The Effect of The Ten-Session Dual-tDCS On Lower-Limb Performance in Sub- Acute and Chronic Stroke
NCT ID: NCT04687033
Last Updated: 2025-11-18
Study Results
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Basic Information
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COMPLETED
NA
34 participants
INTERVENTIONAL
2021-01-01
2024-08-01
Brief Summary
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Detailed Description
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After stroke, the excitability of the lesioned hemisphere is decreased and seen like overactive of the excitability of the non-lesioned hemisphere. Abnormally high interhemispheric inhibition (IHI) drive from intact to lesioned hemisphere has been reported. The neural plasticity begins in the early stages after stroke. Prevent the imbalance IHI and increase the excitability of the lesioned hemisphere in the early phase would be beneficial for stroke rehabilitation.
Based on the polarity-specific effects, anodal tDCS increases cortical excitability and cathodal tDCS decreases cortical excitability. Transcranial direct current stimulation (tDCS) can be applied in two distinct montages: monocephalic and bi-hemispheric/dual-tDCS (applying two electrodes over both cerebral hemispheres at the same time). To induce post-stroke motor recovery, two different monocephalic montages are typically used: i) to restore excitability in the lesioned hemisphere: anode over the lesioned hemisphere and the cathode as the reference electrode placed over the contra-orbital area ii) to down-regulate the excitability of the non-lesioned hemisphere and rebalance IHI: cathode over the non-lesioned hemisphere and the anode as the reference electrode. Dual-tDCS can be also applied, permitting simultaneous coupling of excitatory and inhibitory effects on both cortices. Few evidences are showing that tDCS (monocephalic and bi-hemispheric/dual-tDCS) could improve lower limb performance at immediate and at least 3 months. However, there is still unclear effect on gait performance and muscle strength.
Recently, dual-hemisphere tDCS which excites one hemisphere using anodal stimulation and inhibits the other by cathodal stimulation has been described in healthy volunteers to greater enhance hand motor learning compared to uni-hemispheric tDCS. The corresponding tDCS-induced changes were reported in imaging study to involve interhemispheric interactions. Dual tDCS has been more recently used in rehabilitation aiming to reduce the inhibition exerted by the non-lesioned hemisphere on the lesioned hemisphere and restore the normal balance of the IHI. Dual-tDCS combined with training or simultaneous occupational/physical therapy has been reported to improve motor skill learning and functions of the paretic upper limb in chronic stroke patients.
Lower-limb functions are commonly disabling after stroke, however, few studies have focused on the effect of tDCS on lower limb functions. A single session of anodal tDCS over the lower limb M1 has been reported to acutely enhance the effect of motor practice of the paretic ankle, force production of the paretic knee extensors, and postural stability in chronic stroke patients. A study showed an improvement in walking speed immediately after a single session of dual-tDCS alone in sub-acute stroke patients.
Based on the previous study, 1-2 mA current intensity of tDCS is usually used for modulating brain activity. The proper current density delivered is between 0.029-0.008 mA/cm 2. The higher current density, the longer-lasting, stronger, and deeper cortical neuron stimulation. Therefore, 2 mA current intensity of tDCS was applied in stroke patients for lower limb performance improvement. Following homologous brain regions, the motor area of lower extremities is in depth and previous studies demonstrated that current intensity 2 mA of tDCS could pass through the lower extremities area of the brain.
Moreover, Tahtis et al, 2013 found that using 2 mA of dual-tDCS could improve walking speed immediately after a single session in sub-acute stroke and Klomjai et al, 2018 found that a single session of dual-tDCS 2 mA with physical therapy in sub-acute stroke immediately improved sit to stand performance greater than physical therapy alone. The mechanisms of action were hypothesized that when stimulation continuously affects neuronal plasticity changes. Therefore, they suggested that further study shall implement more sessions of dual-tDCS combined with physical therapy to improve lower limb performance and determine the long lasting-after effect.
A previous study reported that the 10-consecutive sessions of tDCS were an effective treatment strategy in reducing the risk of falls and improving lower limb functions after a stroke. However, gait ability and lower limb muscle strength were not included in the outcome measures. In this study, the long-lasting effect was demonstrated at least one week to three months. There are evidences that 10 sessions for uni-hemisphere tDCS appeared to improve lower limb motor functions without serious adverse effects in patients with stroke. It is still unclear the effect of multiple sessions of dual-tDCS on gait performance and muscle strength as well as the long-lasting after-effect of multiple sessions of dual-tDCS.
