Related Experiment Video
Updated: Jun 4, 2026

Retroductal Nanoparticle Injection to the Murine Submandibular Gland
Published on: May 3, 2018
Salivary Enzyme-Responsive Switching Nanoparticles Overcoming Diffusion and Absorption Barriers for Transmucosal
Se Kye Park1,2, Lam Tan Hao1, Hee Jung Park3
1Research Center for Bio-Based Chemistry, Korea Research Institute of Chemical Technology (KRICT), Ulsan 44429, Republic of Korea.
None:
Transmucosal drug delivery is an attractive noninvasive strategy, yet its efficiency is fundamentally limited by the trade-off between mucus penetration and mucoadhesion. Here, we present salivary enzyme-responsive penetration-to-adhesion switching nanoparticles (SEPAS NPs) designed to overcome this limitation in the context of buccal drug delivery. SEPAS NPs feature a dual-regime architecture consisting of an N-guanidinium chitosan oligosaccharide (G-COS) inner layer that provides mucoadhesion and a degradable starch-based outer layer that transiently shields cationic interactions with mucins during transport. Under mucus-mimicking conditions, SEPAS NPs exhibit minimal mucin binding during penetration, followed by enzyme-mediated degradation of the starch shell that exposes the underlying G-COS layer and enhances retention at a mucin-coated interface by approximately 6-fold. Furthermore, this switching design does not compromise drug release, maintaining diffusion-dominated sustained release of dexamethasone (DEX). In addition, SEPAS NPs demonstrate excellent cytocompatibility (>90% cell viability) and maintain the anti-inflammatory activity of released DEX. Collectively, this work presents an enzyme-responsive nanoparticle strategy that resolves the penetration-adhesion trade-off while maintaining favorable release kinetics and biocompatibility, providing a broadly adaptable platform for transmucosal drug delivery across diverse mucus environments.
Related Concept Videos
Bioavailability Enhancement: Drug Permeability Enhancement
Bioavailability Enhancement: Drug Solubility Enhancement
Site-Targeted Drug Delivery Systems: Polymeric Carriers
Oral Drug Delivery Systems: Introduction
Oral Drug Delivery Systems: Delayed-Release Systems
Drug Delivery: Enteral Route
Drugs in...
