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Published on: November 29, 2015
Protein kinase C expression in the rabbit retina after laser photocoagulation
Fredrik Ghosh1, Karin Gjörloff
1Department of Ophthalmology, Lund University Hospital, 22185 Lund, Sweden. fredrik.ghosh@oft.lu.se
Background:
Laser photocoagulation is a well-established treatment for diabetic retinopathy but the mechanism behind its effectiveness has not been elucidated. The protein kinase C (PKC) family is a group of enzymes which has been the subject of extensive interest in clinically related research since the advent of its role in the pathogenesis of diabetic retinopathy. With this study we wanted to explore whether PKC expression is altered in the retina after laser photocoagulation.
Methods:
Normal rabbit eyes were treated with laser photocoagulation of varying intensity and examined after 30 min to 7 weeks. Treated and untreated regions of the retina were investigated histologically with the MC5 monoclonal antibody against PKC. Labeling for glial fibrillary acidic protein (GFAP), as well as hematoxylin and eosin (H&E) staining was also performed to assess the laser-induced trauma.
Results:
In the normal retina, the MC5 antibody labeled rod bipolar cells and photoreceptor outer segments corresponding to PKC alpha. A translocated PKC expression with labeling concentrated in the rod bipolar terminals was seen in specimens examined 30 min after laser treatment, and after 1 week, no expression was seen in any part of the retina. After 2 weeks, PKC expression again indicated a translocated labeling pattern. After 5 weeks, labeling was found only in rod bipolar terminals in the peripheral retina. When comparing high- and low-intensity laser treatment 7 weeks postoperatively, no labeling was found in the high intensity-treated retinas, whereas low intensity-treated eyes displayed a near-normal labeling pattern. H&E staining revealed focal neuroretinal edema immediately after laser treatment, also in untreated areas. At later stages, destruction of the outer nuclear layer and migration of pigment epithelial cells in laser-lesioned areas was seen. GFAP-labeled Müller cells were seen 1 week postoperatively in the entire retina. Labeling after this time decreased, but was still present in laser spots after 5 and 7 weeks.
Conclusions:
Laser photocoagulation alters the expression of PKC in the entire normal rabbit retina. The response follows a temporal pattern and is also related to laser intensity. These findings may help to explain the high efficacy of laser treatment in diabetic retinopathy.
Insights
Laser photocoagulation alters protein kinase C (PKC) expression in rabbit retinas, with changes dependent on time and laser intensity. These findings may explain the effectiveness of this treatment for diabetic retinopathy.
Area of Science:
- Ophthalmology
- Molecular Biology
- Biochemistry
Background:
- Diabetic retinopathy treatment often involves laser photocoagulation, but its mechanism remains unclear.
- Protein kinase C (PKC) is implicated in diabetic retinopathy pathogenesis.
- This study investigates PKC expression changes in the retina post-laser photocoagulation.
Purpose of the Study:
- To determine if laser photocoagulation alters retinal protein kinase C (PKC) expression.
- To characterize the temporal and intensity-dependent changes in PKC expression after laser treatment.
Main Methods:
- Normal rabbit eyes underwent laser photocoagulation with varying intensities.
- Retinal tissues were analyzed histologically using MC5 antibody for PKC, GFAP, and H&E staining at different time points (30 min to 7 weeks).
Main Results:
- PKC expression translocated to rod bipolar terminals within 30 minutes of laser treatment.
- PKC expression patterns varied over time, with near-normal labeling observed in low-intensity treated retinas after 7 weeks.
- Laser treatment caused neuroretinal edema and outer nuclear layer destruction, with Müller cell activation (GFAP) observed.
Conclusions:
- Laser photocoagulation induces significant, time-dependent, and intensity-related alterations in retinal PKC expression.
- These PKC modulation patterns offer insights into the therapeutic efficacy of laser photocoagulation for diabetic retinopathy.

