University of Lahore Hospital
Lahore, Punjab Province, 54000, Pakistan
Location contact
Dr Ishaq Ahmad, PhD
CONTACT
Dr Sajid Mehmood, MS (OMPT)
PRINCIPAL_INVESTIGATOR
umair ahmed, PhD
CONTACT
NCT Number: NCT07714720
Carpal Tunnel Syndrome (CTS) is the most common peripheral entrapment neuropathy, causing pain, paresthesia, and hand dysfunction due to median nerve compression at the wrist. While physiotherapy provides symptom relief, it does not effectively address the underlying neuroplastic deficits of the median nerve. Photobiomodulation (PBM), delivered at 830 nm near-infrared wavelength, has shown potential to enhance peripheral nerve regeneration via cytochrome c oxidase activation, ATP synthesis, and upregulation of neurotrophic factors including brain-derived neurotrophic factor (BDNF). This randomized controlled trial will evaluate whether 830 nm PBM (200 mW, 4 J/cm², 12 sessions over 4 weeks) combined with routine physiotherapy produces significantly greater neuroplastic recovery of the median nerve - assessed by high-resolution ultrasound (HRUS) measurement of median nerve cross-sectional area (CSA), nerve conduction study parameters and serum BDNF - compared to sham PBM combined with identical physiotherapy in adults with mild-to-moderate CTS. Neuroplasticity was operationalised as a multimodal construct comprising: (1) functional recovery, indexed by nerve conduction study parameters; (2) structural remodelling, indexed by median nerve cross-sectional area on high-resolution ultrasound; and (3) molecular neuroplastic signalling, indexed by serum BDNF. This multimodal approach was adopted because no single measure captures the full construct of peripheral nerve neuroplasticity (Padua et al., 2020).
Trial opening soon.
Get Notified18 year–60 year
All sexes
Interventional
Not applicable
Lahore, Punjab Province, 54000, Pakistan
Dr Ishaq Ahmad, PhD
CONTACT
Dr Sajid Mehmood, MS (OMPT)
PRINCIPAL_INVESTIGATOR
umair ahmed, PhD
CONTACT
Carpal tunnel syndrome is a compressive neuropathy of the median nerve associated with focal demyelination, impaired axonal transport, intraneural oedema, pain, sensory disturbance and functional limitation. Although conservative treatments can reduce symptoms, the physiological and structural processes accompanying median nerve recovery remain insufficiently characterized.
Photobiomodulation delivers non-thermal red or near-infrared light to biological tissue. Its proposed effects include modulation of mitochondrial activity, cellular energy production, oxidative signalling and inflammatory responses. Experimental evidence also suggests potential effects on Schwann-cell activity, axonal repair and neurotrophic signalling. However, clinical studies of photobiomodulation for carpal tunnel syndrome have generally been limited by small samples, heterogeneous treatment parameters and reliance on symptomatic outcomes without integrated assessment of nerve physiology, morphology and molecular responses.
This study will investigate whether adjunctive 830-nm photobiomodulation produces greater median nerve recovery than sham photobiomodulation when both groups receive the same routine physiotherapy. The primary hypothesis is that active photobiomodulation will produce greater improvement in median nerve sensory conduction velocity at the end of the four-week intervention. Follow-up assessment will examine whether any observed effect is maintained after treatment completion.
Electrophysiological testing will characterize changes in median nerve function, while high-resolution ultrasonography will assess structural changes in the nerve. Serum brain-derived neurotrophic factor will be evaluated as an exploratory circulating biomarker and will not be interpreted as a specific standalone measure of median nerve neuroplasticity. Patient-reported symptoms, functional status, pain and hand strength will be assessed to determine the clinical relevance of any physiological or structural changes.
By integrating electrophysiological, ultrasonographic, clinical and exploratory molecular measurements, the study aims to clarify whether the symptomatic effects of photobiomodulation are accompanied by objective evidence of median nerve recovery. The findings may help refine outcome selection and treatment parameters for future confirmatory trials.
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Photobiomodulation (PBM) delivered using a 46-diode cluster probe at 830 nm wavelength, 200 mW optical output power, continuous wave mode, 4 J/cm² energy density, applied in static contact technique over the carpal tunnel (volar wrist surface, 3-5 cm proximal to distal wrist crease). Application time per session: approximately 200 seconds (~3.3 minutes). Treatment schedule: 3 sessions per week for 4 consecutive weeks (12 sessions total). Sham device output confirmed <1 mW by calibrated photodiode power meter.
Other names: Low-Level Laser Therapy, LLLT, Low-Level Light Therapy, PBMT
Deactivated PBM device identical in external appearance to the active device. Applied using the same 46-diode cluster probe, contact technique, and duration (approximately 200 seconds) as the active arm. Output power confirmed <1 mW by calibrated photodiode power meter (LaserCheck or equivalent) at baseline, session 6, and session 12 for the first five enrolled participants. No therapeutic light emission occurs.
