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Published on: June 13, 2013
Evaluation of Photobiomodulation and Boldine as Alternative Treatment Options in Two Diabetic Retinopathy Models
Víctor Calbiague García1,2, Bárbara Cadiz2, Pablo Herrera3
1Ph. D. Program in Neuroscience, Facultad de Ciencias, Universidad de Valparaíso, Valparaíso 2360102, Chile.
Abstract:
Diabetic retinopathy causes progressive and irreversible damage to the retina through activation of inflammatory processes, overproduction of oxidative species, and glial reactivity, leading to changes in neuronal function and finally ischemia, edema, and hemorrhages. Current treatments are invasive and mostly applied at advanced stages, stressing the need for alternatives. To this end, we tested two unconventional and potentially complementary non-invasive treatment options: Photobiomodulation, the stimulation with near-infrared light, has shown promising results in ameliorating retinal pathologies and insults in several studies but remains controversial. Boldine, on the other hand, is a potent natural antioxidant and potentially useful to prevent free radical-induced oxidative stress. To establish a baseline, we first evaluated the effects of diabetic conditions on the retina with immunofluorescence, histological, and ultrastructural analysis in two diabetes model systems, obese LepRdb/db mice and organotypic retinal explants, and then tested the potential benefits of photobiomodulation and boldine treatment in vitro on retinal explants subjected to high glucose concentrations, mimicking diabetic conditions. Our results suggest that the principal subcellular structures affected by these conditions were mitochondria in the inner segment of photoreceptors, which displayed morphological changes in both model systems. In retinal explants, lactate metabolism, assayed as an indicator of mitochondrial function, was altered, and decreased photoreceptor viability was observed, presumably as a consequence of increased oxidative-nitrosative stress. The latter was reduced by boldine treatment in vitro, while photobiomodulation improved mitochondrial metabolism but was insufficient to prevent retinal structural damage caused by high glucose. These results warrant further research into alternative and complementary treatment options for diabetic retinopathy.
Insights
Diabetic retinopathy damages the retina; novel treatments like photobiomodulation and boldine show potential. Boldine reduced oxidative stress, while photobiomodulation improved mitochondrial function in retinal explants.
Area of Science:
- Ophthalmology
- Diabetology
- Cell Biology
Background:
- Diabetic retinopathy causes irreversible retinal damage via inflammation and oxidative stress.
- Current treatments are invasive and applied late, necessitating alternative approaches.
- Non-invasive therapies like photobiomodulation and boldine offer potential therapeutic avenues.
Purpose of the Study:
- To evaluate the effects of diabetic conditions on retinal structure and function.
- To investigate the therapeutic potential of photobiomodulation and boldine in diabetic retinopathy models.
- To establish a baseline for future research into novel diabetic retinopathy treatments.
Main Methods:
- Utilized LepRdb/db mice and organotypic retinal explants to model diabetic conditions.
- Assessed retinal damage using immunofluorescence, histology, and ultrastructural analysis.
- Tested photobiomodulation and boldine in vitro on retinal explants under high glucose conditions.
Main Results:
- Diabetic conditions induced mitochondrial morphological changes in photoreceptors.
- High glucose impaired lactate metabolism and photoreceptor viability, indicating oxidative stress.
- Boldine treatment reduced oxidative-nitrosative stress in vitro.
- Photobiomodulation enhanced mitochondrial metabolism but did not prevent structural damage.
Conclusions:
- Mitochondrial dysfunction and oxidative stress are key factors in diabetic retinopathy.
- Boldine demonstrates potential in mitigating oxidative stress in the retina.
- Photobiomodulation shows promise for mitochondrial health but requires further investigation for structural protection.
- Further research is warranted for developing alternative and complementary treatments for diabetic retinopathy.

