In vitro triple cultures of human primary osteoblasts, osteocytes and osteoclasts can potentially help to analyze the effect of drugs and degradation products of biomaterials as a model for native bone tissue. In the present study, degradation products of Magnesium (Mg), which has been successfully applied in the biomedical field, were studied with respect to their impact on bone cell morphology and differentiation both in osteocyte single cultures and in the triple culture model. Fluorescence microscopic and gene expression analysis, analysis of osteoclast- and osteoblast-specific enzyme activities as well as osteocalcin protein expression were performed separately for the three cell types after cultivation in triple culture in the presenc...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Bone fractures are common injuries that typically require surgical treatments involving internal fix...
Biodegradable magnesium and its alloys are new-generation materials for orthopaedic implants. In vit...
Magnesium-based implants exhibit various advantages such as biodegradability and potential for enhan...
The postdegradation effect of pure Mg, Mg-1Y, Mg-5Al, and Mg-2Ca alloys on the differentiation, prol...
Magnesium alloys have been studied as a candidate material for bone regeneration devices due to thei...
Several studies in humans indicate that both high and low concentrations of magnesium have harmful e...
Magnesium (Mg) is a promising biodegradable metallic material for applications in cellular/tissue en...
Magnesium, a promising biodegradable metal, has been reported in several studies to increase bone fo...
Background Magnesium alloys are of particular interest in medical science since they provide compat...
Biodegradable magnesium (Mg) has garnered attention for its use in orthopaedic implants due to mecha...
Biomedical applications of magnesium (Mg) and its alloys are generally dependent on their degradatio...
Magnesium has a key role in osteoporosis and could enhance implant osseointegration in osteoporotic ...
Magnesium has a key role in osteoporosis and could enhance implant osseointegration in osteoporotic ...
Magnesium-based alloys have been fabricated into implants including the orthopedic fixation devices ...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Bone fractures are common injuries that typically require surgical treatments involving internal fix...
Biodegradable magnesium and its alloys are new-generation materials for orthopaedic implants. In vit...
Magnesium-based implants exhibit various advantages such as biodegradability and potential for enhan...
The postdegradation effect of pure Mg, Mg-1Y, Mg-5Al, and Mg-2Ca alloys on the differentiation, prol...
Magnesium alloys have been studied as a candidate material for bone regeneration devices due to thei...
Several studies in humans indicate that both high and low concentrations of magnesium have harmful e...
Magnesium (Mg) is a promising biodegradable metallic material for applications in cellular/tissue en...
Magnesium, a promising biodegradable metal, has been reported in several studies to increase bone fo...
Background Magnesium alloys are of particular interest in medical science since they provide compat...
Biodegradable magnesium (Mg) has garnered attention for its use in orthopaedic implants due to mecha...
Biomedical applications of magnesium (Mg) and its alloys are generally dependent on their degradatio...
Magnesium has a key role in osteoporosis and could enhance implant osseointegration in osteoporotic ...
Magnesium has a key role in osteoporosis and could enhance implant osseointegration in osteoporotic ...
Magnesium-based alloys have been fabricated into implants including the orthopedic fixation devices ...
Medical implants are devices that are often placed inside the human body to provide support to organ...
Bone fractures are common injuries that typically require surgical treatments involving internal fix...
Biodegradable magnesium and its alloys are new-generation materials for orthopaedic implants. In vit...