Participants will receive an 4-week routine physiotherapy programme comprising median nerve mobilization, night splinting, and tendon-gliding exercises. Median nerve mobilization will use six sequential positions progressing from wrist-neutral finger/thumb flexion to finger, wrist, and thumb extension, forearm supination, and assisted thumb stretching. Each position will be held for 5 seconds; the sequence will be repeated 10 times, three times daily. A neutral volar wrist splint allowing free finger and thumb movement will be worn nightly for 6-8 hours. Tendon-gliding exercises will include straight hand, hook fist, full fist, tabletop, and straight fist positions. Each position will be held for 5 seconds, with 10 repetitions performed three times daily. A physiotherapist will teach and monitor the programme. Participants will receive illustrated instructions and maintain an adherence diary. Exercises will be modified or stopped if symptoms worsen.
Other names: Multimodal Physiotherapy Programme, Conventional Physiotherapy, Standard Conservative Physiotherapy
Time frame: Baseline, Week 4 and week 8
Median nerve sensory conduction velocity will be measured in metres per second (m/s) using a standardized nerve conduction study performed by a blinded neurophysiologist. Electrode placement, stimulation distance, equipment settings and skin temperature will be standardized across assessments. Change will be calculated as the Week 4 and 8 value minus the baseline value. A positive change indicates improvement in sensory conduction velocity.
Time frame: Baseline, Week 4 and Week 8
Median nerve distal motor latency will be measured in milliseconds (ms) using a standardized nerve conduction study, with stimulation at the wrist and recording from the abductor pollicis brevis muscle. The same stimulation distance, electrode placement, equipment settings and skin-temperature controls will be used at each assessment. Change will be calculated as the follow-up value minus the baseline value. A negative change indicates reduced latency and improved motor conduction.
Time frame: Baseline, Week 4 and Week 8
Median nerve sensory nerve action potential amplitude will be measured in microvolts (µV) using a standardized nerve conduction study performed by a blinded neurophysiologist. The same recording technique and equipment settings will be used at each assessment. Change will be calculated as the follow-up value minus the baseline value. A positive change indicates an increase in sensory response amplitude.
Time frame: Baseline, Week 4 and Week 8
The cross-sectional area of the median nerve will be measured in square millimetres (mm²) using high-resolution ultrasonography at the carpal tunnel inlet at the level of the pisiform. The nerve will be traced within the hyperechoic epineurial border. Three measurements will be obtained and averaged at each assessment. The same anatomical level, participant position, ultrasound settings and blinded assessor will be used throughout the study. Change will be calculated as the follow-up value minus the baseline value. A negative change indicates a reduction in median nerve enlargement.
Time frame: Baseline, Week 4 and Week 8
Symptom severity will be assessed using the 11-item Symptom Severity Scale of the Boston Carpal Tunnel Questionnaire. Each item is scored from 1 to 5, and the subscale score is calculated as the mean of the completed items. Total subscale scores range from 1 to 5, with higher scores indicating more severe symptoms. Change will be calculated as the follow-up score minus the baseline score. A negative change indicates improvement
Time frame: Baseline, Week 4 and Week 8
Functional status will be assessed using the 8-item Functional Status Scale of the Boston Carpal Tunnel Questionnaire. Each item is scored from 1 to 5, and the subscale score is calculated as the mean of the completed items. Total subscale scores range from 1 to 5, with higher scores indicating greater functional limitation. Change will be calculated as the follow-up score minus the baseline score. A negative change indicates improvement.
Time frame: Baseline, Week 4 and Week 8
Pain intensity will be measured using a 100-mm horizontal Visual Analogue Scale, ranging from 0 mm, representing no pain, to 100 mm, representing the worst imaginable pain. Change will be calculated as the follow-up score minus the baseline score. A negative change indicates reduced pain intensity.
Time frame: Baseline, Week 4 and Week 8
Handgrip strength of the affected hand will be measured in kilograms (kg) using a Jamar hydraulic hand dynamometer and standardized positioning. Three trials will be performed with a standardized rest period between trials, and the mean of the three measurements will be used for analysis. Change will be calculated as the follow-up value minus the baseline value. A positive change indicates improved grip strength.
Time frame: From the first intervention session through Week 8
Treatment-emergent adverse events will be recorded from the first intervention session through the final follow-up assessment. Events will include, but will not be limited to, increased wrist or hand pain, skin irritation, erythema, burning sensation, altered sensation, headache or any other unfavorable medical occurrence. The number and percentage of participants experiencing one or more adverse events will be reported for each intervention group.
Time frame: Baseline, Week 4 and Week 8
Serum brain-derived neurotrophic factor concentration will be measured in picograms per millilitre (pg/mL) using a standardized enzyme-linked immunosorbent assay. Blood collection time, clotting duration, centrifugation, storage temperature, freeze-thaw exposure and assay procedures will be standardized across assessments. Samples from both intervention groups will be analysed in the same assay batches where feasible. Change will be calculated as the follow-up concentration minus the baseline concentration. This outcome will be interpreted as an exploratory circulating biomarker and not as a specific standalone measure of median nerve neuroplasticity.
Contact information is provided by the study sponsor or research team.
Dr Ashfaq Ahmad, PhD
CONTACT
Sajid Mehmood, MS (OMPT)
CONTACT
University of Lahore
Other
Therapeutic Effects of Photobiomodulation (Low Level Laser Therapy) on Median Nerve Neuroplasticity in Patients With Carpal Tunnel Syndrome
Acronym: PBM-CTS-RCT
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