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人类代谢物衍生的琥珀酸烷基酯/亚油酸共聚物:从合成到应用。

Human metabolite-derived alkylsuccinate/dilinoleate copolymers: from synthesis to application.

机构信息

Institute of Macromolecular Chemistry v.v.i., Academy of Sciences of the Czech Republic, Heyrovsky Sq. 2, 162 06 Prague 6, Czech Republic.

Institute of Polymers, Composites and Biomaterials, National Research Council, Mostrad'Oltremare Pad.20, Viale Kennedy 54, 80125 Naples, Italy.

出版信息

J Mater Chem B. 2020 Nov 11;8(43):9980-9996. doi: 10.1039/d0tb02068k.

DOI:10.1039/d0tb02068k
PMID:33073835
Abstract

The advances in polymer chemistry have allowed the preparation of biomedical polymers using human metabolites as monomers that can hold unique properties beyond the required biodegradability and biocompatibility. Herein, we demonstrate the use of endogenous human metabolites (succinic and dilinoleic acids) as monomeric building blocks to develop a new series of renewable resource-based biodegradable and biocompatible copolyesters. The novel copolyesters were characterized in detail employing several standard techniques, namely 1H NMR, 13C NMR, and FTIR spectroscopy and SEC, followed by an in-depth thermomechanical and surface characterization of their resulting thin films (DSC, TGA, DMTA, tensile tests, AFM, and contact angle measurements). Also, their anti-fungal biofilm properties were assessed via an anti-fungal biofilm assay and the biological properties were evaluated in vitro using relevant human-derived cells (human mesenchymal stem cells and normal human dermal fibroblasts). These novel highly biocompatible polymers are simple and cheap to prepare, and their synthesis can be easily scaled-up. They presented good mechanical, thermal and anti-fungal biofilm properties while also promoting cell attachment and proliferation, outperforming well-known polymers used for biomedical applications (e.g. PVC, PLGA, and PCL). Moreover, they induced morphological changes in the cells, which were dependent on the structural characteristics of the polymers. In addition, the obtained physicochemical and biological properties can be design-tuned by the synthesis of homo- and -copolymers through the selection of the diol moiety (ES, PS, or BS) and by the addition of a co-monomer, DLA. Consequently, the copolyesters presented herein have high application potential as renewable and cost-effective biopolymers for various biomedical applications.

摘要

聚合物化学的进步使得可以使用人类代谢物作为单体来制备生物医学聚合物,这些单体具有超越所需生物降解性和生物相容性的独特性能。在这里,我们展示了使用内源性人类代谢物(琥珀酸和亚油酸)作为单体构建块来开发一系列新型可再生资源可生物降解和生物相容的共聚酯。使用几种标准技术详细表征了新型共聚酯,即 1H NMR、13C NMR 和 FTIR 光谱以及 SEC,随后对其所得薄膜进行了深入的热机械和表面表征(DSC、TGA、DMTA、拉伸试验、AFM 和接触角测量)。此外,通过抗真菌生物膜测定评估了它们的抗真菌生物膜性能,并通过相关的人类来源细胞(人骨髓间充质干细胞和正常人类真皮成纤维细胞)在体外评估了它们的生物学性能。这些新型高度生物相容的聚合物制备简单且廉价,其合成易于放大。它们具有良好的机械、热和抗真菌生物膜性能,同时还促进了细胞附着和增殖,性能优于用于生物医学应用的知名聚合物(例如 PVC、PLGA 和 PCL)。此外,它们诱导细胞形态发生变化,这取决于聚合物的结构特征。此外,通过选择二醇部分(ES、PS 或 BS)和添加共单体 DLA 来合成均聚物和共聚物,可以设计调整所获得的物理化学和生物学特性。因此,本文所述的共聚酯具有作为可再生和具有成本效益的生物聚合物用于各种生物医学应用的高应用潜力。

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