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Synthesis and Optimization of PEG-PLGA Immunotherapeutic Nanoparticles for the Controlled Release of IFNα

Magdi E. A. Abobaker iD, Mershen Govender iD, Yahya E. Choonara iD

DOI10.1208/s12249-026-03548-7
PublisherSpringer Science and Business Media LLC
Journal / SourceAAPS PharmSciTech
Published2026-09-29
Metadata Deposited2026-09-29 (updated: 2026-09-29)
Subject—
Languageen
ISSN1530-9932
Typejournal-article
Volume / Issue / Pages27 / 7 / —
Citations0
References deposited61
Access / license metadataOpen license identified License 1 ↗A reuse license does not by itself establish whether the full text is freely readable.

Abstract

Abstract The therapeutic efficacy of interferon alpha (IFNα) is well-established in various conditions, including Hepatitis B and C, lymphoma and skin cancer, attributed to its potent angiostatic, immunomodulatory, and antiproliferative properties. Clinical applications using this bioactive are, however, hindered by systemic toxicity due to the high doses used, increasing costs and reducing patient adherence. The use of a controlled-release polymeric nanoparticulate system that can potentially decrease the administered dose, and therefore the associated costs, may additionally improve overall patient acceptability without affecting therapeutic efficacy. This study provides for the development, statistical optimization and characterization of poly(lactic-co-glycolic acid) nanoparticles (PLGANPs) for the controlled release of IFNα. A double-emulsion solvent evaporation method was employed for nanoparticle (NP) synthesis, with formulation optimization achieved through a Central Composite Design (CCD) approach to ensure adequate size, stability, and sustained release over five days. Characterization of the optimized IFNα-PLGANPs using dynamic light scattering, zeta potential analysis, scanning electron microscopy (SEM), thermogravimetric analysis (TGA), and drug release studies at pH 7.2 displayed an average particle size of 97.03 nm (PDI = 0.182), zeta potential of − 34.10 mV and a maximum drug release of 5 days, with morphological analysis revealing the formation of spherical NPs with a smooth surface topology, confirming the homogeneity and structural stability of the formulation. These findings underscore the potential of the developed PLGANPs as a suitable platform for the controlled release of IFNα, noting the use of advanced nanotechnology-driven solutions to overcome the limitations of conventional therapies.