» Articles » PMID: 26830342

Fabrication of a Micellar Supramolecular Hydrogel for Ocular Drug Delivery

Overview
Date 2016 Feb 3
PMID 26830342
Citations 30
Authors
Affiliations
Soon will be listed here.
Abstract

In this paper, we describe a simple method for constructing a micellar supramolecular hydrogel, composed of a low-molecular-weight methoxy poly(ethylene glycol) (Mn = 2000 Da) block polymer and α-cyclodextrin (α-CD), for topical ocular drug delivery. Adding aqueous block polymer micelles into an α-CD aqueous solution resulted in the formation of a micellar supramolecular hydrogel through host-guest inclusion. The effects of the drug payload, block polymer, and α-CD concentrations as well as the block polymer structure on gelation time were investigated. The resultant micellar supramolecular hydrogels were thoroughly characterized by X-ray diffraction, rheological studies, and scanning electron microscopy. The hydrogels exhibited thixotropic properties, which are beneficial to ocular drug delivery. In vitro release studies indicated that the α-CD concentration strongly influenced the release rate of diclofenac (DIC) from supramolecular hydrogel. The hydrogels showed relatively low cytotoxicity toward L-929 and HCEC cells and did not significantly affect the migration of the latter after 24 h incubation. The hydrogel was nonirritant toward the rabbit eye, as indicated by the Draize test, fluorescein staining, and histological observation. Nile Red-labeled micellar supramolecular hydrogel showed that it could significantly extend the retention time on the corneal surface in rabbits, compared with a plain micellar formulation. In vivo pharmacokinetics indicated that the hydrogel could greatly improve ocular drug bioavailability, compared with that of micellar formulation. Our results suggest that the micellar supramolecular hydrogel is a promising system for ocular drug delivery.

Citing Articles

Reversal of postoperative breast cancer metastasis by the use of embedded hydrogel.

Yu Z, Chi W, Wang C, Qiu Y, Qiu Z, Zhu W Am J Transl Res. 2024; 16(11):6991-7015.

PMID: 39678538 PMC: 11645627. DOI: 10.62347/VZAW2270.


Advanced bioengineering strategies broaden the therapeutic landscape for corneal failure.

Al Monla R, Daien V, Michon F Front Bioeng Biotechnol. 2024; 12:1480772.

PMID: 39605752 PMC: 11598527. DOI: 10.3389/fbioe.2024.1480772.


Polymeric Mixed Micelle-Loaded Hydrogel for the Ocular Delivery of Fexofenadine for Treating Allergic Conjunctivitis.

El-Shahed S, Hassan D, El-Nabarawi M, El-Setouhy D, Abdellatif M Polymers (Basel). 2024; 16(16).

PMID: 39204460 PMC: 11359231. DOI: 10.3390/polym16162240.


Development, Optimization, and Clinical Relevance of Lactoferrin Delivery Systems: A Focus on Ocular Delivery.

Ponzini E, Astolfi G, Grandori R, Tavazzi S, Versura P Pharmaceutics. 2024; 16(6).

PMID: 38931931 PMC: 11207246. DOI: 10.3390/pharmaceutics16060804.


Dendrimer and dendrimer gel-derived drug delivery systems: Breaking bottlenecks of topical administration of glaucoma medications.

Wang J, Li B, Kompella U, Yang H MedComm Biomater Appl. 2024; 2(1).

PMID: 38562247 PMC: 10983815. DOI: 10.1002/mba2.30.