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Ultravysokomolekulární polyethylen ve vnitřním prostředí lidského těla
[Ultra-high molecular weight polyethylene in the internal environment of the human body]
Michaela Vyroubalová, Zdeněk Kruliš
Jazyk čeština Země Česko
Typ dokumentu práce podpořená grantem
- MeSH
- alfa-tokoferol chemie MeSH
- antioxidancia chemie klasifikace MeSH
- chemické jevy MeSH
- ionizující záření MeSH
- lidé MeSH
- oxidace-redukce MeSH
- polyethylen * chemie MeSH
- protézy kloubů * MeSH
- selhání protézy MeSH
- synoviální tekutina MeSH
- Check Tag
- lidé MeSH
- Publikační typ
- práce podpořená grantem MeSH
Ultra-high molecular weight polyethylene (UHMWPE) is the most important but, at the same time, the most vulnerable component of the total joint replacements. It is mainly used in hip and knee replacements. UHMWPE liners are the most loaded components of the implants. Consequently, the main material-related reasons of artificial joint failures are wear and oxidative degradation of the polymer. Resistance to wear is increased by radiation-induced crosslinking. Oxidation stability is enhanced by means of suitable thermal treatment. The most recent trend is to employ a biocompatible stabilizer based on the α-tocopherol in combination with suitable types of steric hindered amines for further improvement and fine-tuning of UHMWPE performance. This review summarizes the recent developments in UHMWPE modifications which should further increase lifespan of total joint replacements.
Ultra-high molecular weight polyethylene in the internal environment of the human body
Literatura
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- $a Vyroubalová, Michaela $7 _AN098359 $u Ústav makromolekulární chemie AV ČR, v.v.i., Praha
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- $a Ultra-high molecular weight polyethylene (UHMWPE) is the most important but, at the same time, the most vulnerable component of the total joint replacements. It is mainly used in hip and knee replacements. UHMWPE liners are the most loaded components of the implants. Consequently, the main material-related reasons of artificial joint failures are wear and oxidative degradation of the polymer. Resistance to wear is increased by radiation-induced crosslinking. Oxidation stability is enhanced by means of suitable thermal treatment. The most recent trend is to employ a biocompatible stabilizer based on the α-tocopherol in combination with suitable types of steric hindered amines for further improvement and fine-tuning of UHMWPE performance. This review summarizes the recent developments in UHMWPE modifications which should further increase lifespan of total joint replacements.
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