MRS Meetings and Events

 

SB06.03.27 2024 MRS Spring Meeting

Micro-Vibrator Integrated Wet Adhesive Glycerogel Patch for Enhanced Transdermal Drug Delivery System

When and Where

Apr 23, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Byoung Soo Kim2,Seo Yoon Kim1

Korea Institute of Ceramic Engineering and Technology1,Korea Institute of Ceramic Engineering and Technology (KICET)2

Abstract

Byoung Soo Kim2,Seo Yoon Kim1

Korea Institute of Ceramic Engineering and Technology1,Korea Institute of Ceramic Engineering and Technology (KICET)2
Transdermal drug delivery system (TDDS) is a painless method of delivering drugs by applying patches directly onto skin. Among the evolving variations of TDDS, hydrogel patchis gaining prominence for its capacity to facilitate skin hydration and efficiently deliver pharmaceutical agents across the skin barrier. However, in order to facilitate commercialization, hydrogel-based patches need to effectively tackle three key challenges: (1) minimizing moisture evaporation, (2) enhancing adhesion in wet environments, and (3) precisely controlling the release dosage of the contained medicine. Here, we introduce a novel glycerogel matrix that exhibits wet-adhesive properties, does not dry out, and possesses high toughness. This matrix is first designed to facilitate prolonged skin contact and enhance the absorption of drugs. Next, the glycerogel matrix was combined with a micro-vibrator film in order to enhance medication penetration through the stimulation of skin microcirculation. The glycerogel matrix exhibits rapid adherence to various surfaces in a wet condition, with a time frame of less than 10 seconds. The strength of adhesion is influenced by the size and composition of the silica nanoparticles used for surface coating. We alsoconfirmed the vibrator-assisted drug release create a synergistic effect within the hydrogel, promoting efficient drug dispersion and enhancing skin penetration. This accelerates drug absorption and improves drug efficacy, resulting in faster drug release and shorter time to achieve therapeutic goals. We believe this synergistic integration of these components presents a novel paradigm in controlled drug release, allowing for precise modulation of therapeutic dosages.<br/>Keywords? : Tough hydrogels, bioadhesives, transdermal drug delivery, micro-vibration film,active drug delivery

Keywords

powder processing

Symposium Organizers

Neel Joshi, Northeastern University
Eleni Stavrinidou, Linköping University
Bozhi Tian, University of Chicago
Claudia Tortiglione, Istituto di Scienze Applicate e Sistemi Intelligenti

Symposium Support

Bronze
Cell Press

Session Chairs

Eleni Stavrinidou
Claudia Tortiglione

In this Session

SB06.03.01
Photosynthetic vs Photovoltaic Efficiency of Limnospira Indica, Perspective Cyanobacteria Strain for Space Mission Live Support Systems.

SB06.03.02
Stable Hemoglobin-Based Biosensor based on Coordination-Assisted Microfluidic Technology for Hydrogen Peroxide Determination

SB06.03.03
Real-Time Monitoring and Swarm-Intelligence Nanorobots Enhancing Drug Delivery Precision

SB06.03.04
Assessing Cellular Viability, Cytotoxicity, and Antimicrobial Susceptibility of Magnesium-Doped Hydroxyapatite Nanofibers in Primary Fibroblast Cultures: A Biological Characterization.

SB06.03.05
Hydrogel Variability in Drug Delivery: Balancing Mechanical Strength and Stimuli-Responsiveness

SB06.03.06
Development of NmeGA, a Dual Scavenger for NO and ROS in Inflammation Treatment

SB06.03.07
Development of Supramolecular Gels using Calix[4]arene and its Mechanical Property

SB06.03.08
Stimuli-Responsive Soft Microactuators For Dynamic Microfluidics

SB06.03.09
Electrochemically Co-Deposited Au-Pt Bimetallic Nano-Clusters for Highly Catalytic Glucose Detection

SB06.03.12
Self-Assembly Sugar Derivative-Linked Nucleic Acid Nanoparticle for Nucleic Acid Medicine Delivery

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Publishing Alliance

MRS publishes with Springer Nature