Biodegradable synthetic polymers for tissue engineering
Биоразлагаемые синтетические полимеры для тканевой инженерии
2003-10-01
SCID: 54.1/xxev8ah4
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biodegradable synthetic polymersdegradable polyurethanespoly(propylene fumarate)polyesterstissue engineering
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Abstract (AI)
This paper reviews biodegradable synthetic polymers focusing on their potential in tissue engineering applications. The major classes of polymers are briefly discussed with regard to synthesis, properties and biodegradability, and known degradation modes and products are indicated based on studies reported in the literature. A vast majority of biodegradable polymers studied belongs to the polyester family, which includes polyglycolides and polylactides. Some disadvantages of these polymers in tissue engineering applications are their poor biocompatibility, release of acidic degradation products, poor processability and loss of mechanical properties very early during degradation. Other degradable polymers such as polyorthoesters, polyanhydrides, polyphosphazenes, and polyurethanes are also discussed and their advantages and disadvantages summarised. With advancements in tissue engineering it has become necessary to develop polymers that meet more demanding requirements. Recent work has focused on developing injectable polymer compositions based on poly (propylene fumarate) and poly (anhydrides) to meet these requirements in orthopaedic tissue engineering. Polyurethanes have received recent attention for development of degradable polymers because of their great potential in tailoring polymer structure to achieve mechanical properties and biodegradability to suit a variety of applications.
Key Findings
1
Biodegradable synthetic polymers are reviewed for tissue engineering, including their synthesis, properties, biodegradability, degradation modes, and degradation products.
2
Most studied biodegradable polymers are polyesters, particularly polyglycolides and polylactides, but they present significant tissue-engineering limitations.
3
Polyester limitations include poor biocompatibility, acidic degradation products, poor processability, and early mechanical-property loss during degradation.
4
Polyorthoesters, polyanhydrides, polyphosphazenes, and polyurethanes offer alternative degradation and performance profiles, each with distinct advantages and disadvantages.
5
Recent research emphasizes injectable poly(propylene fumarate) and polyanhydride systems for orthopaedic tissue engineering, while polyurethanes enable tailoring mechanical properties and biodegradability.
Research Object
Biodegradable synthetic polymers used in tissue engineering
Research Subject
Their synthesis, properties, biodegradation mechanisms and products, biocompatibility, processability, mechanical-property retention, and suitability for tissue-engineering applications
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2003-10-01
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