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Chitosan-PLGA polymer blends as coatings for hydroxyapatite nanoparticles and their effect on antimicrobial properties osteoconductivity and regeneration of osseous tissues

机译:壳聚糖-PLGA聚合物共混物作为羟基磷灰石纳米颗粒的涂料及其对抗菌性能骨传导性和骨组织再生的影响

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摘要

Composite biomaterials comprising nanostructured hydroxyapatite (HAp) have an enormous potential for natural bone tissue reparation, filling and augmentation. Chitosan (Ch) as a naturally derived polymer has many physicochemical and biological properties that make it an attractive material for use in bone tissue engineering. On the other hand, poly-D,L-lactide-co-glycolide (PLGA) is a synthetic polymer with a long history of use in sustained drug delivery and tissue engineering. However, while chitosan can disrupt the cell membrane integrity and may induce blood thrombosis, PLGA releases acidic byproducts that may cause tissue inflammation and interfere with the healing process. One of the strategies to improve the biocompatibility of Ch and PLGA is to combine them with compounds that exhibit complementary properties. In this study we present the synthesis and characterization, as well as in vitro and in vivo analyses of a nanoparticulate form of HAp coated with two different polymeric systems: (a) Ch and (b) a Ch-PLGA polymer blend. Solventon-solvent precipitation and freeze-drying were used for synthesis and processing, respectively, whereas thermogravimetry coupled with mass spectrometry was used for phase identification purposes in the coating process. HAp/Ch composite particles exhibited the highest antimicrobial activity against all four microbial strains tested in this work, but after the reconstruction of the bone defect they also caused inflammatory reactions in the newly formed tissue where the defect had lain. Coating HAp with a polymeric blend composed of Ch and PLGA led to a decrease in the reactivity and antimicrobial activity of the composite particles, but also to an increase in the quality of the newly formed bone tissue in the reconstructed defect area.
机译:包含纳米结构羟基磷灰石(HAp)的复合生物材料具有天然骨组织修复,填充和增强的巨大潜力。壳聚糖(Ch)是一种天然衍生的聚合物,具有许多物理化学和生物学特性,使其成为用于骨组织工程的有吸引力的材料。另一方面,聚-D,L-丙交酯-共-乙交酯(PLGA)是一种合成聚合物,在持续药物输送和组织工程中具有悠久的使用历史。然而,尽管壳聚糖会破坏细胞膜的完整性并可能导致血液血栓形成,但PLGA会释放酸性副产物,这些副产物可能导致组织发炎并干扰愈合过程。改善Ch和PLGA的生物相容性的策略之一是将它们与具有互补特性的化合物结合使用。在这项研究中,我们介绍了HAp纳米颗粒形式的合成,表征以及体外和体内分析,这些HAp包覆有两种不同的聚合物体系:(a)Ch和(b)Ch-PLGA聚合物共混物。溶剂/非溶剂沉淀法和冷冻干燥法分别用于合成和加工,而热重分析法与质谱法结合用于涂覆过程中的相鉴定。 HAp / Ch复合颗粒对这项工作中测试的所有四种微生物菌株均表现出最高的抗菌活性,但在重建骨缺损后,它们还会在缺损处新生的新形成的组织中引起炎症反应。用由Ch和PLGA组成的聚合物共混物涂覆HAp会导致复合颗粒的反应性和抗菌活性降低,但也会导致重建的缺损区域新形成的骨组织的质量提高。

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