Biocompatible, degradable thermoplastic polyurethane based on polycaprolactone-block-polytetrahydrofuran-block-polycaprolactone copolymers for soft tissue engineering

Биосовместимый биоразлагаемый термопластичный полиуретан на основе сополимеров поликапролактон-блок-политетрагидрофуран-блок-поликапролактон для инженерии мягких тканей
Guojun Chen, Lih‐Sheng Turng, Hao‐Yang Mi, Xin Jing, Brett N. Napiwocki, Breanna S. Hagerty
2017-01-01

electrospun fibrous scaffoldshydrolytic degradationpolycaprolactone-block-polytetrahydrofuran-block-polycaprolactonesoft tissue engineeringthermoplastic polyurethane elastomer
Biodegradable synthetic polymers have been widely used as tissue engineering scaffold materials. Even though they have shown excellent biocompatibility, they have failed to resemble the low stiffness and high elasticity of soft tissues because of the presence of massive rigid ester bonds. Herein, we synthesized a new thermoplastic polyurethane elastomer (CTC-PU(BET)) using poly ester ether triblock copolymer (polycaprolactone-block-polytetrahydrofuran-block-polycaprolactone triblock copolymer, PCTC) as the soft segment, aliphatic diisocyanate (hexamethylene diisocyanate, HDI) as the hard segment, and degradable diol (bis(2-hydroxyethyl) terephthalate, BET) as the chain extender. PCTC inhibited crystallization and reduced the melting temperature of CTC-PU(BET), and BET dramatically enhanced the thermal decomposition and hydrolytic degradation rate when compared with conventional polyester-based biodegradable TPUs. The CTC-PU(BET) synthesized in this study possessed a low tensile modulus and tensile strength of 2.2 MPa and 1.3 MPa, respectively, and an elongation-at-break over 700%. Meanwhile, it maintained a 95.3% recovery rate and 90% resilience over ten cycles of loading and unloading. In addition, the TPU could be electrospun into both random and aligned fibrous scaffolds consisting of major microfibers and nanobranches. 3T3 fibroblast cell culture confirmed that these scaffolds outperformed the conventional biodegradable TPU scaffolds in terms of substrate-cellular interactions and cell proliferation. Considering the advantages of this TPU, such as ease of synthesis, low cost, low stiffness, high elasticity, controllable degradation rate, ease of processability, and excellent biocompatibility, it has great prospects to be used as a tissue engineering scaffold material for soft tissue regeneration.
1
A new biodegradable thermoplastic polyurethane elastomer was synthesized using a polycaprolactone-block-polytetrahydrofuran-block-polycaprolactone soft segment, HDI hard segment, and degradable BET chain extender.
2
Electrospun random and aligned scaffolds supported improved fibroblast substrate interactions and proliferation compared with conventional biodegradable TPU scaffolds.
3
The material showed 95.3% recovery and 90% resilience after ten loading-unloading cycles, demonstrating high elastic recoverability.
4
The polyurethane exhibited low tensile modulus and strength of 2.2 MPa and 1.3 MPa, respectively, with elongation-at-break exceeding 700%.
5
The triblock copolymer inhibited crystallization and lowered the polyurethane melting temperature, while BET enhanced thermal decomposition and hydrolytic degradation relative to conventional polyester-based biodegradable TPUs.

CTC-PU(BET) thermoplastic polyurethane elastomer and its electrospun fibrous scaffolds for soft tissue engineering

The elastomer’s mechanical elasticity, thermal and hydrolytic degradation behavior, processability, biocompatibility, and scaffold–cell interactions for soft tissue regeneration

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2017-01-01
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Guojun Chen
Lih‐Sheng Turng
Hao‐Yang Mi
Xin Jing
Brett N. Napiwocki
Breanna S. Hagerty
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