen BK, Fitzgerald PB, Gunraj C, Chen R (2006) The effects of repetitive transcranial magnetic stimulation on cortical inhibition in healthy human subjects. Exp Brain Res 174(3):403–412CrossRef Daskalakis ZJ, Möller B, Christensen BK, Fitzgerald PB, Gunraj C, Chen R (2006) The effects of repetitive transcranial magnetic stimulation on cortical inhibition in healthy human subjects. Exp Brain Res 174(3):403–412CrossRef
23.
go back to reference Fitzgerald PB, Fountain S, Daskalakis ZJ (2006) A comprehensive review of the effects of rTMS on motor cortical excitability and inhibition. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 117(12):2584–2596CrossRef Fitzgerald PB, Fountain S, Daskalakis ZJ (2006) A comprehensive review of the effects of rTMS on motor cortical excitability and inhibition. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 117(12):2584–2596CrossRef
24.
go back to reference Bashir S, Edwards D, Pascual-Leone A (2011) Neuronavigation increases the physiologic and behavioral effects of low-frequency rTMS of primary motor cortex in healthy subjects. Brain Topogr 24(1):54–64CrossRef Bashir S, Edwards D, Pascual-Leone A (2011) Neuronavigation increases the physiologic and behavioral effects of low-frequency rTMS of primary motor cortex in healthy subjects. Brain Topogr 24(1):54–64CrossRef
25.
go back to reference Julkunen P, Säisänen L, Danner N, Niskanen E, Hukkanen T, Mervaala E, Könönen M (2009) Comparison of navigated and non-navigated transcranial magnetic stimulation for motor cortex mapping, motor threshold and motor evoked potentials. NeuroImage. 44(3):790–795CrossRef Julkunen P, Säisänen L, Danner N, Niskanen E, Hukkanen T, Mervaala E, Könönen M (2009) Comparison of navigated and non-navigated transcranial magnetic stimulation for motor cortex mapping, motor threshold and motor evoked potentials. NeuroImage. 44(3):790–795CrossRef
26.
go back to reference Fierro B, Piazza A, Brighina F, La Bua V, Buffa D, Oliveri M (2001) Modulation of intracortical inhibition induced by low- and high-frequency repetitive transcranial magnetic stimulation. Exp Brain Res 138(4):452–457CrossRef Fierro B, Piazza A, Brighina F, La Bua V, Buffa D, Oliveri M (2001) Modulation of intracortical inhibition induced by low- and high-frequency repetitive transcranial magnetic stimulation. Exp Brain Res 138(4):452–457CrossRef
27.
go back to reference Berardelli A, Inghilleri M, Gilio F, Romeo S, Pedace F, Currà A, Manfredi M (1999) Effects of repetitive cortical stimulation on the silent period evoked by magnetic stimulation. Exp Brain Res 125(1):82–86CrossRef Berardelli A, Inghilleri M, Gilio F, Romeo S, Pedace F, Currà A, Manfredi M (1999) Effects of repetitive cortical stimulation on the silent period evoked by magnetic stimulation. Exp Brain Res 125(1):82–86CrossRef
28.
go back to reference Cosentino G, Fierro B, Brighina F (2014) From different neurophysiological methods to conflicting pathophysiological views in migraine: a critical review of literature. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 125(9):1721–1730CrossRef Cosentino G, Fierro B, Brighina F (2014) From different neurophysiological methods to conflicting pathophysiological views in migraine: a critical review of literature. Clin Neurophysiol Off J Int Fed Clin Neurophysiol 125(9):1721–1730CrossRef
29.
go back to reference Cosentino G, Brighina F, Talamanca S, Paladino P, Vigneri S, Baschi R, Indovino S, Maccora S, Alfonsi E, Fierro B (2014) Reduced threshold for inhibitory homeostatic responses in migraine motor cortex? A tDCS/TMS study. Headache. 54(4):663–674CrossRef Cosentino G, Brighina F, Talamanca S, Paladino P, Vigneri S, Baschi R, Indovino S, Maccora S, Alfonsi E, Fierro B (2014) Reduced threshold for inhibitory homeostatic responses in migraine motor cortex? A tDCS/TMS study. Headache. 54(4):663–674CrossRef
30.
go back to reference Mylius V, Borckardt JJ, Lefaucheur J-P (2012) Noninvasive cortical modulation of experimental pain. Pain. 153(7):1350–1363CrossRef Mylius V, Borckardt JJ, Lefaucheur J-P (2012) Noninvasive cortical modulation of experimental pain. Pain. 153(7):1350–1363CrossRef
31.
go back to reference Woolf CJ (2011) Central sensitization: implications for the diagnosis and treatment of pain. Pain 152(Supplement):S2–S15CrossRef Woolf CJ (2011) Central sensitization: implications for the diagnosis and treatment of pain. Pain 152(Supplement):S2–S15CrossRef
32.
go back to reference Malo-Urriés M, Estébanez-de-Miguel E, Bueno-Gracia E, Tricás-Moreno JM, Santos-Lasaosa S, Hidalgo-García C (2020 [cited 2020 May 8]) Sensory function in headache: a comparative study among patients with cluster headache, migraine, tension-type headache, and asymptomatic subjects. Neurol Sci [Internet]. https://doi.org/10.1007/s10072-020-04384-8 Malo-Urriés M, Estébanez-de-Miguel E, Bueno-Gracia E, Tricás-Moreno JM, Santos-Lasaosa S, Hidalgo-García C (2020 [cited 2020 May 8]) Sensory function in headache: a comparative study among patients with cluster headache, migraine, tension-type headache, and asymptomatic subjects. Neurol Sci [Internet]. https://​doi.​org/​10.​1007/​s10072-020-04384-8
33.
