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Published on: October 26, 2016
Microneedle Stent for Intravascular Anchoring Effect
GeonA Kim1, Dong-Sung Won2, Dong-Su Kim3
1Department of Mechanical Engineering, Incheon National University, Incheon, Republic of Korea.
Insights
This study introduces a novel microneedle stent (MNS) to enhance vascular stent anchoring and stability. Microneedles improve stent fixation, potentially reducing complications and improving outcomes for cardiovascular disease patients.
Area of Science:
- Biomedical Engineering
- Materials Science
- Cardiovascular Research
Background:
- Cardiovascular diseases are a leading cause of death, often treated with stents.
- Current stents face complications like migration and dislodgement.
- Improved stent anchoring is crucial for better clinical outcomes.
Purpose of the Study:
- To develop and evaluate a novel microneedle stent (MNS) for enhanced vascular fixation.
- To explore the potential of microneedles for improving stent stability and reducing complications.
Main Methods:
- Microneedle arrays were integrated onto 3D-printed polycaprolactone stents using UV-curable resin transfer-molding.
- Microneedle structural fidelity, mechanical strength, and adhesion were characterized.
- In vitro flow studies and in vivo implantation were performed to assess anchoring and biocompatibility.
Main Results:
- The MNS demonstrated high structural fidelity and tunable mechanical properties.
- UV-crosslinking conditions controlled microneedle adhesion to the stent.
- In vitro and in vivo studies confirmed robust vascular fixation without adverse inflammatory responses.
Conclusions:
- This work presents the first integration of microneedles into vascular stents.
- The novel MNS offers a promising strategy to enhance stent stability and clinical outcomes.
- Microneedle technology holds potential for improving cardiovascular interventions.
Abstract:
Cardiovascular diseases remain the leading cause of death worldwide, largely due to sudden blockage or narrowing of coronary arteries, with myocardial infarction and angina as common outcomes. Stent implantation is a widely used intervention to restore vessel patency, offering advantages such as reduced invasiveness, faster recovery, and improved patient comfort compared to surgery. However, complications including in-stent restenosis, elastic recoil, and stent migration persist. Among these, stent dislodgement poses a particularly severe risk, underscoring the need for improved anchoring strategies. Microneedles (MNs), recognized for their minimal invasiveness and strong tissue-fixation capability, present an attractive but unexplored approach for vascular stents. Here, we report a novel microneedle stent (MNS) in which MN arrays were conformally integrated onto the surface of a 3D-printed polycaprolactone stent using a UV-curable resin transfer-molding process. The MNs exhibited high structural fidelity, tunable mechanical strength, and stable adhesion to the stent surface, governed by UV-crosslinking conditions. In vitro flow studies using a vessel phantom and peristaltic pump demonstrated robust anchoring under physiological conditions. Furthermore, in vivo implantation confirmed enhanced vascular fixation without adverse inflammatory responses. This work represents the first integration of MNs into vascular stents, offering a promising strategy to improve stent stability and clinical outcomes.
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