AbstractA study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy containing 1% calcium (Mg–Ca) were investigated in in vitro culture conditions with and without the presence of bone marrow derived human mesenchymal stem cells (hMSCs). Chemical analysis of the degraded samples was performed using XRD and FEGSEM. The results from the XRD analysis strongly suggested that crystalline phase of magnesium carbonate was present on the surface of both the Mg and Mg–Ca samples. Flame absorption spectrometry was used to analyse the release of magnesium and calcium ions into the cell culture medium. Magnesium concentration was kept consistently at a level ranging from 40 to 80mM for both Mg and Mg–Ca samples. No c...
Magnesium (Mg) and its alloys provide numerous unique benefits as potential resorptive biomaterials ...
Magnesium alloys are promising orthopaedic bioresorbable implant candidates, however, their inherent...
Abstract: The use of magnesium and its alloys as biode-gradable metallic implant materials requires ...
A study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy cont...
As bioabsorbable materials, magnesium alloys are expected to be totally degraded in the body and the...
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...
Magnesium (Mg)-based alloys have been extensively considered as biodegradable implant materials for ...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
Biodegradable magnesium (Mg) has garnered attention for its use in orthopaedic implants due to mecha...
Background. Pure magnesium and its alloys are promising biodegradable biomaterials for cardiovascula...
Magnesium (Mg) and its alloys are emerging biomaterials for orthopaedic and vascular stent applicati...
Three Mg alloys, Mg–1.34% Ca–3% Zn (MCZ), Mg–1.34% Ca–3% Zn–0.2% Sr (MCZS), and Mg–2% Sr (MS), were ...
This work is focused on the processes occurring at the bioabsorbable metallic biomaterial/cell inter...
The aim of this study was to gain an understanding on the collective cellular effects of magnesium (...
Magnesium (Mg) and its alloys provide numerous unique benefits as potential resorptive biomaterials ...
Magnesium alloys are promising orthopaedic bioresorbable implant candidates, however, their inherent...
Abstract: The use of magnesium and its alloys as biode-gradable metallic implant materials requires ...
A study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy cont...
As bioabsorbable materials, magnesium alloys are expected to be totally degraded in the body and the...
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...
Magnesium (Mg)-based alloys have been extensively considered as biodegradable implant materials for ...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
Biodegradable magnesium (Mg) has garnered attention for its use in orthopaedic implants due to mecha...
Background. Pure magnesium and its alloys are promising biodegradable biomaterials for cardiovascula...
Magnesium (Mg) and its alloys are emerging biomaterials for orthopaedic and vascular stent applicati...
Three Mg alloys, Mg–1.34% Ca–3% Zn (MCZ), Mg–1.34% Ca–3% Zn–0.2% Sr (MCZS), and Mg–2% Sr (MS), were ...
This work is focused on the processes occurring at the bioabsorbable metallic biomaterial/cell inter...
The aim of this study was to gain an understanding on the collective cellular effects of magnesium (...
Magnesium (Mg) and its alloys provide numerous unique benefits as potential resorptive biomaterials ...
Magnesium alloys are promising orthopaedic bioresorbable implant candidates, however, their inherent...
Abstract: The use of magnesium and its alloys as biode-gradable metallic implant materials requires ...