Magnesium alloys are presently under investigation as promising biodegradable implant materials with osteoconductive properties. To study the molecular mechanisms involved, the potential contribution of soluble magnesium corrosion products to the stimulation of osteoblastic cell differentiation was examined. However, no evidence for the stimulation of osteoblast differentiation could be obtained when cultured mesenchymal precursor cells were differentiated in the presence of metallic magnesium or in cell culture medium containing elevated magnesium ion levels. Similarly, in soft tissue no bone induction by metallic magnesium or by the corrosion product magnesium hydroxide could be observed in a mouse model. Motivated by the comparatively ra...
Biodegradable bone implants have the ability to be resorbed and removed from the human body after th...
A study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy cont...
Background. Pure magnesium and its alloys are promising biodegradable biomaterials for cardiovascula...
Magnesium alloys are presently under investigation as promising biodegradable implant materials with...
Magnesium alloys have been proposed as prospective degradable implant materials. To elucidate the co...
The world is facing an aging population and also there is an increase in war, and sports related inj...
Biodegradable magnesium (Mg) has garnered attention for its use in orthopaedic implants due to mecha...
Magnesium (Mg) was originally developed as a degradable metallic biomaterial for orthopaedic applica...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
The aim of this study was to gain an understanding on the collective cellular effects of magnesium (...
99 p.Metallic materials are essential element for biomaterials to assist with the repair or replacem...
Medical implants made of biodegradable materials could be advantageous for temporary applications, s...
Magnesium alloys have promising mechanical and biological properties for the development of degradab...
Magnesium is one of the most active metals and is prone to corrosion. In construction, automotive an...
In magnesium alloys, the components used modify the alloy properties. For magnesium implants in cont...
Biodegradable bone implants have the ability to be resorbed and removed from the human body after th...
A study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy cont...
Background. Pure magnesium and its alloys are promising biodegradable biomaterials for cardiovascula...
Magnesium alloys are presently under investigation as promising biodegradable implant materials with...
Magnesium alloys have been proposed as prospective degradable implant materials. To elucidate the co...
The world is facing an aging population and also there is an increase in war, and sports related inj...
Biodegradable magnesium (Mg) has garnered attention for its use in orthopaedic implants due to mecha...
Magnesium (Mg) was originally developed as a degradable metallic biomaterial for orthopaedic applica...
Magnesium (Mg) and its alloys were initially investigated as resorbable orthopaedic biomaterials mor...
The aim of this study was to gain an understanding on the collective cellular effects of magnesium (...
99 p.Metallic materials are essential element for biomaterials to assist with the repair or replacem...
Medical implants made of biodegradable materials could be advantageous for temporary applications, s...
Magnesium alloys have promising mechanical and biological properties for the development of degradab...
Magnesium is one of the most active metals and is prone to corrosion. In construction, automotive an...
In magnesium alloys, the components used modify the alloy properties. For magnesium implants in cont...
Biodegradable bone implants have the ability to be resorbed and removed from the human body after th...
A study of biocompatibility and corrosion of both metallic magnesium (Mg) and a magnesium alloy cont...
Background. Pure magnesium and its alloys are promising biodegradable biomaterials for cardiovascula...