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Using Affinity To Provide Long-Term Delivery of Antiangiogenic Drugs in Cancer Therapy
Edgardo Rivera-Delgado1, Horst A von Recum1
1Department of Biomedical Engineering, Case Western Reserve University , 10900 Euclid Avenue, Cleveland, Ohio 44106-7207, United States.
Abstract:
Antiangiogenic drugs encompass many of the different cancer drugs currently under clinical investigation. One of the drawbacks of antiangiogenic therapy, though, is that upon cessation of drug treatment tumors can recur with an accelerated growth rate. In this study we investigate the capacity of using affinity interactions between a polymer made from cyclodextrin and four antiangiogenic drugs, tranilast, SU5416, 2-methoxyestradiol, and silibinin, with the ultimate goal of creating delivery profiles on the order of antiangiogenic processes (needing weeks, rather than hours of delivery). In these systems, release rate is dependent on affinity, so using in silico molecular docking studies followed by surface plasmon resonance we determined that silibinin possesses the highest affinity among the drugs screened. Silibinin also showed a differential binding affinity among various cyclodextrins tested, with a greater affinity toward the larger molecular pocket of γ-cyclodextrin than for β-cyclodextrin. Release studies confirmed this affinity to translate into a slower, more sustained release of silibinin. Similarly we found this trend in the release of tranilast. Then using U87 human glioblastoma cells in a mouse xenograft model, we showed that affinity-based cyclodextrin polymers loaded with silibinin showed substantially longer release rates than nonaffinity control polymers; however, both were capable of inhibiting tumor growth in the time frame studied. From this work we showed three different, but chemically similar, polymers, each with a different release rate. Future work is on evaluating longer term tumor models where this longer release rate from affinity delivery systems might have additional advantages over polymers dependent only on diffusion.
Insights
Cyclodextrin polymers offer sustained delivery of antiangiogenic drugs like silibinin, overcoming tumor recurrence. This affinity-based approach enhances drug release profiles for improved cancer therapy.
Area of Science:
- Biomaterials Science
- Cancer Therapeutics
- Drug Delivery Systems
Background:
- Antiangiogenic therapies are crucial in cancer treatment but face challenges with tumor recurrence upon treatment cessation.
- Developing sustained drug delivery systems is essential to maintain therapeutic efficacy and prevent accelerated tumor regrowth.
Purpose of the Study:
- To investigate the use of cyclodextrin-based polymers for sustained delivery of antiangiogenic drugs.
- To create drug delivery profiles matching the timescale of antiangiogenic processes, aiming for weeks rather than hours.
Main Methods:
- In silico molecular docking and surface plasmon resonance were used to determine drug-cyclodextrin affinities.
- Release studies were conducted using affinity-based and non-affinity control polymers.
- In vivo efficacy was evaluated using a U87 human glioblastoma mouse xenograft model.
Main Results:
- Silibinin exhibited the highest affinity among the tested antiangiogenic drugs, particularly with γ-cyclodextrin.
- Affinity-based cyclodextrin polymers demonstrated significantly longer drug release rates compared to control polymers.
- Both affinity-based and control polymers effectively inhibited tumor growth in the studied timeframe.
Conclusions:
- Cyclodextrin polymers can be engineered for tunable, affinity-driven drug release, offering sustained delivery of antiangiogenic agents.
- This approach shows promise for managing tumor growth and potentially preventing recurrence in longer-term cancer models.
- Further research is warranted to explore the long-term benefits of these affinity-based delivery systems in advanced tumor models.
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