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Single-session tDCS in Cerebral Palsy

Effects of Single-session Transcranial Direct Current Stimulation in Children With Cerebral Palsy

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT03635775
Enrollment
20
Registered
2018-08-17
Start date
2018-05-01
Completion date
2020-02-21
Last updated
2021-04-13

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Cerebral Palsy, Perinatal Stroke, Periventricular Leukomalacia

Keywords

non-invasive brain stimulation, rehabilitation, pediatrics

Brief summary

The goal of this study is to characterize individual responses to a single application of transcranial direct current stimulation (tDCS) in children with unilateral cerebral palsy (UCP), and to test which electrode configuration produces changes in brain excitability and motor function. Participants with UCP, ages 7-21 years, will be assigned to one of four tDCS groups. Using single-pulse transcranial magnetic stimulation, the investigators will assess cortical excitability before and at regular intervals up to 1 hour following tDCS. The knowledge gained from this study will advance the field through more targeted approaches of neuromodulatory techniques in this population and others, using individual characteristics to guide optimal treatment

Detailed description

Hemiparesis, or weakness on one side of the body, is common following stroke early in life. The broader clinical diagnosis for this type of childhood movement impairment is unilateral cerebral palsy (UCP). Cerebral palsy effects about 3 out of every 1000 live births in the Unites States, and produces lifelong motor, sensory, and cognitive disability. Neurorehabilitation has primarily focused on intensive motor training to encourage use of the affected extremities in an effort to produce use-dependent neuroplasticity in the brain. Such interventions are effective, but require a burdensome amount of time, 60-90 hours per week, for both the child and therapist. Furthermore, some children do not respond at all to such training. Neuromodulation is a relatively new field that aims to influence the brain's neuronal activity through direct application of magnetic (TMS) or electric (tDCS) energy. It is thought the combination of neuromodulation and motor training may reduce the dosage of training needed, and would promote recovery to a greater extent for more individuals. Indeed, previous work in adult stroke demonstrate a benefit of combining repetitive TMS (rTMS) and tDCS with motor training, compared to training alone. These types of synergistic interventions are just beginning to be used in children with UCP, with some preliminary data showing potential benefit. One of the many questions surrounding neuromodulatory interventions like tDCS is how to reliably predict changes in neuronal activity. The currently hypothesized effects of tDCS are polarity-specific: anodal tDCS depolarizes membranes resulting in increased in neuronal excitability; cathodal tDCS hyperpolarizes tDCS resulting in decreased neuronal excitability. Furthermore, these effects scale with the intensity of stimulation: the larger the direct current delivered, the greater the change in excitability. This framework has been used to guide almost all studies using tDCS to produce a change in brain function and resulting behavior. More recently, the field is beginning to appreciate that this framework may be overly simplistic. For example, when a cognitive task is performed concurrently with tDCS, there are reported non-linear effects related to current intensity and direction of change in excitability. Such work has a significant impact on the use of tDCS in rehabilitation, which advocates for the pairing of stimulation with on-going activity. One common approach to using tDCS in individuals with stroke is to target the non-lesioned hemisphere. Following stroke, there is an imbalance of communication between brain hemispheres. This communication, known as interhemispheric inhibition (IHI), is a normal control process whereby the activated motor cortex sends an inhibitory command to the opposite motor cortex to momentarily interrupt its activity, allowing for the execution of controlled unilateral movements. IHI is exaggerated in the non-lesioned hemisphere after stroke, resulting in increased inhibition on the lesioned hemisphere. Applying inhibitory current to the non-lesioned hemisphere may disinhibit this side and allow for recovery in the lesioned hemisphere. IHI is mediated through fibers passing through the corpus callosum and can be examined non-invasively using TMS. First and foremost, IHI has been shown to exist in children and young adults, indicating that this mechanism is not exclusively a feature of the developed adult nervous system. The effect of NIBS to modulated IHI has been demonstrated in adults with stroke, but less clearly in children. One reason for this is a lack of data characterizing IHI in children after perinatal brain injury. It is feasible, through ongoing adaptive and maladaptive neuroplasticity, that IHI is weakly present (or not at all) in these children as compared to adults. As studies continue to focus on NIBS interventions targeting the non-lesioned hemisphere, a more comprehensive understanding of the motor control mechanisms present in children with UCP is needed to guide these interventions. Therefore, one objective of this study is to characterize IHI of both brain hemispheres in children with UCP. At the moment, it is unclear what the acute effects of a single session tDCS are, when paired with motor training, on brain excitability or motor performance in children with and without UCP. This leads this investigative team to design the proposed study, which will offer insight into the mechanisms of tDCS and lead the field toward a better understanding of how tDCS be implemented in a neurorehabilitation setting for both children and potentially adults. Purpose: To characterize motor cortex neurophysiology and to understand how one form of non-invasive brain stimulation (NIBS) called transcranial direct current stimulation (tDCS) changes brain excitability and behavior in children diagnosed with cerebral palsy, as compared to children with typical development (CTD). Aim 1: Using transcranial magnetic stimulation (TMS), characterize brain excitability, specifically interhemispheric inhibition, in children with CP and CTD. Aim 2: Evaluate the immediate effect of tDCS on brain excitability and motor performance in children with UCP and CTD. Aim 3: Compare the responses to tDCS in each with individual estimated electric field intensity from computational modeling. Procedures: This is a randomized, sham-controlled, double-blinded study. The intervention consists of a single, 20 minute session of tDCS paired with motor training (see Figure 2). Participants will be randomized to either real or sham tDCS. The participants and the members of the research team involved in assessments and testing will be blinded to intervention group (real or sham tDCS), but the other research staff/PI/Co-Is will be unblinded. The investigators will complete TMS assessments of cortical excitability at Pre-test, as well as an MRI of the brain. Behavioral assessments of hand function and performance will also be included. The intervention will last a total of 30 minutes, including preparatory time. Participants will be randomly assigned to receive real or sham tDCS. Children with presence of a lesioned hemisphere motor evoked potential (MEP) response may receive 1) ipsilesional anodal; 2) contralesional cathodal tDCS or 3) sham tDCS. Children without a lesioned hemisphere MEP may receive 1) contralesional anodal or 2) sham tDCS. Participants and their families will be blinded to group assignment. Participants will be unblinded after completing the study. Immediately following the intervention, TMS and Behavioral assessments will be performed at 0, 15, 30, and 60 minutes following the intervention. Study Duration: Each participant will complete the study in either one day (MRI and intervention, four hours total) or on two separate days (one hour MRI, and three hours intervention). If done on two days, the MRI and intervention will be separated by no longer than a two week (14 day) period.

