The purpose of this study is to determine if repeated low-level red-light therapy can slow myopia progression in Chinese schoolchildren.
Low level light therapy (LLLT) is an innovative and non-invasive therapeutic treatment for a variety of eye diseases. Its potential mechanisms of improving choroidal metabolic rate and circulation may improve scleral hypoxia, thus slowing down the progression of myopia. The investigator's preliminary case-series study suggested that repeated low-level red-light therapy was effective in slowing myopia progression without any clinically observable side effects. Using a randomized clinical trial design, the purpose of this study is to determine if repeated low-level red-light therapy can slow myopia progression in Chinese schoolchildren. Study subjects will be randomly assigned to either the treatment group (receive repeated low-level red-light therapy) or the control group (wearing ordinary single vision lenses). Axial length and cycloplegic refraction will be monitored over one year (1st month, 3rd month, 6th month and 12th month), after which changes in axial length and refractive errors in the two groups will be compared. An interim analysis will be performed at the 3rd month, at which the data will be reported and presented. Appropriate adjustment of the p-value and decision on the continuation of the study will be made.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
SINGLE
Enrollment
264
In addition to wearing single vision spectacle lens with power for correcting distance refraction, low-level red-light therapy is performed twice per school day at home with an interval of at least 4 hours, each treatment lasting 3 minutes.
The Second People's Hospital of Foshan
Foshan, Guangdong, China
Zhongshan Ophthalmic Center, Sun Yat-sen University
Guangzhou, Guangdong, China
Shenzhen Children's Hospital
Shenzhen, Guangdong, China
Xiangya Hospital, Central South University
Changsha, Hunan, China
Axial length change (mm)
Axial length change (mm) is characterized as the difference between each follow-up visit and baseline values. The IOLMaster is used to measure axial length (mm).
Time frame: 1 month, 3 months, 6 months and 1 year
Cycloplegic spherical equivalent change (Diopter)
Cycloplegic spherical equivalent change (Diopter, D) is characterized as the difference between each follow-up visit and baseline values. Cycloplegia is induced with one drop of Alcaine 0.5% followed by two drops of 1% cyclopentolate administered at 0, 5th to each eye. The third drop of cyclopentolate is used if the light reflex exists after 20 minute. The light reflex and pupil dilation is checked after an additional 15 minutes. Dilation and light reflex status is recorded and full cycloplegia is justified if the pupil dilates to 6 millimeters or greater and the light reflex is absent. Refraction is performed with an auto-refractor. The data on spherical and cylindrical power and axis is automatically extracted from the auto-refractor. The spherical equivalent power (D) is calculated as the spherical power (D) plus half of the cylindrical power (D).
Time frame: 1 month, 3 months, 6 months and 1 year
Corneal curvature change (mm)
Corneal curvature (mm) is characterized as the difference between each follow-up visit and baseline values. The IOLMaster is used to measure corneal curvature (mm).
Time frame: 1 month, 3 months, 6 months and 1 year
Anterior chamber depth change (mm)
Anterior chamber depth (mm) is characterized as the difference between each follow-up visit and baseline values. The IOLMaster is used to measure anterior chamber depth (mm).
Time frame: 1 month, 3 months, 6 months and 1 year
White to white change (mm)
White to white (mm) is characterized as the difference between each follow-up visit and baseline values. The IOLMaster is used to measure white to white (mm).
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Time frame: 1 month, 3 months, 6 months and 1 year
Visual acuity change
Visual acuity change is characterized as the difference between each follow-up visit and baseline values. An ETDRS chart (Precision vision, Villa Park, Illinois, USA) with standard illumination is used to measure distance visual acuity. Visual acuity measurement is performed at a distance of 4 meters. Uncorrected visual acuity is measured for all children.
Time frame: 1 month, 3 months, 6 months and 1 year
Incidence of treatment-emergent adverse events
Incidence of treatment-emergent adverse events is the rate of treatment-emergent adverse events over a specified period for subjects in the intervention arm. Subjects are asked to report any treatment-emergent adverse events, including but not limited to glare, flash blindness, and afterimages.
Time frame: 1 month
Incidence of treatment-emergent adverse events
Incidence of treatment-emergent adverse events is the rate of treatment-emergent adverse events over a specified period for subjects in the intervention arm. Subjects are asked to report any treatment-emergent adverse events, including but not limited to glare, flash blindness, and afterimages.
Time frame: 3 months
Incidence of treatment-emergent adverse events
Incidence of treatment-emergent adverse events is the rate of treatment-emergent adverse events over a specified period for subjects in the intervention arm. Subjects are asked to report any treatment-emergent adverse events, including but not limited to glare, flash blindness, and afterimages.
Time frame: 6 months
Incidence of treatment-emergent adverse events
Incidence of treatment-emergent adverse events is the rate of treatment-emergent adverse events over a specified period for subjects in the intervention arm. Subjects are asked to report any treatment-emergent adverse events, including but not limited to glare, flash blindness, and afterimages.
Time frame: 1 year