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Updated: Jun 5, 2025

Hollow Microneedle-based Sensor for Multiplexed Transdermal Electrochemical Sensing
Published on: June 1, 2012
Microneedle technology for enhanced topical treatment of skin infections
Tingting Peng1, Yangyan Chen2, Xuanyu Luan3
1State Key Laboratory of Bioactive Molecules and Druggability Assessment/ International Cooperative Laboratory of Traditional Chinese Medicine Modernization and Innovative Drug Development of Ministry of Education (MOE) of China/College of Pharmacy, Jinan University, Guangzhou 511436, China.
Abstract:
Skin infections caused by microbes such as bacteria, fungi, and viruses often lead to aberrant skin functions and appearance, eventually evolving into a significant risk to human health. Among different drug administration paradigms for skin infections, microneedles (MNs) have demonstrated superiority mainly because of their merits in enhancing drug delivery efficiency and reducing microbial resistance. Also, integrating biosensing functionality to MNs offers point-of-care wearable medical devices for analyzing specific pathogens, disease status, and drug pharmacokinetics, thus providing personalized therapy for skin infections. Herein, we do a timely update on the development of MN technology in skin infection management, with a special focus on how to devise MNs for personalized antimicrobial therapy. Notably, the advantages of state-of-the-art MNs for treating skin infections are pointed out, which include hijacking sequential drug transport barriers to enhance drug delivery efficiency and delivering various therapeutics (e.g., antibiotics, antimicrobial peptides, photosensitizers, metals, sonosensitizers, nanoenzyme, living bacteria, poly ionic liquid, and nanomoter). In addition, the nanoenzyme-based multimodal antimicrobial therapy is highlighted in addressing intractable infectious wounds. Furthermore, the MN-based biosensors used to identify pathogen types, track disease status, and quantify antibiotic concentrations are summarized. The limitations of antimicrobial MNs toward clinical translation are offered regarding large-scale production, quality control, and policy guidance. Finally, the future development of biosensing MNs with easy-to-use and intelligent properties and MN-based wearable drug delivery for home-based therapy are prospected. We hope this review will provide valuable guidance for future development in MN-mediated topical treatment of skin infections.
Insights
Microneedles (MNs) offer superior drug delivery for skin infections, enhancing efficiency and reducing resistance. Advanced MNs integrate biosensing for personalized pathogen detection and therapy, improving treatment outcomes.
Area of Science:
- Biomedical Engineering
- Dermatology
- Nanotechnology
Background:
- Skin infections pose significant health risks due to microbial pathogens.
- Traditional treatments face challenges in drug delivery efficiency and microbial resistance.
- Microneedles (MNs) present a promising platform for enhanced topical drug delivery and diagnostics.
Purpose of the Study:
- To review advancements in microneedle (MN) technology for managing skin infections.
- To highlight the development of MNs for personalized antimicrobial therapy.
- To discuss the integration of biosensing capabilities with MNs for point-of-care applications.
Main Methods:
- Review of current literature on microneedle applications in skin infection treatment.
- Analysis of MN strategies for overcoming skin's drug transport barriers.
- Summarization of biosensing functionalities integrated into MNs for diagnostics.
Main Results:
- MNs enhance drug delivery efficiency and reduce microbial resistance for skin infections.
- Various therapeutics, including nanoenzymes and living bacteria, can be delivered via MNs.
- MN-based biosensors enable pathogen identification, disease monitoring, and drug quantification.
Conclusions:
- Microneedle technology shows significant potential for personalized antimicrobial therapy in skin infections.
- Biosensing MNs offer opportunities for intelligent, wearable, and home-based treatment solutions.
- Addressing challenges in large-scale production and quality control is crucial for clinical translation.