Interventions

DEVICEActive tDCS

Low-level (1.5 milliampere) current delivered to the scalp using saline-soaked sponges.

DEVICESham tDCS

Sham-setting--no electrical current delivered.

Sponsors

Eunice Kennedy Shriver National Institute of Child Health and Human Development (NICHD)
CollaboratorNIH
University of Minnesota
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
BASIC_SCIENCE
Masking
DOUBLE (Subject, Outcomes Assessor)

Masking description

Participants and families will be masked to intervention group. The research team members performing assessments will be masked to intervention group.

Eligibility

Sex/Gender
ALL
Age
7 Years to 21 Years
Healthy volunteers
Yes

Inclusion criteria

(for all participants): * Ages 7-21 * Able to follow two-step commands. * Presence of an MEP in the non-lesioned hemisphere

Exclusion criteria

(for all participants): * Evidence of seizure within 2 years * Other neurological or metabolic conditions * Is pregnant (females only) * Presence of indwelling metal in the head (e.g. aneurysm clip) or medical device. Inclusion Criteria (for participants with cerebral palsy): * Clinical diagnosis of unilateral cerebral palsy * Radiological evidence of stroke or periventricular leukomalacia

Design outcomes

Primary

MeasureTime frameDescription
Change in Motor Evoked Potential Amplitudeapproximately 5 minutesMotor evoked potential is a measure of cortical excitability using transcranial magnetic stimulation. MEP is measured as the amplitude of electrical activity from finger muscles. Outcome is reported as the percent change in MEP amplitude from pre-intervention to immediately post-intervention.

Secondary

MeasureTime frameDescription
Change in Movement AccuracyApproximately 1 hoursFinger tracking was measured using an instrumented goniometer that recorded finger position, which was then used to control a cursor on a laptop computer. The outcome is reported as the percent change in accuracy from pre-intervention to 60 minutes post-intervention.

