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Author Spotlight: Innovative Microneedle-Based Strategies for Enhanced Exosome Delivery and Stability
Published on: July 12, 2024
Microneedle Patch Loaded with Metabolized Elastin-Complexed Ceria Nanoparticles for Oral Ulcer Treatment
Yunjung Lee1,2,3, Sungjae Yoo3, Seokjun Kwon1,4
1Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul 08826, Republic of Korea.
Abstract:
Oral ulcers are prevalent oral health issues with a high recurrence rate that substantially impair oral and systemic health. However, current therapies for oral ulcers are limited to symptom relief without addressing its fundamental pathophysiology. Additionally, their treatment efficacy is limited by reduced bioavailability due to the dynamic environment of oral cavity and reactive oxygen species (ROS)-rich microenvironment of ulcer bed. Here, we develop a microneedle patch system designed to locally deliver metabolized elastin-complexed ceria nanoparticles (mEl-Ce) and triamcinolone acetonide (TA) for combination treatment of oral ulcers. Elastin, an elastic protein fiber and a major component of the extracellular matrix, is metabolized to facilitate the formation of ceria nanoparticles and becomes integrated with them as a complex, termed mEl-Ce. The synthetic corticosteroid TA is codelivered with mEl-Ce, loaded into poly(vinyl alcohol)- and poly(vinylpyrrolidone)-based dissolvable microneedle tips. The system is designed so that mEl-Ce in the tip layer is released rapidly upon application to scavenge excess ROS and create a favorable microenvironment for drug action, while TA in the base layer is released in a sustained manner to provide prolonged anti-inflammatory effects. mEl-Ce demonstrates enhanced efficacy in neutralizing ROS and promoting angiogenesis to support ulcer healing, whereas TA topically alleviates ulcer symptoms. An additional adhesive hydrogel layer was integrated into the microneedle patch to ensure firm attachment at the lesion site and to serve as a protective barrier against salivary enzymes and microbial infiltration. This design enables controlled, sustained release of therapeutic agents and effectively treats a recurrent aphthous ulcer in a mouse model. Our system provides an optimized topical delivery strategy for therapeutic agents to address oral diseases efficiently.
Insights
A novel microneedle patch delivers cerium oxide nanoparticles and triamcinolone acetonide to treat oral ulcers by reducing inflammation and promoting healing. This advanced system targets the ulcer
Area of Science:
- Biomaterials Science
- Nanotechnology
- Oral Medicine
Background:
- Oral ulcers are common, recurrent conditions impacting oral and systemic health.
- Current treatments offer only symptomatic relief, failing to address underlying causes.
- The oral environment and reactive oxygen species (ROS) limit therapeutic bioavailability and efficacy.
Purpose of the Study:
- To develop a microneedle patch system for combined local delivery of metabolized elastin-complexed ceria nanoparticles (mEl-Ce) and triamcinolone acetonide (TA).
- To create a dual-release system for enhanced oral ulcer treatment, addressing ROS and inflammation.
- To improve therapeutic bioavailability and efficacy in the dynamic oral cavity.
Main Methods:
- Fabrication of dissolvable microneedles loaded with mEl-Ce and TA in distinct layers.
- Design incorporating an adhesive hydrogel for enhanced patch stability and protection.
- Evaluation of ROS scavenging, anti-inflammatory effects, and therapeutic efficacy in a mouse model of recurrent aphthous ulcers.
Main Results:
- The microneedle patch enabled rapid release of mEl-Ce to neutralize ROS and sustained release of TA for anti-inflammatory action.
- mEl-Ce demonstrated improved ROS neutralization and promoted angiogenesis, aiding ulcer healing.
- The integrated hydrogel ensured stable attachment and protected the treatment site.
Conclusions:
- The developed microneedle patch system offers an effective strategy for combination therapy of oral ulcers.
- This localized delivery approach enhances therapeutic action by managing the ulcer microenvironment.
- The system shows promise for efficient treatment of oral diseases, including recurrent aphthous ulcers.

