short-term response of human undifferentiated cells on three magnesium alloys and high-purity magnesium (Mg).The degradation parameters of magnesium-silver (Mg2Ag), magnesium-gadolinium (Mg10Gd) and magnesium-rare-earth (Mg4Y3RE) alloys were analysed after 1, 2, and 3 days of incubation in cell culture medium under cell culture condition. Changes in cell viability and cell adhesion were evaluated by culturing human umbilical cord perivascular cells on corroded Mg materials to examine how the degradation influences the cellular development.The pH and osmolality of the medium increased with increasing degradation rate and it was found to be most pronounced for Mg4Y3RE alloy. The biological observations showed that HUCPV exhibited a more homo...
The biocompatibility of Magnesium-based materials (MBMs) is critical to the safety of biodegradable ...
Magnesium (Mg) and its alloys are emerging biomaterials for orthopaedic and vascular stent applicati...
Magnesium (Mg) and its alloys provide numerous unique benefits as potential resorptive biomaterials ...
Background Magnesium alloys are of particular interest in medical science since they provide compat...
This study investigated the effect of biodegradable Mg and Mg alloys on selected properties of MC3T3...
In this study, the influence of living cells (L929) on the in vitro degradation behaviour of a magne...
AbstractA study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium al...
Magnesium (Mg) is a promising biodegradable metallic material for applications in cellular/tissue en...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Abstract: The use of magnesium and its alloys as biode-gradable metallic implant materials requires ...
This work is focused on the processes occurring at the bioabsorbable metallic biomaterial/cell inter...
A study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy cont...
High-purity magnesium (Mg) is a promising biodegradable metal for oral and maxillofacial implants. A...
The postdegradation effect of pure Mg, Mg-1Y, Mg-5Al, and Mg-2Ca alloys on the differentiation, prol...
As a new generation of medical degradable biomaterials, magnesium alloys were known as "revolutionar...
The biocompatibility of Magnesium-based materials (MBMs) is critical to the safety of biodegradable ...
Magnesium (Mg) and its alloys are emerging biomaterials for orthopaedic and vascular stent applicati...
Magnesium (Mg) and its alloys provide numerous unique benefits as potential resorptive biomaterials ...
Background Magnesium alloys are of particular interest in medical science since they provide compat...
This study investigated the effect of biodegradable Mg and Mg alloys on selected properties of MC3T3...
In this study, the influence of living cells (L929) on the in vitro degradation behaviour of a magne...
AbstractA study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium al...
Magnesium (Mg) is a promising biodegradable metallic material for applications in cellular/tissue en...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Abstract: The use of magnesium and its alloys as biode-gradable metallic implant materials requires ...
This work is focused on the processes occurring at the bioabsorbable metallic biomaterial/cell inter...
A study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy cont...
High-purity magnesium (Mg) is a promising biodegradable metal for oral and maxillofacial implants. A...
The postdegradation effect of pure Mg, Mg-1Y, Mg-5Al, and Mg-2Ca alloys on the differentiation, prol...
As a new generation of medical degradable biomaterials, magnesium alloys were known as "revolutionar...
The biocompatibility of Magnesium-based materials (MBMs) is critical to the safety of biodegradable ...
Magnesium (Mg) and its alloys are emerging biomaterials for orthopaedic and vascular stent applicati...
Magnesium (Mg) and its alloys provide numerous unique benefits as potential resorptive biomaterials ...