Max Planck Institute for Human Cognitive and Brain Sciences
Leipzig, Saxony, 04103, Germany
Location status: Recruiting
NCT Number: NCT06116942
The goal of the present clinical trial is to explore whether an innovative technology-based approach can help individuals who have had a stroke and can no longer move their hands with ease. Our approach consists of a combination of two technologies: Transcranial Magnetic Stimulation (TMS) and a Brain-Computer Interface (BCI). The former entails the application of magnetic fields over the head to stimulate the brain preparing it for a better ability to produce movement. The latter consists of measuring brain activity to personalize a type of computer-based training that is designed to increase communication between the brain and the muscles.
Interested in participating?
Request Info20 year–80 year
All sexes
Interventional
Not applicable
Leipzig, Saxony, 04103, Germany
Location status: Recruiting
Aims of the study:
The active stimulation (rTMS) consists of an intermittent theta burst (iTBS) protocol whereas the placebo condition encompasses rTMS stimulation delivered with a Sham coil (Sham).
Procedures:
The study will entail 25 sessions. The study is composed of six different types of sessions in a crossover design:
After a screening session (day 1), the clinical study begins. The period I of the study begins with a before-treatment session (day 2). Then, the intervention (rTMS or sham followed by BCI training) is delivered during 10 daily visits over a 2-week period excluding weekends (days 3 to 12). Within the daily visits, there are 2 daily visits with blood draws (days 3 and 12) and the rest do not include any blood draws (days 4 to 11). Then, an after-treatment session takes place (day 13).
After period I, a washout period of 4 weeks takes place. No measurements or training are required during this time. In Period II of the study, the session flow is repeated except for the screening session. Therefore, period II includes a before-treatment session (day 14), 10 daily visits (days 15 to 24), with 2 daily visits that include blood draws (days 15 and 24), and an after-treatment session (day 25).
Research questions:
Hypotheses:
As an exploratory analysis, the investigators will inspect preliminary evidence of the effects of the stimulation by verifying changes in serological markers of neuronal plasticity and turnover.
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
The Transcranial Magnetic Stimulation will consist of placing a figure-of-eight shape coil of wire over the head of the participants. Then, a brief electric current will pass through the coil, inducing a magnetic field capable of stimulating neurons located beneath the coil. For the active coil, the maximal stimulation intensity is reached beneath the center of the coil.
In the present study, the intermittent theta-burst protocol will be implemented. This protocol is expected to modulate the excitability of the brain, priming it for a stronger activation of the motor-related brain areas engaged during brain-computer interface-based training. The structural MRI of each participant will be used to guide neuronavigation towards ipsilesional motor areas.
Other names: Intermittent Theta Burst Stimulation, Repetitive Transcranial Magnetic Stimulation, iTBS
To implement a placebo stimulation, a sham coil will be used to deliver the same stimulation protocol. The sham coil is identical in dimensions and weight to the active coil but produces a diminished magnetic field. For the sham coil, the stimulation intensity is minimal beneath the center of the coil, the same area with the highest intensity during stimulation with an active coil. The structural MRI scan of each participant will be used to guide neuronavigation towards the same area where the active stimulation was applied.
Other names: Placebo Intermittent Theta Burst Stimulation, Placebo Repetitive Transcranial Magnetic Stimulation, Sham iTBS
Time frame: Measured two times per day, at the days: 3-12 and 15-24. The first measurement is performed immediately before the rTMS-BCI intervention and the second immediately after the rTMS-BCI intervention.
An MEP is the electromyography response to a single TMS pulse delivered over the motor cortex, over the representation of multiple muscles. MEP changes will be evaluated with a mixed effects model. mixed-effects model. The model will consider the Patient, Period, Treatment (stimulation type) and Session number. The Period*Treatment interaction will be verified to detect carry-over effects. The investigators expect to observe a main effect of Treatment and Session number.
Time frame: Measured one time at day, at the days: 2, 13, 14, and 25.
