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Enhancing Osteoconduction of PLLA-Based Nanocomposite Scaffolds for Bone Regeneration Using Different Biomimetic Signals to MSCs

机译:使用不同的仿生信号向MSCs增强基于PLLA的纳米复合支架骨再生的骨传导。

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摘要

In bone engineering, the adhesion, proliferation and differentiation of mesenchymal stromal cells rely on signaling from chemico-physical structure of the substrate, therefore prompting the design of mimetic “extracellular matrix”-like scaffolds. In this study, three-dimensional porous poly-L-lactic acid (PLLA)-based scaffolds have been mixed with different components, including single walled carbon nanotubes (CNT), micro-hydroxyapatite particles (HA), and BMP2, and treated with plasma (PT), to obtain four different nanocomposites: PLLA + CNT, PLLA + CNTHA, PLLA + CNT + HA + BMP2 and PLLA + CNT + HA + PT. Adult bone marrow mesenchymal stromal cells (MSCs) were derived from the femur of orthopaedic patients, seeded on the scaffolds and cultured under osteogenic induction up to differentiation and mineralization. The release of specific metabolites and temporal gene expression profiles of marrow-derived osteoprogenitors were analyzed at definite time points, relevant to in vitro culture as well as in vivo differentiation. As a result, the role of the different biomimetic components added to the PLLA matrix was deciphered, with BMP2-added scaffolds showing the highest biomimetic activity on cells differentiating to mature osteoblasts. The modification of a polymeric scaffold with reinforcing components which also work as biomimetic cues for cells can effectively direct osteoprogenitor cells differentiation, so as to shorten the time required for mineralization.
机译:在骨工程中,间充质基质细胞的粘附,增殖和分化依赖于基质化学物理结构的信号传导,因此促进了模拟“细胞外基质”样支架的设计。在这项研究中,将基于三维多孔聚L-乳酸(PLLA)的支架与不同的成分混合,包括单壁碳纳米管(CNT),微羟基磷灰石颗粒(HA)和BMP2,并进行了处理等离子体(PT),以获得四种不同的纳米复合材料:PLLA + CNT,PLLA + CNTHA,PLLA + CNT + HA + BMP2和PLLA + CNT + HA + PT。成年骨髓间充质基质细胞(MSCs)来自骨科患者的股骨,接种在支架上,并在成骨诱导下培养直至分化和矿化。在特定的时间点分析了骨髓衍生的骨祖细胞的特定代谢物的释放和时间基因表达谱,这与体外培养以及体内分化有关。结果,破译了添加到PLLA基质中的不同仿生成分的作用,添加BMP2的支架对分化为成熟成骨细胞的细胞显示出最高的仿生活性。用增强组分修饰聚合物支架,这些增强支架也可作为细胞的仿生线索,可以有效地指导骨祖细胞的分化,从而缩短矿化所需的时间。

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