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Open access Sep 2026

Nano Engineered Chitosan-Based Delivery System for Vonoprazan Fumarate for Enhanced Bioavailability: Fabrication and Evaluation

Purpose The main purpose of the present study was to explore chitosan as a polymeric material for the preparation of vonoprazan nanoparticles intended for use as a delivery system for acid-related diseases. Methods Vonoprazan-loaded chitosan nanoparticles were formulated using the ionotropic gelation method and characterized in terms of size, zeta potential, polydispersity index, drug entrapment efficiency (EE), FTIR, XRD, Thermal analysis, SEM, in vitro release study at two different pH levels, and drug release kinetics. Acute oral toxicity was assessed to evaluate safety and pharmacokinetic studies were performed to determine bioavailability. Results The optimized formulation VCHNP4 demonstrated a mean particle size of 496.5±1.19 nm, a zeta potential of 25.4±3.07 mV, a polydispersity index of 0.474±1.97, and an entrapment efficiency of 78.09±0.41. Surface morphology studies revealed a spherical shape with inclusions of drug-loaded chitosan nanoparticles. Thermal stability was improved, as observed by thermal analysis, and PXRD confirmed the amorphous state of the drug. Saturation solubility testing indicated significantly enhanced solubility of the drug and exhibited pH-dependent drug release, with higher release at pH 1.2 compared to pH 6.8, following the Korsmeyer-Peppas model. Acute oral toxicity studies showed no major differences in the clinical parameters between the control and treatment groups. In vivo pharmacokinetics showed that VCHNPs achieved superior Cmax (307 ± 0.61 ng/mL) compared to VPZ (41 ± 1.01 ng/mL) (p < 0.05). Conclusions This study showed that mucoadhesive polymeric nanoparticles of vonoprazan significantly enhanced solubility, pH-dependent release, and improved mucoadhesion, making it a promising approach to improve the oral bioavailability of drugs with poor water solubility.

S. Sajjad, U. Tulain, M. Asim et al. · 0 citations
Open access Jul 2026

PEG-g-(HEMA-co-AA) pH-responsive graft copolymer: A promising approach for the controlled oral delivery of acid-labile rabeprazole sodium.

This research presents the development of a novel pH-sensitive PEG (HEMA-co-AA) graft copolymer hydrogel designed to provide controlled and protective delivery of acid-labile drugs, specifically Rabeprazole sodium. The hydrogel was synthesized using polyethylene glycol (PEG), 2-hydroxyethyl methacrylate (HEMA), acrylic acid (AA), with N,N'-methylene bisacrylamide (MBA) as a cross-linker and potassium persulfate (KPS) as an initiator. The hydrogel's structural integrity and formation were confirmed through Fourier-transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM), differential scanning calorimetry (DSC), and swelling studies. It is noteworthy that the hydrogel exhibits a different pH-dependent swelling behaviour, which expands under alkaline conditions and maintains its compact structure under acidic conditions. The content of acrylic acid contributed to the high-water retention and the swelling profile indicated that the product was suitable for the specific release of the drug at the site. The in-vitro release of rabeprazole sodium at acidic pH is very low, thus protecting rabeprazole sodium from premature degradation in the stomach; however, controlled release of rabeprazole sodium was achieved at intestinal pH via a non-Fickian diffusion mechanism (Korsmeyer-Peppas n = 0.40-0.62, Higuchi R² = 0.991-0.996) over 12 hours. Moreover, in-vivo acute toxicity studies indicated that the hydrogel is highly biocompatible, suggesting it is safe for use in future therapeutic applications. Overall, the PEG (HEMA-co-AA) hydrogel represents a versatile vehicle for the controlled and local administration of acid-labile pharmaceuticals, thereby promoting increased therapeutic efficacy.

U. Tulain, N. Malik, Alia Erum et al. · 0 citations

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