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Poly(lactide-co-glycolide)-Hydroxyapatite Composites: The Development of Osteoinductive Scaffolds for Bone Regenerative Engineering

机译:聚(丙交酯 - 共乙酰胺) - 羟基磷灰石复合材料:骨再生工程骨诱导支架的发展

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Regenerative engineering represents a new multidisciplinary paradigm to engineer complex tissues, organs, or organ systems through the integration of tissue engineering with advanced materials science, stem cell science and developmental biology. While possessing elements of tissue engineering, regenerative medicine, and morphogenesis, regenerative engineering is distinct from these individual disciplines since it specifically focuses on the integration and subsequent response of stem cells to biomaterials. One goal of regenerative engineering is the design of materials capable of inducing associated cells toward highly specialized functions. For example, the interaction of cells with calcium phosphate surfaces has proven to be an important signaling modality in promoting osteogenic differentiation. A biodegradable polymer-ceramic composite system has been developed from poly(lactide-co- glycolide) and in situ synthesized hydroxyapatite based on the three-dimensional sintered microsphere matrix platform. We have systematically optimized scaffold physico-chemical, mechanical, and structural properties for bone tissue regeneration applications by varying several parameters such as solution pH, polymer:ceramic ratio, sintering time and sintering temperature. The bioactivity of composite scaffolds is attributed to their ability to deliver calcium ions to surrounding medium and allow for reprecipitation of calcium phosphate on the scaffold surface. Furthermore, the composite scaffolds have demonstrated increased loading capacity of osteoinductive growth factor (BMP-2) and a more sustained release profile due to a greater number of adsorption sites provided by the ionic calcium and phosphate groups as well as a larger matrix surface area. In vitro cell studies were performed to investigate the efficacy of this composite system to induce osteogenic differentiation of human adipose-derived stem cells. Cells cultured on the ceramic containing scaffolds exhibited significantly higher expression of osteoblastic markers and greater extracellular matrix mineralization than non-ceramic containing scaffolds, indicating the potential for the ceramic phase to promote osteogenic differentiation. In addition, loaded BMP-2 retained its bioactivity as a mitogen and osteoinductive agent during the differentiation of adipose-derived stem cells into mature osteoblasts. In vivo evaluation using a critical-sized ulnar defect model in New Zealand white rabbits demonstrated the ability of composite scaffolds to support cellular infiltration throughout the scaffold pore structure and vascularization of new tissue, as well as facilitate formation of newly mineralized bone tissue. The work described herein provides strong evidence for the potential of polymer-ceramic composite scaffolds to function as osteoinductive bone graft substitutes, and paves the way for future development of advanced tissue-inducing materials.
机译:再生工程代表了一种新的多学科范式通过整合组织工程与先进材料科学工程师复杂的组织,器官或器官系统,干细胞科学和发育生物学。同时具有组织工程,再生医学,和形态发生的元素,再生工程是从这些个体学科不同,因为它具体地侧重于一体化和生物材料的干细胞的后续响应。再生工程的目标之一是能够诱导向高度专业化的功能相关的细胞材料的设计。例如,用磷酸钙表面细胞的相互作用已被证明是在促进成骨细胞分化的重要信号模式。一种可生物降解的聚合物 - 陶瓷复合系统已经从聚(丙交酯 - 共 - 乙交酯)和在基于所述三维烧结微球基质平台上原位合成的羟基磷灰石显影。我们已经系统地优化支架的物理 - 化学,机械,以及通过改变若干参数,例如溶液的pH,聚合物用于骨组织再生应用中的结构性质:陶瓷比,烧结时间和烧结温度。复合支架的生物活性是由于其提供钙离子周围介质并且允许所述支架表面上的磷酸钙的再沉淀的能力。的骨诱导生长因子此外,复合支架已经证明增加的负载容量(BMP-2),并且由于由钙离子和磷酸基,以及作为一个更大的基体表面积提供吸附位点的更大数量的更持久的释放曲线。在体外进行细胞研究,以调查该复合系统的功效以诱导人的脂肪来源的干细胞的成骨分化。在陶瓷含有支架上培养细胞表现出成骨细胞标志物和更大的细胞外基质的矿化比非陶瓷含有支架的显著更高的表达,这表明陶瓷相以促进成骨细胞分化的潜能。此外,加载BMP-2保留脂肪来源的干细胞分化成成骨细胞成熟过程中它作为促细胞分裂剂和骨诱导剂的生物活性。在使用在新西兰的临界尺寸的尺缺损模型体内评价白兔证实复合支架的支持整个支架孔结构和新组织的血管细胞浸润的能力,以及促进形成新矿化骨组织。工作本文描述提供了一种用于聚合物 - 陶瓷复合物的支架用作骨诱导骨移植替代的潜在有力的证据,并铺平了先进的组织诱导材料今后发展的方式。

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