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Biocompatible PBS-based copolymer for soft tissue engineering: Introduction of disulfide bonds as winning tool to tune the final properties

机译:软组织工程的生物相容性PBS的共聚物:将二硫键引入作为获胜工具来调整最终性质

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摘要

Thanks to the continuous progress of tissue engineering, the opportunity to overcome the main limits of traditional medicine is becoming more and more concrete. By a targeted study of biomaterials and their properties, it is possible to find ad hoc solutions for the fabrication of tissue engineered scaffolds. More in details, poly(butylene succinate) PBS is a biocompatible synthetic polymer already investigated for biomedical applications, but characterized by a high degree of crystallinity, which leads to long degradation times and mechanical properties often not suitable in the field of soft tissue engineering. In the present study, a PBS-based copolymer containing 30 mol% of dithiodipropionic co-units, P(BSBDTDP), was synthesized by two-step melt polycondensation. The comonomeric unit is characterized by the presence of -S-S- bond, potentially capable of improving both biocompatibility and biodegradability with respect to the homopolymer. After synthesis, 3D-mats and films were obtained by electrospinning and compression moulding, respectively, and then subjected to molecular, thermal and mechanical characterization. In addition, in view of a possible application in soft tissue engineering, enzymatic biodegradation studies and in vitro biocompatibility tests, using NIH-3T3 cell line, were also carried out. The results obtained show that through copolymerization solid-state properties could be nicely tailored. More in details, compared to PBS, P(BSBDTDP) is characterized by a lower crystallinity degree and mechanical properties typical of soft tissues, maintaining at the same time the good thermal stability of the parent homopolymer. In addition, copolymeric scaffold better supports cell adhesion and proliferation, undergoing degradation in biological environment slightly faster than its PBS homologous.
机译:由于组织工程的不断进展,克服传统医学主要限制的机会变得越来越具体。通过对生物材料的靶向研究及其性质,可以找到用于制造组织工程支架的临时解决方案。更详细的详细信息,聚(丁烯琥珀酸酯)PBS是已经研究过的生物医学应用的生物相容性合成聚合物,但其特征在于高度的结晶度,这导致长度降解时间和机械性能通常不适合于软组织工程领域。在本研究中,通过两步熔融缩聚合成了含有30mol%的二硫代替偶联共聚的PBS的共聚物,P(BSBDTDP)。共聚单位的特征在于存在-S-键,可能能够改善相对于均聚物的生物相容性和生物降解性。在合成后,通过静电纺丝和压缩成型获得3D垫和薄膜,然后进行分子,热和机械表征。另外,考虑到在软组织工程中可能的应用,还进行了使用NIH-3T3细胞系的酶生物降解研究和体外生物相容性测试。得到的结果表明,通过共聚固态性质可以很好地定制。更多详细信息,与PBS相比,P(BSBDTDP)的特征在于典型的软组织的结晶度和机械性能,同时保持亲本均聚物的良好热稳定性。此外,共聚支架更好地支持细胞粘附和增殖,在生物环境中经历的降解略微比其PBS同源更快。

著录项

  • 来源
    《Polymer Degradation and Stability》 |2020年第12期|109403.1-109403.11|共11页
  • 作者单位

    Civil Chemical Environmental and Materials Engineering Department University of Bologna Via Terracini 28 Bologna 40131 Italy;

    Civil Chemical Environmental and Materials Engineering Department University of Bologna Via Terracini 28 Bologna 40131 Italy;

    Institute of Organic Synthesis and Photoreactivity-ltalian National Research Council Via P. Gobetti 101 Bologna 40129 Italy;

    Department of Molecular Medicine Center for Health Technologies (CHT) INSTM UdR of Pavia University of Pavia Pavia Italy;

    Department of Chemistry Section of Physical Chemistry University of Pavia Viale Taramelli 16 Pavia 27100 Italy;

    Institute of Organic Synthesis and Photoreactivity-ltalian National Research Council Via P. Gobetti 101 Bologna 40129 Italy;

    Department of Molecular Medicine Center for Health Technologies (CHT) INSTM UdR of Pavia University of Pavia Pavia Italy;

    Civil Chemical Environmental and Materials Engineering Department University of Bologna Via Terracini 28 Bologna 40131 Italy;

    Civil Chemical Environmental and Materials Engineering Department University of Bologna Via Terracini 28 Bologna 40131 Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Poly(butylene succinate); Disulfide bonds; Electrospun scaffolds; Biocompatibility; Biodegradability; Soft tissue engineering;

    机译:聚(丁二琥珀酸);二硫键;Electromun脚手架;生物相容性;生物降解性;软组织工程;

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