Magnesium (Mg) alloys are promising scaffolds for the next generation of cardiovascular stents because of their better biocompatibility and biodegradation compared to traditional metals. However, insufficient mechanical strength and high degradation rate are still the two main limitations for Mg materials. Hydrofluoric acid (HF) treatment and collagen coating were used in this research to improve the endothelialization of two rare earth-based Mg alloys. Results demonstrated that a nanoporous film structure of fluoride with thickness of ~20 µm was formed on the Mg material surface, which improved the corrosion resistance. Primary human coronary artery endothelial cells (HCAECs) had much better attachment, spreading, growth and proliferation ...
Magnesium (Mg)-based biodegradable materials are promising candidates for the new generation of impl...
Bioabsorbable vascular stents in magnesium alloys provide an attractive alternative to standard stai...
SummaryMagnesium (Mg)-based biodegradable materials are promising candidates for the new generation ...
Magnesium (Mg) alloys are promising scaffolds for the next generation of cardiovascular stents becau...
Abstract: Magnesium (Mg) alloys are promising scaffolds for the next generation of cardiovascular st...
ABSTRACT: Magnesium (Mg) alloys have revolutionized the application of temporary load-bearing implan...
Magnesium (Mg) based alloys are the most advanced cardiovascular stent materials. This new generatio...
Magnesium (Mg) based alloys are the most advanced cardiovascular stent materials. This new generatio...
Problems of rapid degradation and poor biocompatibility (endothelialization and hemocompatibility) l...
Magnesium (Mg) and its alloys, as potential biodegradable materials, have drawn wide attention in th...
Metal stents are used as base material for fabrication of medical devices to support and improve the...
Owing to excellent mechanical property and biodegradation, magnesium-based alloys have been widely i...
Magnesium (Mg) alloy has attracted significant attention as a bioresorbable scaffold for use as a ne...
Bioresorbable cardiovascular scaffold (BCS) is promising to eliminate the chronic complications caus...
Due to their good biodegradability and biocompatibility, magnesium alloys are widely favored as the ...
Magnesium (Mg)-based biodegradable materials are promising candidates for the new generation of impl...
Bioabsorbable vascular stents in magnesium alloys provide an attractive alternative to standard stai...
SummaryMagnesium (Mg)-based biodegradable materials are promising candidates for the new generation ...
Magnesium (Mg) alloys are promising scaffolds for the next generation of cardiovascular stents becau...
Abstract: Magnesium (Mg) alloys are promising scaffolds for the next generation of cardiovascular st...
ABSTRACT: Magnesium (Mg) alloys have revolutionized the application of temporary load-bearing implan...
Magnesium (Mg) based alloys are the most advanced cardiovascular stent materials. This new generatio...
Magnesium (Mg) based alloys are the most advanced cardiovascular stent materials. This new generatio...
Problems of rapid degradation and poor biocompatibility (endothelialization and hemocompatibility) l...
Magnesium (Mg) and its alloys, as potential biodegradable materials, have drawn wide attention in th...
Metal stents are used as base material for fabrication of medical devices to support and improve the...
Owing to excellent mechanical property and biodegradation, magnesium-based alloys have been widely i...
Magnesium (Mg) alloy has attracted significant attention as a bioresorbable scaffold for use as a ne...
Bioresorbable cardiovascular scaffold (BCS) is promising to eliminate the chronic complications caus...
Due to their good biodegradability and biocompatibility, magnesium alloys are widely favored as the ...
Magnesium (Mg)-based biodegradable materials are promising candidates for the new generation of impl...
Bioabsorbable vascular stents in magnesium alloys provide an attractive alternative to standard stai...
SummaryMagnesium (Mg)-based biodegradable materials are promising candidates for the new generation ...