Quantitative evaluation of motor, balance, sensation and joint functions. The sums of values recorded before and after the stimulation periods will be fed into an unpaired sample t-test to evaluate carryover effects whereas the differences observed between recordings before and after the stimulation will be fed into an unpaired sample t-test for the evaluation of initial evidence of the effect of rTMS.
Time frame: Measured one time per day, at the days: 2, 13, 14, and 25.
Electroencephalography (EEG) will be recorded during a cued motor task. This data will be used to calculate event-related de-synchronization, defined as the difference in signal power in the miu (8-12 Hz) and beta bands (13-30 Hz) between a baseline period prior to the cue and a post-cue period. Changes in ERD will be evaluated with permutation-based statistics.
Time frame: Measured one time per day, at days 3-12 and days 15-24.
Ratio of correct trials over the total number of trials, as a proxy of performance during brain-computer interface based training. BCI accuracy will be evaluated with a mixed-effects model. mixed-effects model. The model will consider the Patient, Period, Treatment (stimulation type) and Session number. The Period*Treatment interaction will be verified to detect carry-over effects. The investigators expect to observe a main effect of Treatment and Session number.
Time frame: Measured one time per day, at the days 2, 13, 14, and 25.
fMRI will be acquired during a motor task. The fMRI acquired during the task will be used to evaluate blood-oxygen-level-dependent (BOLD) signal changes after the active stimulation over the motor areas: premotor cortex (PMC), motor cortex (M1), supplementary motor area (SMA), cerebellum and basal ganglia; and this change will be compared with the change after placebo stimulation. In addition, the investigators will explore whether changes in BOLD signal in areas involved in BCI training can be observed after active stimulation, reflecting a potential enhancement of BCI effects. Changes in fMRI will be evaluated with a mixed-effects model in a whole-brain analysis.
Time frame: Measured one time per day, at the days 2, 13, 14, and 25.
Clinical assessment of hand function that consists of 7 tasks: staking checkers, feeding, manipulating and lifting objects, writing, and page-turning. The sums of values recorded before and after the stimulation periods will be fed into an unpaired sample t-test to evaluate carryover effects whereas the differences observed between recordings before and after the stimulation will be fed into an unpaired sample t-test for the evaluation of initial evidence of the effect of rTMS.
Time frame: Measured one time per day, at the days 2, 13, 14, and 25.
Evaluation of fractional anisotropy (FA) as a proxy of white matter changes. Diffusion-weighted images will be used to used to calculate FA. FA reflects the deviation of random diffusion of water molecules in a voxel. Analysis of effects in diffusion will be carried out at the whole brain level and using contrast weights in a flexible factorial design with multiple groups of subjects.
Time frame: Measured one time per day, at the days 2, 13, 14, and 25.
Electroencephalography (EEG) will be recorded during a cued-motor task. The EEG data will be align according to the onset of the cue and averaged across trials at each time point to obtain the movement related cortical potential curves. Peak amplitudes will be compared before and after the 10 sessions of active stimulation and before and after the 10 sessions of placebo stimulation using permutation based statistics.
Time frame: Measured one time per day, at the days 2, 13, 14, and 25.
In addition, the fMRI during rest will be used to analyze the connectivity between motor-related. Changes in connectivity will be explored and measured by calculation of global correlation, local correlation, amplitude low-frequency fluctuations, intrinsic connectivity and fractional amplitude low-frequency fluctuations. In addition, a seed-based analysis will be performed to check for changes in connectivity between the area of stimulation and other motor areas: M1, SMA, cerebellum and basal ganglia.
Time frame: Measured one time per day, at the days 2, 13, 14, and 25.
Voxel-based morphometry is a proxy of gray matter concentration changes based on T1-weighted MRI. This will be evaluated in response to active and placebo stimulation. A flexible factorial design will address potential changes in grey matter after the stimulation. The investigators hypothesize that changes in gray matter will be observed for the stimulated region and functionally connected areas as M1, contralateral PMC, SMA, cerebellum and basal ganglia.