go back to reference Peyron R, Faillenot I, Mertens P, Laurent B, Garcia-Larrea L (2007) Motor cortex stimulation in neuropathic pain. Correlations between analgesic effect and hemodynamic changes in the brain. A PET study. NeuroImage. 34(1):310–321CrossRef Peyron R, Faillenot I, Mertens P, Laurent B, Garcia-Larrea L (2007) Motor cortex stimulation in neuropathic pain. Correlations between analgesic effect and hemodynamic changes in the brain. A PET study. NeuroImage. 34(1):310–321CrossRef
34.
go back to reference Strafella AP, Paus T, Fraraccio M, Dagher A (2003) Striatal dopamine release induced by repetitive transcranial magnetic stimulation of the human motor cortex. Brain J Neurol 126(Pt 12):2609–2615CrossRef Strafella AP, Paus T, Fraraccio M, Dagher A (2003) Striatal dopamine release induced by repetitive transcranial magnetic stimulation of the human motor cortex. Brain J Neurol 126(Pt 12):2609–2615CrossRef
35.
go back to reference Misra UK, Kalita J, Tripathi G, Bhoi SK (2017) Role of β endorphin in pain relief following high rate repetitive transcranial magnetic stimulation in migraine. Brain Stimulat 10(3):618–623CrossRef Misra UK, Kalita J, Tripathi G, Bhoi SK (2017) Role of β endorphin in pain relief following high rate repetitive transcranial magnetic stimulation in migraine. Brain Stimulat 10(3):618–623CrossRef
36.
go back to reference Cho SS, Strafella AP (2009) rTMS of the left dorsolateral prefrontal cortex modulates dopamine release in the ipsilateral anterior cingulate cortex and orbitofrontal cortex. PLoS One 4(8):e6725CrossRef Cho SS, Strafella AP (2009) rTMS of the left dorsolateral prefrontal cortex modulates dopamine release in the ipsilateral anterior cingulate cortex and orbitofrontal cortex. PLoS One 4(8):e6725CrossRef
37.
go back to reference Lefaucheur JP, Drouot X, Ménard-Lefaucheur I, Nguyen JP (2004) Neuropathic pain controlled for more than a year by monthly sessions of repetitive transcranial magnetic stimulation of the motor cortex. Neurophysiol Clin Clin Neurophysiol 34(2):91–95CrossRef Lefaucheur JP, Drouot X, Ménard-Lefaucheur I, Nguyen JP (2004) Neuropathic pain controlled for more than a year by monthly sessions of repetitive transcranial magnetic stimulation of the motor cortex. Neurophysiol Clin Clin Neurophysiol 34(2):91–95CrossRef
38.
go back to reference Lefaucheur J-P, André-Obadia N, Antal A, Ayache SS, Baeken C, Benninger DH, Cantello RM, Cincotta M, de Carvalho M, de Ridder D, Devanne H, di Lazzaro V, Filipović SR, Hummel FC, Jääskeläinen SK, Kimiskidis VK, Koch G, Langguth B, Nyffeler T, Oliviero A, Padberg F, Poulet E, Rossi S, Rossini PM, Rothwell JC, Schönfeldt-Lecuona C, Siebner HR, Slotema CW, Stagg CJ, Valls-Sole J, Ziemann U, Paulus W, Garcia-Larrea L (2014) Evidence-based guidelines on the therapeutic use of repetitive transcranial magnetic stimulation (rTMS). Clin Neurophysiol 125(11):2150–2206CrossRef Lefaucheur J-P, André-Obadia N, Antal A, Ayache SS, Baeken C, Benninger DH, Cantello RM, Cincotta M, de Carvalho M, de Ridder D, Devanne H, di Lazzaro V, Filipović SR, Hummel FC, Jääskeläinen SK, Kimiskidis VK, Koch G, Langguth B, Nyffeler T, Oliviero A, Padberg F, Poulet E, Rossi S, Rossini PM, Rothwell JC, Schönfeldt-Lecuona C, Siebner HR, Slotema CW, Stagg CJ, Valls-Sole J, Ziemann U, Paulus W, Garcia-Larrea L (2014) Evidence-based guidelines on the therapeutic use of repetitive transcranial magnetic stimulation (rTMS). Clin Neurophysiol 125(11):2150–2206CrossRef
Metadata
Title
Neuronavigation based 10 sessions of repetitive transcranial magnetic stimulation therapy in chronic migraine: an exploratory study
Authors
Anant Kumar
Bhawna Mattoo
Rohit Bhatia
Senthil Kumaran
Renu Bhatia
Publication date
01-01-2021
Publisher
Springer International Publishing
Published in
Neurological Sciences / Issue 1/2021
Print ISSN: 1590-1874
Electronic ISSN: 1590-3478
DOI
https://doi.org/10.1007/s10072-020-04505-3

Other articles of this Issue 1/2021

Neurological Sciences 1/2021 Go to the issue