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用于软组织工程的二元聚羟基烷酸酯体系。

Binary polyhydroxyalkanoate systems for soft tissue engineering.

机构信息

Applied Biotechnology Research Group, Department of Life Sciences, Faculty of Science and Technology, University of Westminster, London W1W 6UW, UK.

Applied Biotechnology Research Group, Department of Life Sciences, Faculty of Science and Technology, University of Westminster, London W1W 6UW, UK; Advanced Composites Collaboration for Science and Innovation, University of Bristol, Queen's Building, University Walk, Bristol BS8 1TR, UK.

出版信息

Acta Biomater. 2018 Apr 15;71:225-234. doi: 10.1016/j.actbio.2018.02.027. Epub 2018 Mar 2.

Abstract

UNLABELLED

Progress in tissue engineering is dependent on the availability of suitable biomaterials. In an effort to overcome the brittleness of poly(3-hydroxybutyrate), P(3HB), a natural biodegradable polyester, and widen its biomedical applications, plasticising of P(3HB) with oligomeric substances of related structure has been studied. A biosynthesised medium-chain-length polyhydroxyalkanoate (mcl-PHA) copolymer, the plasticiser precursor, was obtained using vegetable waste frying oil as a sole carbon source. The mcl-PHA was transformed into an oligomeric derivative by acid hydrolysis. The plasticising effect of the oligomeric mcl-PHA on P(3HB) was studied via characterisation of thermal and mechanical properties of the blends in the course of ageing at ambient conditions. Addition of oligomeric mcl-PHA to P(3HB) resulted in softer and more flexible materials based entirely on PHAs. It was shown that the oligomeric mcl-PHA transformed highly crystalline P(3HB) into materials with a dominant amorphous phase when the content of oligomeric mcl-PHA exceeded 10 wt%. In vitro biocompatibility studies of the new binary PHA materials showed high viability and proliferation of C2C12 myoblast cells. Thus, the proposed approach for P(3HB) plasticisation has the potential for the generation of more pliable biomaterials based on P(3HB) which can find application in unique soft tissue engineering applications where a balance between stiffness, tensile strength and ductility is required.

STATEMENT OF SIGNIFICANCE

Polyhydroxyalkanoates, a broad family of natural biodegradable and biocompatible polymers, have emerged as highly promising biomaterials both for bulk and biomedical applications. Here we describe an approach to tune the mechanical properties of stiff and brittle poly(3-hydroxybutyrate) and thereby to expand its potential biomedical applications. Plasticisation, a common practice in the plastic industry to modify polymer mechanical properties, has been used very cautiously for biomedical applications due to plasticiser toxicity and migration. We have developed a plasticiser for poly(3-hydroxybutyrate) based on a structurally related but softer and pliable medium chain length polyhydroxyalkanoate. Additives of oligomeric derivatives of this polymer improved ductility of poly(3-hydroxybutyrate), greatly widening the future applicability of this well-established biomaterial. In parallel, the binary polyhydroxyalkanoate materials also exhibited improved cell attachment and proliferation, a highly desirable outcome.

摘要

未加说明

组织工程的进展依赖于合适的生物材料的可用性。为了克服聚(3-羟基丁酸酯)(P(3HB))的脆性,作为一种天然可生物降解的聚酯,用具有相关结构的低聚物物质对 P(3HB)进行增塑已经被研究。一种生物合成的中链长度聚羟基烷酸酯(mcl-PHA)共聚物,即增塑剂前体,是用蔬菜废油作为唯一的碳源获得的。mcl-PHA 通过酸水解转化为低聚物衍生物。通过在环境条件下老化过程中对共混物的热和机械性能进行表征,研究了低聚物 mcl-PHA 对 P(3HB)的增塑作用。将低聚物 mcl-PHA 添加到 P(3HB)中,得到了完全基于 PHAs 的更软、更灵活的材料。结果表明,当低聚物 mcl-PHA 的含量超过 10wt%时,低聚物 mcl-PHA 将高度结晶的 P(3HB)转化为具有主要无定形相的材料。新的二元 PHA 材料的体外生物相容性研究表明,C2C12 成肌细胞具有高活力和增殖能力。因此,所提出的 P(3HB)增塑方法有可能产生更多基于 P(3HB)的柔韧生物材料,这些材料可以在需要刚度、拉伸强度和延展性之间平衡的独特软组织工程应用中找到应用。

意义声明

聚羟基烷酸酯,一种广泛的天然可生物降解和生物相容的聚合物家族,已经作为非常有前途的生物材料在块状和生物医学应用中出现。在这里,我们描述了一种调节硬而脆的聚(3-羟基丁酸酯)机械性能的方法,从而扩大其潜在的生物医学应用。增塑,一种在塑料工业中用于改变聚合物机械性能的常见做法,由于增塑剂的毒性和迁移,在生物医学应用中一直被谨慎使用。我们已经开发了一种基于结构相关但更软、更柔韧的中链长度聚羟基烷酸酯的聚(3-羟基丁酸酯)增塑剂。这种聚合物的低聚物衍生物的添加剂提高了聚(3-羟基丁酸酯)的延展性,大大拓宽了这种成熟生物材料的未来适用性。同时,二元聚羟基烷酸酯材料也表现出了改善的细胞附着和增殖,这是一个非常理想的结果。

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