Countries

United States

Participant flow

Participants by arm

ArmCount
Anodal Ipsilesional Active tDCS
Anodal tDCS (excitatory) applied to the lesioned hemisphere. Participant must have lesioned hemisphere MEP. Active tDCS: Low-level (1.5 milliampere) current delivered to the scalp using saline-soaked sponges.
5
Cathodal Contralesional Active tDCS
Cathodal tDCS (inhibitory) applied to the non-lesioned hemisphere. Participant must have lesioned hemisphere MEP. Active tDCS: Low-level (1.5 milliampere) current delivered to the scalp using saline-soaked sponges.
0
Anodal Contralesional Active tDCS
Anodal tDCS (excitatory) applied to the non-lesioned hemisphere. Participant must not have lesioned hemisphere MEP. Active tDCS: Low-level (1.5 milliampere) current delivered to the scalp using saline-soaked sponges.
5
Sham tDCS
Sham tDCS applied in one of the above configurations Sham tDCS: Sham-setting--no electrical current delivered.
9
Total19

Withdrawals & dropouts

PeriodReasonFG000FG001FG002FG003
Overall StudyDid not meet final inclusion criteria based on initial evaluation0001

Baseline characteristics

CharacteristicAnodal Ipsilesional Active tDCSCathodal Contralesional Active tDCSAnodal Contralesional Active tDCSSham tDCSTotal
Age, Categorical
<=18 years
5 Participants0 Participants3 Participants9 Participants17 Participants
Age, Categorical
>=65 years
0 Participants0 Participants0 Participants0 Participants0 Participants
Age, Categorical
Between 18 and 65 years
0 Participants0 Participants2 Participants0 Participants2 Participants
Race (NIH/OMB)
American Indian or Alaska Native
0 Participants0 Participants0 Participants0 Participants0 Participants
Race (NIH/OMB)
Asian
0 Participants0 Participants0 Participants1 Participants1 Participants
Race (NIH/OMB)
Black or African American
0 Participants0 Participants0 Participants0 Participants0 Participants
Race (NIH/OMB)
More than one race
0 Participants0 Participants1 Participants0 Participants1 Participants
Race (NIH/OMB)
Native Hawaiian or Other Pacific Islander
0 Participants0 Participants0 Participants0 Participants0 Participants
Race (NIH/OMB)
Unknown or Not Reported
0 Participants0 Participants0 Participants0 Participants0 Participants
Race (NIH/OMB)
White
5 Participants0 Participants4 Participants8 Participants17 Participants
Region of Enrollment
United States
5 participants5 participants9 participants19 participants
Sex: Female, Male
Female
3 Participants0 Participants1 Participants6 Participants10 Participants
Sex: Female, Male
Male
2 Participants0 Participants4 Participants3 Participants9 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
EG002
affected / at risk
EG003
affected / at risk
deaths
Total, all-cause mortality
0 / 50 / 00 / 50 / 9
other
Total, other adverse events
4 / 50 / 05 / 53 / 9
serious
Total, serious adverse events
0 / 50 / 00 / 50 / 9

Outcome results

Primary

Change in Motor Evoked Potential Amplitude

Motor evoked potential is a measure of cortical excitability using transcranial magnetic stimulation. MEP is measured as the amplitude of electrical activity from finger muscles. Outcome is reported as the percent change in MEP amplitude from pre-intervention to immediately post-intervention.

Time frame: approximately 5 minutes

Population: All participants for whom interventional data was collected are included in outcome measure analysis.

ArmMeasureValue (MEAN)
Anodal Ipsilesional Active tDCSChange in Motor Evoked Potential Amplitude12.4 percent change
Anodal Contralesional Active tDCSChange in Motor Evoked Potential Amplitude81.7 percent change
Sham tDCSChange in Motor Evoked Potential Amplitude-34.4 percent change
Secondary

Change in Movement Accuracy

Finger tracking was measured using an instrumented goniometer that recorded finger position, which was then used to control a cursor on a laptop computer. The outcome is reported as the percent change in accuracy from pre-intervention to 60 minutes post-intervention.

Time frame: Approximately 1 hours

Population: All participants for whom interventional data was collected are included in outcome measure analysis.

ArmMeasureValue (MEAN)
Anodal Ipsilesional Active tDCSChange in Movement Accuracy-5.67 percent change
Anodal Contralesional Active tDCSChange in Movement Accuracy-40 percent change
Sham tDCSChange in Movement Accuracy-28.2 percent change

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026