Chitosan-Liposomes Coated 3D-Printed Microneedles for Enhanced Transdermal Drug Delivery
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Abstract
Breast cancer remains one of the most commonly diagnosed malignancies among
women and one of the leading causes of cancer-related mortality. Although treatment
options have advanced, systemic chemotherapy remains limited by nonspecific drug
distribution and toxicity to healthy tissues. Transdermal drug delivery offers a
minimally invasive alternative, but drug penetration through the skin is restricted by the
stratum corneum. Combining liposomal nanocarriers with microneedles can help
overcome this barrier, potentially enabling more localized and effective drug delivery.
This study developed a 3D-printed solid microneedle platform coated with a chitosan
film containing cisplatin-loaded liposomes as a potential therapeutic approach for triple
negative breast cancer (TNBC). TNBC is an aggressive breast cancer subtype,
characterized by poor prognosis, high risk of metastasis, and limited targeted treatment
options. Following compression testing, microneedles showed adequate mechanical
performance for skin insertion (> 0.058 N/Needle), while plasma etching improved the
wettability of the biocompatible resin, facilitating chitosan coating. The cisplatin-loaded
liposomes were manufactured using the extrusion method and characterized by dynamic
light scattering. They had a mean particle size of 132.4 nm and an entrapment efficiency
of 70.64 ± 7.32%, with particle size and PDI remaining stable for three weeks when
stored at room temperature. Biological evaluation showed that the Bio MN + chitosan
formulation maintained HaCaT (immortalized human epidermal keratinocyte) cell
viability at 68 ± 3.51% 24 h (p-value = 0.13), while cisplatin-loaded liposomes
produced concentration- and time-dependent cytotoxicity in MDA-MB-231 cells,
reducing cell viability at 24, 48 and 72h, and reaching 6.10 ± 0.66% at 50 µM after 72 h
(p-value < 0.0001).
Overall, the developed system demonstrates the feasibility of integrating 3D-printed
microneedles, chitosan coatings, and liposomal cisplatin into a single localized drug
delivery platform. While microneedle-based platforms have previously been explored
for dermatological treatments, this study introduces their application in localized drug
delivery for cancer therapy, highlighting the versatility of the platform beyond
conventional skin-focused uses. Future work will focus on in vivo evaluation to assess
skin insertion, local drug delivery, therapeutic efficacy in TNBC, biocompatibility, and
systemic safety.
Description
Release date: 2028-08-31.