Related Experiment Video
Updated: Jun 19, 2026

Intracameral Injection in Rats with Low Risk of Adverse Effects
Published on: May 31, 2024
Episcleral implants for topotecan delivery to the posterior segment of the eye
Angel M Carcaboso1, Diego A Chiappetta, Javier A W Opezzo
1Department of Pharmacology, University of Buenos Aires, Buenos Aires, Argentina.
Abstract:
Purpose. Intravenous or periocular topotecan has been proposed as new treatment modality for patients with advanced intraocular retinoblastoma, but systemic topotecan lactone exposure induced by both approaches may cause toxicity. The purpose of this study was to develop a topotecan-loaded ocular delivery system to minimize systemic exposure and achieve selective transscleral penetration. Methods. Biocompatible polymer implants containing low (0.3 mg) or high (2.3 mg) topotecan load were manufactured and characterized in vitro. Adrenaline (500 mug) was coloaded to induce local vasoconstriction in vivo in 2 of 4 animal groups. Implants were inserted into the episclera of rabbits, and topotecan (lactone and total) concentrations in ocular tissues and plasma were determined over a period of 48 hours. Results. In vitro, implants released 30% to 50% of the loaded drug within 48 hours and 45% to 70% by day 10. In vivo, topotecan lactone was highly accumulated in locally exposed ocular tissues (ranging from 10(5) to 10(6) ng/g in sclera and choroid and 10(2) to10(3) ng/g in retina) over 48 hours with all the formulations studied. Low vitreous topotecan lactone levels (approximately 5 ng/mL) were found in animals receiving concomitant local vasoconstriction and high load implants. Topotecan lactone concentrations in plasma and in contralateral eyes were minimal or undetectable as a marker of tissue selectivity of the proposed strategy. Conclusions. These studies may contribute to improving the efficacy and safety of chemotherapy treatments for retinoblastoma and may support the role of the local vasculature and tissues promoting drug clearance and local accumulation during transscleral drug delivery.
Insights
This study developed a novel ocular delivery system for topotecan to treat retinoblastoma. The system achieved high local drug accumulation in ocular tissues while minimizing systemic exposure, improving treatment safety.
Area of Science:
- Ophthalmology
- Oncology
- Drug Delivery Systems
Background:
- Advanced intraocular retinoblastoma treatment faces challenges with systemic topotecan lactone toxicity.
- Current treatment modalities like intravenous or periocular topotecan may lead to undesirable systemic exposure.
Purpose of the Study:
- To develop a topotecan-loaded ocular delivery system for targeted transscleral penetration.
- To minimize systemic exposure and reduce toxicity associated with retinoblastoma chemotherapy.
Main Methods:
- Biocompatible polymer implants with varying topotecan loads (0.3 mg, 2.3 mg) were manufactured and characterized.
- Adrenaline was co-loaded in some implants to induce local vasoconstriction.
- Implants were inserted into rabbit episclera, and topotecan concentrations in ocular tissues and plasma were measured over 48 hours.
Main Results:
- In vitro studies showed sustained drug release from implants over 10 days.
- In vivo, high topotecan lactone accumulation was observed in ocular tissues (sclera, choroid, retina).
- Minimal topotecan lactone levels were detected in plasma and contralateral eyes, indicating high tissue selectivity.
Conclusions:
- The developed ocular delivery system demonstrates potential for improved efficacy and safety in retinoblastoma treatment.
- Local vasculature and tissues play a role in promoting drug clearance and local accumulation during transscleral delivery.
- This strategy may enhance chemotherapy for retinoblastoma by achieving targeted drug delivery.

