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Polyketal copolymers: a new acid-sensitive delivery vehicle for treating acute inflammatory diseases
Stephen C Yang1, Mahesh Bhide, Ian N Crispe
1Wallace H. Coulter Department of Biomedical Engineering and Parker H. Petit Institute for Bioengineering and Bioscience, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.
Abstract:
Acute inflammatory diseases are a major cause of death in the world, and effective treatments are greatly needed. Macrophages play a central role in causing acute inflammatory diseases, and there is currently great interest in developing drug delivery vehicles that can target therapeutics to macrophages. Microparticles formulated from aliphatic polyketals have great potential to enhance the treatment of acute inflammatory diseases, due to their ability to passively target therapeutics to macrophages, their acid sensitivity, and their biocompatible degradation products. However, existing aliphatic polyketals are unsuitable for treating acute inflammatory diseases because they require weeks to hydrolyze, and strategies for accelerating their hydrolysis kinetics are greatly needed. In this report, we demonstrate that the hydrolysis kinetics of aliphatic polyketals can be accelerated by increasing their hydrophilic/hydrophobic balance. Aliphatic polyketals of varying hydrophobicity were synthesized, via the acetal exchange reaction, and their hydrolysis kinetics were investigated at the pH values of 4.5 and 7.4. A polyketal termed PK3 was developed, which had the hydrolysis kinetics suitable for treating acute inflammatory diseases. PK3 has a hydrolysis half-life of 2 days at pH 4.5, but requires several weeks to hydrolyze at pH 7.4. Microparticles were formulated with PK3, which encapsulated the anti-inflammatory drug, imatinib. In vivo experiments demonstrated that PK3 microparticles were able to significantly improve the efficacy of imatinib in treating acute liver failure. We anticipate that aliphatic polyketals will have numerous applications for the treatment of acute inflammatory diseases, given their pH sensitivity, tunable hydrolysis kinetics, and biocompatible degradation products.
Insights
Researchers developed new aliphatic polyketal microparticles to target macrophages for treating acute inflammatory diseases. These pH-sensitive drug delivery vehicles show improved efficacy for conditions like acute liver failure.
Area of Science:
- Biomaterials Science
- Drug Delivery Systems
- Inflammation Research
Background:
- Acute inflammatory diseases represent a significant global health burden, necessitating advanced therapeutic strategies.
- Macrophages are key players in acute inflammation, making them attractive targets for drug delivery.
- Current aliphatic polyketals lack rapid hydrolysis kinetics, limiting their therapeutic application.
Purpose of the Study:
- To accelerate the hydrolysis kinetics of aliphatic polyketals for improved drug delivery.
- To develop pH-sensitive microparticles for targeted macrophage delivery in inflammatory diseases.
- To evaluate the efficacy of novel polyketal microparticles in treating acute liver failure.
Main Methods:
- Synthesized aliphatic polyketals with varying hydrophobicity using acetal exchange.
- Investigated hydrolysis kinetics at pH 4.5 and 7.4.
- Formulated PK3 polyketal microparticles encapsulating imatinib for in vivo studies.
Main Results:
- Developed PK3 polyketal with a 2-day hydrolysis half-life at pH 4.5, suitable for therapeutic applications.
- PK3 microparticles demonstrated enhanced efficacy of imatinib in treating acute liver failure in vivo.
- Demonstrated that increasing the hydrophilic/hydrophobic balance accelerates polyketal hydrolysis.
Conclusions:
- Aliphatic polyketals with tunable hydrolysis kinetics offer a promising platform for treating acute inflammatory diseases.
- PK3 microparticles represent a viable drug delivery system for macrophage-targeted therapies.
- The pH sensitivity and biocompatible degradation products of these polyketals support their clinical potential.
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