Time frame: Measured twice per day, at the days 3, 12, 15 and 24. The first measure occurs before the intervention and the second measure after the intervention.
Serum BDNF is proposed as a marker of plasticity mechanisms. Previous studies suggest that BDNF can be modulated by multiple-session rTMS protocols. However, no study has explored changes in BDNF after excitatory rTMS protocols in stroke participants. The investigators expect a higher change in BDNF levels after active stimulation in comparison with after placebo.
Time frame: Through study completion, for 25 days.
Number of missed sessions per participant
Time frame: Measured one time per day, at days 2, 13, 14, and 25.
The UE-MAL is a questionnaire that inspects how much and how well the participant uses their paretic arm during activities of daily living. Participants are asked standardized questions about how often they use their more-affected arm for different activities (Amount Scale or AS) and the perceived quality of their movements when executing such tasks (How Well Scale or HW). The evaluations are done on a scale from 0 to 5. 0 represents non-use and 5 is use equal to the non- paretic hand. The scores' explanations are printed on separate sheets of paper and are placed in front of the participant during the test administration. The sums of values recorded before and after the stimulation periods will be fed into an unpaired sample t-test to evaluate carryover effects whereas the differences observed between recordings before and after the stimulation will be fed into an unpaired sample t-test for the evaluation of initial evidence of the effect of rTMS.
Time frame: Through study completion, for 25 days.
The proportion of participants that drop out.
Time frame: Measured once per day, at days 2, 13, 14, and 25.
The last item of the SIS will be used to ask participants to rank of their expected improvement due to the intervention from 0 to 100. This assessment will be used also after stimulation to assess the perceived improvement. The sums of values recorded before and after the stimulation periods will be fed into an unpaired sample t-test to evaluate carryover effects whereas the differences observed between recordings before and after the stimulation will be fed into an unpaired sample t-test for the evaluation of initial evidence of the effect of rTMS.
Time frame: Measured once per day, at days 2, 13, 14, and 25.
Micro-FA is a proxy of white matter integrity that in contrast with FA can resolve ambiguities caused by crossing fibers. Micro-FA values will be obtained by acquiring diffusion-weighted images with a free waveform encoding pulse sequence. The micro-FA will be evaluated in the area of stimulation and areas that show changes in FA, in order to further characterize micro-structural arrangements elicited by the brain stimulation. A second-order cumulative model will be implemented for analysis.
Time frame: Measured twice per day, at the days 3, 12, 15 and 24. The first measure occurs before the intervention and the second measure after the intervention.
GFAP will be explored as it is proposed to change with plasticity due to the transient swelling of astrocytes during structural neuronal plasticity. The investigators expect a higher change in GFAP levels after active stimulation in comparison with after placebo.
Time frame: Measured twice per day, at the days 3, 12, 15 and 24. The first measure occurs before the intervention and the second measure after the intervention.
Neurofilament light chains in blood will be inspected as they have been proposed as a marker of recovery after stroke. The investigators expect a higher change in Neurofilaments levels after active stimulation in comparison with after placebo.
Time frame: Measured twice per day, at the days 3, 12, 15 and 24. The first measure occurs before the intervention and the second measure after the intervention.
Beta-synuclein will be explored because it has been proposed as a marker of synaptic alterations. The investigators expect a higher change in Beta-synuclein levels after active stimulation in comparison with after placebo.
Contact information is provided by the study sponsor or research team.
Aimee Arely Flores Sandoval, MsC
CONTACT
+49 341 9940 ext. 2256
Arno Villringer, MD PhD
CONTACT
+49 341 9940 ext. 2220
Max Planck Institute for Human Cognitive and Brain Sciences
Other
Repetitive Transcranial Magnetic Stimulation for Enhancing Brain Computer Interphase-induced Plasticity in Stroke: a Crossover Design
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