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◆ In vivo (Athens, Greece)2026-01-01

Composite Coating-driven Regulation of In Vivo Magnesium Degradation and Tissue Response.

Tonya D Andreeva, Kim Burkhardt, Ole Jung, Sebastian Stammkötter, Sanja Stojanović, Stevo Najman, Frank Walther, Rumen Krastev, Mike Barbeck

一句话结论 · In one sentence

Overall, composite PEM/W coatings, especially those based on natural polyelectrolytes, represent a promising surface-engineering strategy for improving the safety and performance of resorbable magnesium implants.

原始摘要(英文原文)· Original abstract
BACKGROUND/AIM: Magnesium-based alloys are promising materials for fabrication of bioresorbable medical devices. The application is limited by rapid degradation and associated adverse tissue responses. In this study, nanometer-thin composite polyelectrolyte/wax (PEM/W) coatings were fabricated on magnesium-based implant prototypes to delay their degradation. MATERIALS AND METHODS: Coatings were applied using a layer-by-layer technique. Cytocompatibility was assessed according to DIN ISO 10993-5 using NIH/3T3 fibroblasts and human umbilical vein endothelial cells (HUVECs). Degradation behavior was monitored by high-resolution micro-computed tomography (μ-CT), while tissue compatibility and host responses were evaluated histologically following DIN EN ISO 10993-6. RESULTS: The coatings were continuous, hydrophobic (water contact angles exceeding 100°), with sub-micrometer thicknesses and were found to improve in vitro cytocompatibility of magnesium biomaterials. In vivo evaluation using a rat subcutaneous implantation model demonstrated that the effectiveness of magnesium degradation modulation depends on the type of employed PEM. Micro-computed tomography analyses revealed that the hyaluronic acid/chitosan/wax coating provided the most robust protection over 60 days, exhibiting the lowest volume loss and superior preservation of implant geometry compared to the uncoated samples. Correspondingly, hydrogen-related gas cavity formation was reduced and temporally delayed in coated implants, indicating a more controlled degradation process. Histopathological analysis shows a moderate inflammatory response characteristic of biodegradable metallic implants, dominated by macrophages and lymphocytes. Importantly, coated implants were associated with reduced late-stage fibrosis and necrosis compared to uncoated magnesium. CONCLUSION: Overall, composite PEM/W coatings, especially those based on natural polyelectrolytes, represent a promising surface-engineering strategy for improving the safety and performance of resorbable magnesium implants.
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Composite Coating-driven Regulation of In Vivo Magnesium Degradation and Tissue Response. — 科研速览 Science Skim