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NCT Number: NCT06911671

EMG Control Assistance Virtual Reality Interface Coupled With Cerebellar-iTBS for Arm Recovery After Stroke (ERICA)

The investigators hypothesize that a myoelectric (EMG) controlled virtual reality (VR) interface allows for effective upper limb motor recovery of stroke patients. EMG control offers the possibility to alter visual feedback according to the recorded muscle activity in real-time. By manipulating the motion of a virtual hand associated with the recorded muscle patterns, assistance can be provided to stroke patients by correcting the error between the actual (dysfunctional) and a reference (functional) muscle pattern. Thus, through such an assistive EMG control algorithm, patients will be able to perform reaching movements with the virtual hand despite their motor impairment. By gradually reducing assistance, it is hypothesized that the salient error in the task space provided as visual feedback will systematically change the muscle patterns, thereby driving adaptation of the dysfunctional muscle patterns, enhancing motor recovery. Moreover, due to its relevant role in motor learning, it is expected that cerebellar stimulation will favor the underlying processes of adapting cerebello-cortical plasticity involved in motor learning. Therefore, it is hypothesized that an assistive EMG control algorithm in combination with cerebellar transcranial magnetic stimulation will further enhance upper limb recovery.

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Key information

Age range

18 year–80 year

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

IRCCS Santa Lucia Foundation

Roma, Rome, 00179, Italy

Location status: Recruiting

Location contact

Alex Martino Cinnera, MSc

SUB_INVESTIGATOR

Andrea D'Avella, Prof.

PRINCIPAL_INVESTIGATOR

Danny Spampinato, PhD

SUB_INVESTIGATOR

Denise Berger, PhD

CONTACT

[email protected]

Giacomo Koch, Prof.

CONTACT

[email protected]

0039 0651501181

About this study

Theta burst stimulation (TBS) is a novel form of repetitive transcranial magnetic stimulation that mimics protocols inducing long-term potentiation (LTP) or long-term depression. Theta burst stimulation (TBS) is a novel form of repetitive transcranial magnetic stimulation that mimics protocols inducing long-term potentiation (LTP) or long-term depression (LTD) in animal models. Whereas continuous TBS induces long-lasting inhibition of cortical areas, iTBS exerts the opposite effect, increasing cerebellar excitability.

Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • First ever ischemic stroke with mild to moderate motor impairment of upper limb;
  • Left or right sub-cortical or cortical lesion of the middle cerebral artery;
  • Age>18, <80 years;
  • No visuospatial, cognitive, or attention deficits;
  • Fugl-Meyer score<56.

Exclusion criteria

  • History of seizures;
  • Treatment with Benzodiazepines, Baclofen;
  • Pregnancy status;
  • Intracranial metal implant;
  • Cardiac pace-maker;
  • Orthopedic upper limb limitation;
  • Upper limb pain;
  • Patients with neurological diseases beyond stroke or with neuropsychiatric disorders or with neuropsychological disorders that could potentially compromise informed consent or compliance during the study.

Treatment and study plan

Virtual Reality Interface + Cerebellar iTBS (c-iTBS)

Device

Subjects will sit in a chair with their forearm inserted in a splint attached to a force transducer. The subjects' view of their hand will be occluded by a mirror displaying the virtual scene. EMGs from arm and shoulder muscles will be recorded by surface EMG electrodes. Subjects will displace a virtual handle according to either the forces recorded by the force transducer or forces estimated from the recorded EMGs (EMG control).

Virtual Reality + Sham Cerebellar iTBS (sham c-iTBS)

Device

c-iTBS will be carried out using Magstim Rapid magnetic biphasic stimulator. Twenty 2-s trains of three-pulse bursts at 50 Hz repeated every 200 ms with an inter-train interval of 10 s, for a total of 190 s will be applied over the contralesional lateral cerebellum. The coil will be positioned tangentially to the scalp for real and 90° angled for sham c-iTBS.

