Polyvinyl Alcohol-Coated Polycaprolactone Microneedles as Polymeric Microdevices for Transdermal Antigen Delivery and Immune Activation

Conventional needle-and-syringe vaccination is associated with pain, needle-related anxiety, the need for trained personnel, and logistical challenges related to vaccine distribution and storage. Microneedle (MN) technology has emerged as a minimally invasive strategy for transdermal delivery and as a platform for functional polymeric microdevices. In this study, polycaprolactone (PCL) microneedles coated with hydrophilic polymers were evaluated as a model platform for antigen delivery. Ex vivo assays using porcine ear skin were explored as a preliminary approach to assess antigen transport from polymer-coated PCL microneedles. However, antigen-specific quantification in the receptor compartment was limited by the lack of specificity of absorbance-based measurements in this biological matrix. Scanning electron microscopy (SEM) showed that PVA coating partially altered microneedle tip morphology, whereas optical coherence tomography (OCT) and optical microscopy confirmed that PVA20%-PCL-MNs maintained the ability to insert into porcine skin and generate visible insertion sites. Mechanical compression testing further showed that polymer-coated PCL-MNs maintained resistance to axial deformation under the tested conditions. PVA20%-PCL-MNs were also non-toxic and maintained high HEK293T cell viability after 24 h. Based on their preserved insertion capacity, mechanical robustness, ability to support DNP-KLH permeation, and preliminary cytocompatibility, PVA20%-PCL-MNs were evaluated in BALB/c mice using a two-dose prime-boost regimen. Although intraperitoneal immunization induced higher IgG levels, transdermal immunization with PVA20%-PCL-MNs promoted booster-dependent antigen-specific IgG responses. IgG2a/IgG1 ratio analysis indicated a predominantly IgG1-biased humoral profile, and splenocytes from mice immunized with PVA20%-PCL-MNs produced detectable levels of IFN-γ and IL-10 after in vitro stimulation. Together, these findings support PVA-coated PCL microneedles as a proof-of-concept polymeric microdevice platform for minimally invasive antigen delivery and immunogenicity assessment.

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Journal
Polymers
Published
2026-09-24
DOI
https://doi.org/10.3390/polym18192327
Primary Topic
Advancements in Transdermal Drug Delivery
Type
article
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article

Polyvinyl Alcohol-Coated Polycaprolactone Microneedles as Polymeric Microdevices for Transdermal Antigen Delivery and Immune Activation

Wendel Andrade Alves, Aline F. Teixeira, Daniele Ribeiro de Araújo, Ana L. T. O. Nascimento et al.
Polymers
Advancements in Transdermal Drug Delivery
article

Polyvinyl Alcohol-Coated Polycaprolactone Microneedles as Polymeric Microdevices for Transdermal Antigen Delivery and Immune Activation

Wendel Andrade Alves, Aline F. Teixeira, Daniele Ribeiro de Araújo, Ana L. T. O. Nascimento, Jose E. U. Rojas, Ana Carola de La Via, Leandro T. Kochi
article en

Abstract

Conventional needle-and-syringe vaccination is associated with pain, needle-related anxiety, the need for trained personnel, and logistical challenges related to vaccine distribution and storage. Microneedle (MN) technology has emerged as a minimally invasive strategy for transdermal delivery and as a platform for functional polymeric microdevices. In this study, polycaprolactone (PCL) microneedles coated with hydrophilic polymers were evaluated as a model platform for antigen delivery. Ex vivo assays using porcine ear skin were explored as a preliminary approach to assess antigen transport from polymer-coated PCL microneedles. However, antigen-specific quantification in the receptor compartment was limited by the lack of specificity of absorbance-based measurements in this biological matrix. Scanning electron microscopy (SEM) showed that PVA coating partially altered microneedle tip morphology, whereas optical coherence tomography (OCT) and optical microscopy confirmed that PVA20%-PCL-MNs maintained the ability to insert into porcine skin and generate visible insertion sites. Mechanical compression testing further showed that polymer-coated PCL-MNs maintained resistance to axial deformation under the tested conditions. PVA20%-PCL-MNs were also non-toxic and maintained high HEK293T cell viability after 24 h. Based on their preserved insertion capacity, mechanical robustness, ability to support DNP-KLH permeation, and preliminary cytocompatibility, PVA20%-PCL-MNs were evaluated in BALB/c mice using a two-dose prime-boost regimen. Although intraperitoneal immunization induced higher IgG levels, transdermal immunization with PVA20%-PCL-MNs promoted booster-dependent antigen-specific IgG responses. IgG2a/IgG1 ratio analysis indicated a predominantly IgG1-biased humoral profile, and splenocytes from mice immunized with PVA20%-PCL-MNs produced detectable levels of IFN-γ and IL-10 after in vitro stimulation. Together, these findings support PVA-coated PCL microneedles as a proof-of-concept polymeric microdevice platform for minimally invasive antigen delivery and immunogenicity assessment.

PolymersVol. 18(19)
Instituto Butantan (BR), Universidade Federal do ABC (BR), Universidade Federal de São Paulo (BR)
Good health and well-being
Openalex Percentile: Top 13%
Advancements in Transdermal Drug Delivery
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