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Polymeric Microneedle Array Fabrication by Photolithography
Published on: November 17, 2015
Multifunctional fucoidan-loaded Zn-MOF-encapsulated microneedles for MRSA-infected wound healing
Zichao Jiang1,2,3, Jingyi Li1,2,3, Jiahao Wang1,2,3
1Department of Orthopedics, Xiangya Hospital, Central South University, Changsha, China.
Abstract:
Infected wound healing remains a challenging task in clinical practice due to several factors: (I) drug-resistant infections caused by various pathogens, (II) persistent inflammation that hinders tissue regeneration and (III) the ability of pathogens to persist intracellularly and evade antibiotic treatment. Microneedle patches (MNs), recognized for their effecacious and painless subcutaneous drug delivery, could greatly enhance wound healing if integrated with antibacterial functionality and tissue regenerative potential. A multifunctional agent with subcellular targeting capability and contained novel antibacterial components, upon loading onto MNs, could yield excellent therapeutic effects on wound infections. In this study, we sythesised a zeolitic imidazolate framework-8 nanoparticles (ZIF-8 NPs) loaded with low molecular weight fucoidan (Fu) and further coating by hyaluronic acid (HA), obtained a multifunctional HAZ@Fu NPs, which could hinders Methicillin-resistant Staphylococcus aureus (MRSA) growth and promotes M2 polarization in macrophages. We mixed HAZ@Fu NPs with photocrosslinked gelatin methacryloyl (GelMA) and loaded it into the tips of the MNs (HAZ@Fu MNs), administered to mice model with MRSA-infected full-thickness cutaneous wounds. MNs are able to penetrate the skin barrier, delivering HAZ@Fu NPs into the dermal layer. Since cells within infected tissues extensively express the HA receptor CD44, we also confirmed the HA endows the nanoparticles with the ability to target MRSA in subcellular level. In vitro and in vivo murine studies have demonstrated that MNs are capable of delivering HAZ@Fu NPs deep into the dermal layers. And facilitated by the HA coating, HAZ@Fu NPs could target MRSA surviving at the subcellular level. The effective components, such as zinc ions, Fu, and hyaluronic acid could sustainably released, which contributes to antibacterial activity, mitigates inflammation, promotes epithelial regeneration and fosters neovascularization. Through the RNA sequencing of macrophages post co-culture with HAZ@Fu, the Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analysis reveals that the biological functionalities associated with wound healing could potentially be facilitated through the PI3K-Akt pathway. The results indicate that the synergistic application of HAZ@Fu NPs with biodegradable MNs may serve as a significant adjunct in the treatment of infected wounds. The intricate mechanisms driving its biological effects merit further investigation.
Insights
This study developed microneedle patches (MNs) with novel nanoparticles (HAZ@Fu NPs) to treat infected wounds. These HAZ@Fu MNs effectively target and eliminate drug-resistant bacteria, reduce inflammation, and promote tissue regeneration for improved wound healing.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Wound Healing Research
Background:
- Infected wound healing is complicated by drug-resistant pathogens, persistent inflammation, and intracellular bacterial persistence.
- Current treatments face challenges in effectively delivering antimicrobials and promoting tissue regeneration simultaneously.
Purpose of the Study:
- To develop a multifunctional microneedle patch (MN) system for enhanced infected wound healing.
- To create nanoparticles (HAZ@Fu NPs) with antibacterial and anti-inflammatory properties for targeted drug delivery.
- To investigate the efficacy of HAZ@Fu NPs loaded MNs in a murine model of Methicillin-resistant Staphylococcus aureus (MRSA) infected wounds.
Main Methods:
- Synthesized zeolitic imidazolate framework-8 nanoparticles (ZIF-8 NPs) loaded with fucoidan (Fu) and coated with hyaluronic acid (HA) to form HAZ@Fu NPs.
- Loaded HAZ@Fu NPs into photocrosslinked gelatin methacryloyl (GelMA) microneedle patches (HAZ@Fu MNs).
- Administered HAZ@Fu MNs to mice with MRSA-infected full-thickness cutaneous wounds and evaluated therapeutic effects in vitro and in vivo.
Main Results:
- HAZ@Fu NPs demonstrated inhibition of MRSA growth and promoted M2 macrophage polarization.
- HAZ@Fu MNs effectively delivered nanoparticles into the dermal layer, targeting MRSA at the subcellular level via HA receptor CD44.
- Sustained release of zinc ions, fucoidan, and hyaluronic acid contributed to antibacterial activity, reduced inflammation, and promoted tissue regeneration and neovascularization.
- RNA sequencing analysis indicated that the PI3K-Akt pathway may facilitate wound healing functionalities.
Conclusions:
- The synergistic combination of HAZ@Fu NPs and biodegradable MNs shows significant potential as an adjunct therapy for infected wounds.
- The developed system offers targeted delivery, antibacterial action, and promotion of regenerative processes for effective wound management.
- Further investigation into the intricate mechanisms underlying the biological effects is warranted.
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