PDMS增强慢降解Ca - P - Si支架:材料表征、制备及体外生物相容性研究。

ty10086 提交于 周三, 08/25/2021 - 16:24
文章英文标题
PDMS-enhanced slowly degradable Ca-P-Si scaffold: Material characterization, fabrication and in vitro biocompatibility study.
正文
慢速降解的骨支架能够很好地维持新骨再生与支架吸收之间的平衡,尤其是对于老年人或患有病理性疾病的患者,因为降解过快会导致长期生物稳定性的丧失而导致支架失效。本研究将磷酸钙硅酸盐( CPS )与聚二甲基硅氧烷( PDMS )按不同比例共混,制备支架浆料。首先表征了交联PDMS对CPS材料性能的影响,并基于上述结果确定了CPS- PDMS浆料最可行的配方,用于三维制备支架。根据支架提取物对成骨细胞的毒性,进一步评价了CPS- PDMS的生物相容性。进一步采用real-time PCR考察支架提取物对成骨细胞增殖的影响。结果表明,交联PDMS干扰了CPS的水化,降低了CPS的凝结速率和抗压强度。此外,还发现CPS孔隙率随PDMS的增加而增加,这是由于疏水作用使水分布不均匀所致。降解和矿化研究表明,CPS- PDMS支架缓慢降解并诱导磷灰石形成。此外,体外分析表明,CPS- PDMS支架对成骨细胞没有细胞毒作用,但可以通过TGFβ / BMP信号通路促进细胞增殖。综上所述,CPS- PDMS支架被证明具有缓慢降解和生物相容性。因此,需要进一步的分析来证明CPS- PDMS支架在骨再生中的应用。
文章内容(英文)
A slowly degradable bone scaffold can well maintain the balance between new bone regeneration and scaffold resorption, esp. for seniors or patients suffering from pathological diseases, because too fast degradation can lead to the loss of long-term biological stability and result in scaffold failure. In this present study, calcium phosphate silicate (CPS) and polydimethylsiloxane (PDMS) were blended in different ratios to formulate slurries for scaffold fabrication. The effects of crosslinked PDMS on the CPS material properties were first characterized and the most viable formulation of CPS-PDMS slurry was determined based on the aforementioned results to 3D fabricate scaffolds. The biocompatibility of CPS-PDMS was further evaluated based on the scaffold extract's cytotoxicity to osteoblast cells. Furthermore, real-time PCR was used to investigate the effects of scaffold extract to increase osteoblast proliferation. It is showed that the crosslinked PDMS interfered with CPS hydration and reduced both setting rate and compressive strength of CPS. In addition, CPS porosity was also found to increase with PDMS due to uneven water distribution as a result of increased hydrophobicity. Degradation and mineralization studies show that CPS-PDMS scaffold was slowly degradable and induced apatite formation. In addition, the in vitro analyses show that the CPS-PDMS scaffold did not exert any cytotoxic effect on osteoblast cells but could improve the cell proliferation via the TGFβ/BMP signaling pathway. In conclusion, CPS-PDMS scaffold is proved to be slowly degradable and biocompatible. Further analyses are therefore needed to demonstrate CPS-PDMS scaffold applications in bone regeneration.
来源出处
Journal|[J]Journal of Applied Biomaterials & Functional MaterialsVolume 19, 2021. PP 22808000211023261-22808000211023261
DOI
https://doi.org/10.1177/22808000211023261

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备注说明:

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