Physical Therapy

Other

Passive mobilization and motor recruitment of impaired upper limb will be performed with the support of a physical therapist specialized in neurological rehabilitation.

Primary outcomes

  1. Change in the Fugl-Meyer Assessment Scale for Upper Extremity (FMA-UE)

    Time frame: baseline: T0, post-treatment (3 weeks): T1, follow-up (6 weeks from T1): T2.

    Comprehensive clinical measurement tool of upper limb functions after stroke. Range score form 0 to 66 points, a higher score represents an improvement.

Secondary outcomes

  1. Change in the Box and Block test (BBT)

    Time frame: baseline: T0, post-treatment (3 weeks): T1, follow-up (6 weeks from T1): T2.

    BBT assesses the patient's manual dexterity. It is composed of a wooden box divided into two compartments by a partition and 150 blocks. The BBT administration consists of asking the client to move, one by one, the maximum number of blocks from one compartment of the box to the other of equal size within 60 seconds. The test is performed with both upper limbs separately to evaluate the manual dexterity of each arm individually.

  2. Change in modified Barthel Index (mBI) score

    Time frame: baseline: T0, post-treatment (3 weeks): T1, follow-up (6 weeks from T1): T2.

    mBI is an ordinal scale that measures functional independence in the domains of personal care and mobility. Score range is from 0 (totally dependent) to 100 (independent).

  3. Change in the Nine Hole Peg Test (NHPT)

    Time frame: baseline: T0, post-treatment (3 weeks): T1, follow-up (6 weeks from T1): T2.

    NHPT assesses the patient's fine manual dexterity and hand-eye coordination. It consists of a small board with nine holes and nine pegs. During the test, the patient is asked to place the pegs into the holes one by one and then remove them as quickly as possible. The total time to complete the task is recorded. The test is performed separately with each upper limb to evaluate the dexterity of both hands individually.

  4. Change in muscle activation patterns (EMG)

    Time frame: baseline: T0, post-treatment (3 weeks): T1, follow-up (6 weeks from T1): T2.

    Task performance in the EMG-control mode will be quantified by the initial angle error and the fraction of unsuccessful trials during the task execution. To combine the initial angle error and the fraction of unsuccessful trials into a single performance index, a linear combination approach will be used. We will compare the initial, baseline performance measure of EMG index of the first session with the performance of the last session.

  5. Change in force-control

    Time frame: baseline: T0, post-treatment (3 weeks): T1, follow-up (6 weeks from T1): T2.

    The change in force-control will be measured using EMG by analyzing the amplitude of the electromyographic signal (EMG) during the task. An increase in EMG amplitude indicates greater muscle activation, which correlates with improved muscle strength. We will compare the initial, baseline measure of force control of the first session with the measure of the last session.

  6. Change in Motor Evoked Potentials' (MEP) Amplitude

    Time frame: baseline: T0, post-treatment (3 weeks): T1, follow-up (6 weeks from T1): T2.

    A single pulse transcranial magnetic stimulation will be applied to the primary motor cortex to produce a recordable motor-evoked potentials in contralateral muscles. The peak-to-peak amplitude of MEPs will be used to represent the cortico-spinal excitability. Both hemispheres will be investigated.

Study contacts

Contact information is provided by the study sponsor or research team.

Giacomo Koch, Prof.

CONTACT

[email protected]

0039 0651501181

Sponsors and collaborators

Lead sponsor

I.R.C.C.S. Fondazione Santa Lucia

Other

Registry information

Official study title

Innovative Upper Limb Stroke Rehabilitation Approach Combining Myoelectric Control Assistance in Virtual Reality and Cerebellar TBS Plasticity Enhancement

Acronym: ERICA

Important dates

Study start
2025
Primary completion
2027
Study completion
2027
First posted
Apr 4, 2025
Registry last updated
Feb 3, 2026

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

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This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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