Biobased polyurethanes for biomedical applications

Биологически основанные полиуретаны для медицинских применений
Luc Avérous, Sophie Wendels
2020-10-15

biobased polyurethanesbiodegradable polymersbiomedical applicationsbiomedical implantsshape-memory polyurethanes
Polyurethanes (PUs) are a major family of polymers displaying a wide spectrum of physico-chemical, mechanical and structural properties for a large range of fields. They have shown suitable for biomedical applications and are used in this domain since decades. The current variety of biomass available has extended the diversity of starting materials for the elaboration of new biobased macromolecular architectures, allowing the development of biobased PUs with advanced properties such as controlled biotic and abiotic degradation. In this frame, new tunable biomedical devices have been successfully designed. PU structures with precise tissue biomimicking can be obtained and are adequate for adhesion, proliferation and differentiation of many cell's types. Moreover, new smart shape-memory PUs with adjustable shape-recovery properties have demonstrated promising results for biomedical applications such as wound healing. The fossil-based starting materials substitution for biomedical implants is slowly improving, nonetheless better renewable contents need to be achieved for most PUs to obtain biobased certifications. After a presentation of some PU generalities and an understanding of a biomaterial structure-biocompatibility relationship, recent developments of biobased PUs for non-implantable devices as well as short- and long-term implants are described in detail in this review and compared to more conventional PU structures.
1
Biobased polyurethanes can provide controlled biotic and abiotic degradation, enabling biomedical devices with adjustable performance.
2
Biomass-derived feedstocks expand the design space for polyurethane architectures with tunable physicochemical, mechanical, and structural properties.
3
Polyurethane structures engineered to biomimic tissues support adhesion, proliferation, and differentiation of multiple cell types.
4
Replacing fossil-based feedstocks in biomedical implants is progressing slowly, and higher renewable content is still required for most PUs to achieve biobased certification.
5
Smart shape-memory biobased polyurethanes with adjustable shape recovery show promise for biomedical uses including wound healing.

Biobased polyurethanes for biomedical applications

their structure–property relationships, biocompatibility, degradation, tissue-biomimetic behavior, and shape-memory performance for biomedical applications

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2020-10-15
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Luc Avérous
Sophie Wendels
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