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Updated: May 11, 2026

Fabrication of a Master Mold for Microneedles with a Micron-sized Air-vent Hole
Published on: December 5, 2025
Hydrogel-forming microneedle arrays exhibit antimicrobial properties: potential for enhanced patient safety
Ryan F Donnelly1, Thakur Raghu Raj Singh, Ahlam Zaid Alkilani
1School of Pharmacy, Queens University Belfast, Medical Biology Centre, 97 Lisburn Road, Belfast BT9 7BL, Northern Ireland, UK. r.donnelly@qub.ac.uk
Abstract:
We describe, for the first time, the microbial characterisation of hydrogel-forming polymeric microneedle arrays and the potential for passage of microorganisms into skin following microneedle penetration. Uniquely, we also present insights into the storage stability of these hydroscopic formulations, from physical and microbiological viewpoints, and examine clinical performance and safety in human volunteers. Experiments employing excised porcine skin and radiolabelled microorganisms showed that microorganisms can penetrate skin beyond the stratum corneum following microneedle puncture. Indeed, the numbers of microorganisms crossing the stratum corneum following microneedle puncture were greater than 10⁵ cfu in each case. However, no microorganisms crossed the epidermal skin. When using a 21G hypodermic needle, more than 10⁴ microorganisms penetrated into the viable tissue and 10⁶ cfu of Candida albicans and Staphylococcus epidermidis completely crossed the epidermal skin in 24 h. The hydrogel-forming materials contained no microorganisms following de-moulding and exhibited no microbial growth during storage, while also maintaining their mechanical strength, apart from when stored at relative humidities of 86%. No microbial penetration through the swelling microneedles was detectable, while human volunteer studies confirmed that skin or systemic infection is highly unlikely when polymeric microneedles are used for transdermal drug delivery. Since no pharmacopoeial standards currently exist for microneedle-based products, the exact requirements for a proprietary product based on hydrogel-forming microneedles are at present unclear. However, we are currently working towards a comprehensive specification set for this microneedle system that may inform future developments in this regard.
Insights
Microbial characterization of hydrogel-forming polymeric microneedles shows potential for skin penetration but no epidermal crossing. Storage stability is good, and human studies indicate low infection risk for transdermal drug delivery.
Area of Science:
- Biomaterials Science
- Microbiology
- Dermatology
Background:
- Hydrogel-forming polymeric microneedle arrays are novel drug delivery systems.
- Assessing microbial risks associated with microneedle use is crucial for safety.
Purpose of the Study:
- To microbiologically characterize hydrogel-forming microneedles.
- To evaluate the potential for microorganism passage into skin.
- To assess storage stability and clinical safety in humans.
Main Methods:
- Experiments using excised porcine skin with radiolabelled microorganisms.
- Microbial characterization of microneedle materials.
- Storage stability tests under varying humidity.
- Clinical safety and performance evaluation in human volunteers.
Main Results:
- Microorganisms penetrated skin beyond the stratum corneum (>10⁵ cfu) but not the epidermis after microneedle puncture.
- Hydrogel materials were initially sterile and showed no microbial growth during storage (except at 86% RH).
- No microbial penetration through swelling microneedles was detected; human studies showed low risk of infection.
Conclusions:
- Hydrogel-forming microneedles demonstrate microbiological safety for transdermal drug delivery.
- Further standardization is needed for microneedle-based product specifications.
- The study provides insights into the physical and microbiological stability of these novel devices.
