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Micropulse and continuous wave diode retinal photocoagulation: visible and subvisible lesion parameters
T J Desmettre1, S R Mordon, D M Buzawa
1INSERM, IFR 114, Pavillon Vancostenobel, CHU, 59037 Lille Cedex, France. desmettre@lille.inserm.fr
The British Journal of Ophthalmology
|March 15, 2006
Summary
Subvisible micropulse diode laser photocoagulation requires higher power but similar energy to continuous wave lesions. This offers a significantly greater safety margin, crucial for retinal laser treatments.
Area of Science:
- Ophthalmology
- Biomedical Engineering
- Laser Medicine
Background:
- Subvisible micropulse diode laser photocoagulation limits heat conduction for precise retinal damage localization.
- Treatment power is often based on continuous wave lesion thresholds.
- Understanding power requirements for visible micropulse vs. continuous wave lesions is key.
Purpose of the Study:
- To measure and compare the clinical laser powers needed for visible endpoint micropulse and continuous wave diode laser retinal photocoagulation.
- To evaluate the safety margins of these laser modalities in retinal treatments.
Main Methods:
- Diode laser (810 nm) burns were created in the peripheral retina of diabetic retinopathy patients.
- Minimal powers for visible continuous wave and micropulse lesions were determined.
- Fluorescein angiography and fundus photography assessed lesion appearance; MPE levels were calculated.
Main Results:
- Visible micropulse lesions required 1800 mW (54 mJ), while continuous wave lesions needed 300 mW (60 mJ).
- Lesions exceeded maximal permissible exposure (MPE) levels by 133x (micropulse) and 36x (continuous wave).
- Laser energies were comparable between continuous wave and micropulse visible lesions.
Conclusions:
- Visible micropulse lesions necessitate 6x more power but similar energy compared to continuous wave lesions.
- No significant difference in minimal power for angiographically apparent micropulse lesions was found.
- The safety margin was 3.7x greater for micropulse diode laser photocoagulation than for continuous wave.