Therefore, the present study aims to investigate the efficacy of ten sessions of dual-tDCS combined with conventional physical therapy on the lower limb functions after stroke in sub-acute. Clinical outcomes for lower limb performance evaluations will consist of muscle strength assessed by hand-held dynamometer, the Time up and go test for lower limb functional performance, Five times sit to stand test for dynamic balance and muscle strength, and the Zebris Force distribution measurement (FDM) for gait analysis.
Conditions
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Study Design
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RANDOMIZED
FACTORIAL
TREATMENT
TRIPLE
Study Groups
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Dual-tDCS & PT
Dual tDCS: the anodal tDCS will be applied over the M1 of the lesioned hemisphere, while the cathodal tDCS will be applied over the M1 of the non-lesioned hemisphere for 20 mins before physical therapy (about
1 hour). The current intensity is fixed at 2 mA and the current will flow continuously. Physical therapist will give an intervention program for lower limb performance.
Transcranial direct current stimulation
This instrument will be used to induce post-stroke motor recovery, two different monocephalic montages are typically used to restore excitability in the lesioned hemisphere and to down-regulate excitability of the non-lesioned hemisphere and rebalance Interhemispheric inhibition. each participant will undergo a 20-minute period of tDCS, applied at 2 mA through a pair of saline-soaked surface sponge electrodes (35 cm2).
Sham-tDCS & PT
Sham tDCS: the anodal tDCS will be applied over the M1 of the lesioned hemisphere, while the cathodal tDCS will be applied over the M1 of the non-lesioned hemisphere, the current intensity will be 2mA (sham mode). Physical therapist will give an intervention program for lower limb performance.
Transcranial direct current stimulation
This instrument will be used to induce post-stroke motor recovery, two different monocephalic montages are typically used to restore excitability in the lesioned hemisphere and to down-regulate excitability of the non-lesioned hemisphere and rebalance Interhemispheric inhibition. each participant will undergo a 20-minute period of tDCS, applied at 2 mA through a pair of saline-soaked surface sponge electrodes (35 cm2).
Interventions
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Transcranial direct current stimulation
This instrument will be used to induce post-stroke motor recovery, two different monocephalic montages are typically used to restore excitability in the lesioned hemisphere and to down-regulate excitability of the non-lesioned hemisphere and rebalance Interhemispheric inhibition. each participant will undergo a 20-minute period of tDCS, applied at 2 mA through a pair of saline-soaked surface sponge electrodes (35 cm2).
Eligibility Criteria
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Inclusion Criteria
* First ever-ischemic lesion in the territory of middle cerebral artery or anterior cerebral artery. Diagnostic confirmation will be performed by CT scan or MRI
* Sub-acute onset (1-6 months after the stroke onset) or Chronic (6 months - 5 years)
* Able to walk without physical assistance at least 6 meters
Exclusion Criteria
* Clinical unstable such as vital sign unstable (systolic blood pressure (SBP) ≥ 185 mmHg or diastolic blood pressure (DBP) ≥ 110 mmHg (98) and resting heart rate averaging ≥ 100 bpm (99))
* No clear neurological antecedent history or psychiatric disorder
* Moderate pain in any joint of both lower limb (Pain Scale (VAS) ≥ 4/10)
* Unstable medical conditions such as being in the middle of changing medical treatment.
* Condition that may increase the risk of stimulation such as epilepsy, pregnancy, unexplained headaches, intracranial metal, pacemaker (evaluating by subjective examination).
* Participate in the other protocol or receive alternative treatment such as transcranial magnetic stimulation within 1 month.
18 Years
75 Years
ALL
No
Sponsors
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Mahidol University
OTHER
Responsible Party
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Principal Investigators
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Wanalee Klomjai, PhD
Role: STUDY_DIRECTOR
MU
Locations
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Mahidol University
Nakhon Pathom, , Thailand
Countries
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Other Identifiers
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MU-CIRB 2019
Identifier Type: -
Identifier Source: org_study_id
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