The proposed project will combine functional magnetic resonance imaging (fMRI) and electroencephalography (EEG) to identify neurobiological mechanisms underlying how repetitive transcranial magnetic stimulation (rTMS) applied to the primary motor cortex modulates maladaptive neuroplasticity following neuropathic pain.
Neuropathic pain is pain arising from damage or disease of the somatosensory nervous system, affecting up to 10% of the general population. Common causes of neuropathic pain include diabetes, herpes zoster infections, chemotherapy, and trauma. Despite the employment of multi-line pharmacological treatment, 70\~80% of neuropathic pain patients still remain refractory. The refractoriness of neuropathic pain may be attributed to the development of maladaptive plasticity in the brain following chronic neuropathic pain. The proposed project will combine functional magnetic resonance imaging (fMRI) and electroencephalography (EEG) to identify neurobiological mechanisms underlying how repetitive transcranial magnetic stimulation (rTMS) applied to the primary motor cortex modulates maladaptive neuroplasticity following neuropathic pain. This combined fMRI-EEG approach will not only improve our understanding of mechanisms underlying neuropathic pain, the most suffering symptom in patients with peripheral neuropathy, but also provide non-invasive brain biomarkers that enable us to investigate the neuromodulatory effects of rTMS by (1) exploring how rTMS modulation is linked to changes in the functional connectivity of the motor cortex, (2) assessing rTMS modulation of the excitatory-inhibitory balance and excitability of the brain, and (3) applying machine-learning models to predict neuroimaging and neurophysiological changes by rTMS from baseline brain functional connectivity. Results from the current project will provide a new perspective to promote precision medicine for neuropathic pain, enabling the future exploration of non-invasive therapeutic targets for rTMS.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
SINGLE
Enrollment
52
30 trains of TMS pulses delivered at 10 Hz for 10 s (100 pulses/train) with a 20-s intertrain interval, leading to 3000 pulses per session for a total duration of 15 min
the stimulation coil will be tilted 90 degrees away from the scalp. This orientation ensures that the participant experiences the characteristic clicking sound and physical sensation of the TMS machine without the magnetic field reaching the brain.
change in neuropathic pain intensity from the baseline
measured by visual analog scale (VAS)
Time frame: 2 weeks after the rTMS interventions
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