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Recruiting NCT07629791

Effects of Augmented Reality (AR) and Transcranial Direct Current Stimulation (tDCS)

No phase Interventional Stroke

For patients and families

In plain language

An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.

What is being studied
The protocol lists: Augmented reality combined with tDCS & Convention therapy, Augmented reality combined with Sham & Convention therapy.
Who it may be relevant to
Registry conditions: Stroke. Basic parameters: 18 years — 90 years · All.
What needs checking
Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
Where it takes place
Pakistan
Next step
Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Official title

Effects of Augmented Reality (AR) and Transcranial Direct Current Stimulation (tDCS) on Balance and Postural Control in Chronic Stroke Survivors

Overview

The aim of this randomized controlled trial is to determine the effects of Augmented Reality (AR)-based balance training on improving balance and postural control in chronic stroke survivors and whether the addition of transcranial Direct Current Stimulation (tDCS) to AR training produces superior outcomes compared to AR training alone.

Detailed description

Stroke remains one of the leading causes of death and long-term disability worldwide, with survivors often experiencing persistent motor and sensory impairments that significantly impact their quality of life. In 2020, it caused about 6.6 million deaths and ranked third for disability-adjusted life-years (DALYs) lost, with the burden rising fastest in low- and middle-income countries. Even after surviving a stroke, many people up to 83% continue to have problems with balance and controlling their posture. These difficulties make daily activities harder, increase the chance of falling, and lower their quality of life.

Balance and postural control are important because they help us stay steady and move safely. After a stroke, these abilities often get damaged because the brain areas that control movement and coordination are affected. People who have had a stroke may walk slower, sway more when standing, and have trouble with tasks like standing up or turning around. Balance impairments manifest as altered body weight distribution patterns, reduced weight-bearing capacity through the affected limb, and diminished postural stability, leading to increased fall risk and decreased participation in activities of daily living. In fact, only a small number of stroke survivors can walk freely without help, and many experiences falls more often than people without stroke. Stroke survivors fall more than twice as often as healthy controls, with balance impairments leading to decreased participation in activities of daily living, fear of falling, and social isolation. Augmented Reality (AR) technology has emerged as a promising intervention for stroke rehabilitation. AR systems provide immersive and interactive virtual environments that can enhance motor rehabilitation through collaborative stimulation of multiple sensory channels, including visual, auditory, and proprioceptive feedback. This multimodal approach facilitates repetitive practice with real-time feedback and encouragement, potentially enhancing rehabilitation effectiveness through increased engagement and motivation. Recent systematic reviews and meta-analyses have demonstrated that AR-based interventions can significantly improve both upper and lower limb function in stroke patients.

Studies have shown that AR training leads to improvements in obstacle avoidance, balance performance, and functional mobility compared to conventional rehabilitation alone. The technology's ability to provide personalized, adaptive training environments allows for customization based on individual patient needs and capabilities, potentially optimizing therapeutic outcomes. The integration of AR with traditional rehabilitation methods has shown particular promise, with combined approaches yielding better functional outcomes than either intervention alone.

Transcranial direct current stimulation (tDCS) represents a non-invasive neuromodulation technique that has gained considerable attention in stroke rehabilitation for its ability to modify cortical excitability and potentially enhance neuroplasticity. By delivering low-intensity electrical current through scalp electrodes, tDCS can modulate neuronal activity in targeted brain regions, with anodal stimulation typically increasing cortical excitability and cathodal stimulation having inhibitory effects. Research has demonstrated that tDCS can improve various aspects of motor function in stroke patients, including balance and postural control. Studies have shown immediate and sustained effects of tDCS on balance parameters, with improvements in weight-bearing distribution, postural stability, and functional mobility measures.

Cerebellar tDCS, in particular, has shown superior effects compared to cerebral stimulation for improving balance and gait function in chronic stroke patients. The mechanisms underlying tDCS effects involve modulation of cortical and spinal neuronal circuits involved in movement control. Meta-analyses have indicated that tDCS can provide significant benefits for balance outcomes in stroke patients, although the quality of evidence remains variable and further research is needed to optimize stimulation parameters and patient selection criteria.

The concept for combining Augmented Reality (AR) and transcranial Direct Current Stimulation (tDCS) in stroke rehabilitation is grounded in the principles of neuroplasticity, which refers to the brain's capacity to reorganize and form new neural connections following injury. AR provides enriched, task-specific sensory environments that facilitate intensive motor practice, while tDCS modulates cortical excitability to enhance synaptic plasticity. Together, these interventions may produce synergistic effects by optimizing neural reorganization and functional recovery. Although both modalities have demonstrated individual efficacy in improving balance and postural control post-stroke, their combined therapeutic potential remains underexplored, highlighting the need for further research to advance multimodal rehabilitation strategies.

Interventions

  • Other Augmented reality combined with tDCS & Convention therapy
    Participants will receive 12 sessions over 4 weeks (3 sessions per week), each lasting 60 minutes. Transcranial Direct Current Stimulation (tDCS) will be applied for 15 minutes immediately before the AR balance training session. Each session will consist of 30 minutes of interactive AR-based balance games with real-time visual and auditory feedback, followed by 15 minutes of conventional therapy targeting balance and mobility. All sessions will be supervised by a physiotherapist, and participant
  • Other Augmented reality combined with Sham & Convention therapy
    The participants in this group will undergo 12 sessions over 4 weeks (3 sessions per week), with each session lasting 60 minutes, consisting of 30 minutes of interactive balance tasks through AR-based games with real-time visual and auditory feedback, 15 minutes of conventional physiotherapy-based balance and mobility training, and 15 minutes of sham stimulation using the tDCS setup without active current flow.

Primary outcome measures

  • Berg Balance Scale (BBS) [Time frame: Baseline-4 Weeks-8 Week-1 Month Follow Up]
  • Timed Up and Go Test (TUG) [Time frame: Baseline-4 Weeks-8 Week-1 Month Follow Up]
  • Postural Assessment Scale for Stroke (PASS) [Time frame: Baseline-4 Weeks-8 Week-1 Month Follow Up]
  • Functional Reach Test [Time frame: Baseline-4 Weeks-8 Week-1 Month Follow Up]
  • Fugl-Meyer Assessment (FMA) (LE) [Time frame: Baseline-4 Weeks-8 Week-1 Month Follow Up]
  • Activities-specific Balance Confidence (ABC) Scale [Time frame: Baseline-4 Weeks-8 Week-1 Month Follow Up]

Eligibility criteria

Inclusion criteria

  • Balance impairment confirmed by Berg Balance Scale (BBS) score 21-44.
  • Age between 18-90 years.
  • Mild or no spasticity in lower limb (MAS ≤ 2)
  • have sufficient cognition to follow the instructions provided by the therapists and the computer.

Exclusion criteria

  • Individuals with implanted electronic devices (e.g., pacemakers), due to interaction risk with tDCS
  • Other medical or psychological conditions affecting participation (e.g., severe pain, epilepsy, pacemaker).
  • Patients with severe cognitive deficits or visual impairments

Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.

Healthy volunteers: No

Study design

Allocation
Randomized
Model
Parallel assignment
Masking
Single blind
Primary purpose
Treatment

Study locations

Pakistan · 1 center
  • Railway General Hospital — Rawalpindi

Identifiers

NCT: NCT07629791 · 02264/ Aaleen Fatima

Primary sources (government registries)

View this study on ClinicalTrials.gov ↗