Skip to content

Laser Photocoagulation and Ranibizumab Treatment in Proliferative Diabetic Retinopathy

Pan-Retinal Photocoagulation With Intravitreal Ranibizumab In Treatment Of Proliferative Diabetic Retinopathy

Status
Completed
Phases
Unknown
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT07819253
Acronym
PRP VS PRP&RZB
Enrollment
80
Registered
2026-09-14
Start date
2023-07-01
Completion date
2025-07-31
Last updated
2026-09-15

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Proliferative Diabetic Retinopathy (PDR)

Keywords

diabetic retinopathy, Ranibizumab, laser, Photocoagulation

Brief summary

To evaluate the effects of PRP as monotherapy or with combination of intravitreal Ranibizumab injection on microvascular density changes of the macula of eyes with PDR using OCTA

Detailed description

The global prevalence of diabetes mellitus (DM) in 2019 is estimated to be 9.3% (463 million people). Diabetic retinopathy represents the fifth cause of blindness globally and the commonest visual impairing condition in working-age people. Diabetic retinopathy (DR) is microangiopathy characterized by capillary non-perfusion, microaneurysms (MAs), and retinal ischemia. It may cause many complications, such as diabetic macular edema (DME) and diabetic macular ischemia (DMI). Capillary ischemia decreases the nutrition of the retina and causes of hypoxia which results in increased level vascular endothelial growth factor (VEGF), which promotes angiogenic responses causing both neovascularization (proliferative diabetic retinopathy, PDR) and vascular permeability (macular edema). Pan-retinal photocoagulation (PRP) is the standard treatment for proliferative diabetic retinopathy (PDR). It improves oxygenation of the ischemic retina. Destruction of the highly active photoreceptor cells is the suggested mechanism of action for PRP. Subsequently, production of VEGFs, the key player in neovascularization process, is reduced leading to regression of new vessels. However, the use of intravitreal anti-vascular endothelial growth factor (anti-VEGF) agents as (Ranibizumab, Bevacizumab and Aflibercept) for the treatment of PDR has provided encouraging results in the last decade, with better functional outcomes compared to PRP. Both treatments have a positive effect in delaying progression of DR, and they also have been combined many times in clinical practice. However the efficacy of monotherapy and combined treatment may be different. Many studies concluded that PRP and Anti VEGF treatment can achieve the ideal efficacy on DR by improving visual acuity and neovascularization regression. PDR eyes have an overall lower blood flow than normal or non-PDR eyes, parallel to the higher level of retinal ischemia and disease severity. With regression of these neovascular and shunt vessels theoretically increase blood flow in the macula and may reverse the ischemia flow. While most previous studies have explored the large vessel effects of PRP, the development of optical coherence tomography angiography (OCTA) allowed the study of microvascular retinal changes in a detailed manner. It is a non-invasive modality that allows vascular mapping with high speed and quality and promotes visualization of vascular system in different retinal and choroidal levels. Several studies have demonstrated the competence of OCTA in the quantification of microvascular density, choroidal flow area, and foveal avascular zone (FAZ) area in diabetic patients. Unlike other studies that focused only on the effect of PRP alone on macular vascular flow, our study will focus on the additional effect of intravitreal Anti-VEGF (Ranibizumab) with PRP on the macula of eyes with PDR using OCTA.

Interventions

Groupe (1) included eyes that underwent laser photocoagulation (PRP) in two sessions 1week apart, and group (2), included eyes that were treated with laser photocoagulation (PRP) combined with intravitreal anti VEGF (ranibizumab 0.5 mg) injection one week before PRP, which was also performed in two sessions 1 week apart

PROCEDURElaser photocoagulation (PRP)

photocoagulation was performed through a contact lens (Ocular Mainster PRP 165, Ocular Instruments, Bellevue, WA, USA) using double frequency YAG, 532 nm (Ellex Medical Pty Ltd. 3-4 Second Ave, Mawson Lakes SA 5095, Australia) with a 200-µm spot diameter and a 100 m-s pulse duration. The power of the laser was individually adjusted to produce yellowish-white coagulative spots. PRP was performed by a single retina specialist in 2 sessions with an interval of 1 week in-between with a total number of 1500-3000 burns

Sponsors

Aswan University
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
DOUBLE (Investigator, Outcomes Assessor)

Intervention model description

Group I treated with laser (PRP) only and Group II treated with combined laser (PRP) and intravitreal Ranibizumab

Eligibility

Sex/Gender
ALL
Age
30 Years to 60 Years
Healthy volunteers
No

Inclusion criteria

* PDR patients diagnosed clinically and by the presence of neovascularization on optic disc (NVDs) or elsewhere (NVEs) on fluorescein angiography.

Exclusion criteria

* a) History of previous intra ocular surgery, uveitis, glaucoma and significant eye trauma. b) Significant media opacity decreasing image quality (corneal opacity, dense cataract, and vitreous hemorrhage) c) Significant macular edema to overcome errors in segmentation d) Scans with low signal strength index (SSI; \< 50), presence of blink artifacts, and poor fixation leading to motion artifacts. e) History of previous treatment for diabetic retinopathy including intravitreal injection of anti-VEGFs, laser, or vitrectomy f) Presence of vitreo-macular traction

Design outcomes

Primary

MeasureTime frameDescription
macular vessel density changesone month and three months after treatmentMacular vessel density changes including ( superficial capillary plexus density, deep capillary plexus density and Foveal Avascular zone) using optical coherence tomography angiography

Countries

Egypt

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Sep 16, 2026