首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Amorphous Smart and Bioinspired Polyphosphate Nano/Microparticles: A Biomaterial for Regeneration and Repair of Osteo-Articular Impairments In-Situ
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Amorphous Smart and Bioinspired Polyphosphate Nano/Microparticles: A Biomaterial for Regeneration and Repair of Osteo-Articular Impairments In-Situ

机译:非晶灵巧和生物启发的聚磷酸盐纳米/微粒:一种原位再生和修复骨关节损伤的生物材料。

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摘要

Using femur explants from mice as an in vitro model, we investigated the effect of the physiological polymer, inorganic polyphosphate (polyP), on differentiation of the cells of the bone marrow in their natural microenvironment into the osteogenic and chondrogenic lineages. In the form of amorphous Ca-polyP nano/microparticles, polyP retains its function to act as both an intra- and extracellular metabolic fuel and a stimulus eliciting morphogenetic signals. The method for synthesis of the nano/microparticles with the polyanionic polyP also allowed the fabrication of hybrid particles with the bisphosphonate zoledronic acid, a drug used in therapy of bone metastases in cancer patients. The results revealed that the amorphous Ca-polyP particles promote the growth/viability of mesenchymal stem cells, as well as the osteogenic and chondrogenic differentiation of the bone marrow cells in rat femur explants, as revealed by an upregulation of the expression of the transcription factors SOX9 (differentiation towards osteoblasts) and RUNX2 (chondrocyte differentiation). In parallel to this bone anabolic effect, incubation of the femur explants with these particles significantly reduced the expression of the gene encoding the osteoclast bone-catabolic enzyme, cathepsin-K, while the expression of the tartrate-resistant acid phosphatase remained unaffected. The gene expression data were supported by the finding of an increased mineralization of the cells in the femur explants in response to the Ca-polyP particles. Finally, we show that the hybrid particles of polyP complexed with zoledronic acid exhibit both the cytotoxic effect of the bisphosphonate and the morphogenetic and mineralization inducing activity of polyP. Our results suggest that the Ca-polyP nano/microparticles are not only a promising scaffold material for repairing long bone osteo-articular damages but can also be applied, as a hybrid with zoledronic acid, as a drug delivery system for treatment of bone metastases. The polyP particles are highlighted as genuine, smart, bioinspired nano/micro biomaterials.
机译:使用来自小鼠的股骨外植体作为体外模型,我们研究了生理聚合物无机多磷酸盐(polyP)对骨髓细胞在其自然微环境中分化为成骨和成软骨谱系的影响。以无定形Ca-polyP纳米/微粒的形式,polyP保留了其功能,既可以作为细胞内和细胞外的代谢燃料,又可以引发形态发生信号。用聚阴离子polyP合成纳米/微粒的方法还允许与双膦酸盐唑来膦酸(一种用于治疗癌症患者的骨转移的药物)一起制造杂化颗粒。结果表明,无定形的Ca-polyP颗粒促进了大鼠股骨外植体中间充质干细胞的生长/存活以及骨髓细胞的成骨和软骨分化,这通过转录因子表达的上调来揭示。 SOX9(向成骨细胞分化)和RUNX2(软骨细胞分化)。与这种骨合成代谢作用平行的是,用这些颗粒孵育股骨外植体显着降低了编码破骨细胞骨代谢酶组织蛋白酶-K的基因的表达,而抗酒石酸的酸性磷酸酶的表达仍未受到影响。通过发现响应Ca-polyP颗粒的股骨外植体中细胞矿化的增加,支持了基因表达数据。最后,我们表明与唑来膦酸复合的polyP杂化颗粒既显示了双膦酸盐的细胞毒性作用,又显示了polyP的形态发生和矿化诱导活性。我们的结果表明,Ca-polyP纳米/微粒不仅是修复长骨骨-关节损伤的有前途的支架材料,而且还可以与唑来膦酸混合使用,作为治疗骨转移的药物递送系统。 polyP颗粒被强调为真正的,智能的,受生物启发的纳米/微生物材料。

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