Center Laboratory of Biomanufacture and Tissue Engineering, Hang Zhou Dianzi University, Hangzhou 310018, People's Republic of China.
Biofabrication. 2010 Jun;2(2):025002. doi: 10.1088/1758-5082/2/2/025002. Epub 2010 Mar 10.
Here we developed a composite scaffold of pearl/poly(lactic-co-glycolic acid) (pearl/PLGA) utilizing the low-temperature deposition manufacturing (LDM). LDM makes it possible to fabricate scaffolds with designed microstructure and macrostructure, while keeping the bioactivity of biomaterials by working at a low temperature. Process optimization was carried out to fabricate a mixture of pearl powder, PLGA and 1,4-dioxane with the designed hierarchical structures, and freeze-dried at a temperature of -40 degrees C. Scaffolds with square and designated bone shape were fabricated by following the 3D model. Marrow stem cells (MSCs) were seeded on the pearl/PLGA scaffold and then cultured in a rotating cell culture system. The adhesion, proliferation and differentiation of MSCs into osteoblasts were determined using scanning electronic microscopy, WST-1 assay, alkaline phosphatase activity assay, immunofluorescence staining and real-time reverse transcription polymerase chain reaction. The results showed that the composite scaffold had high porosity (81.98 +/- 3.75%), proper pore size (micropores: <10 microm; macropore: 495 +/- 54 microm) and mechanical property (compressive strength: 0.81 +/- 0.04 MPa; elastic modulus: 23.14 +/- 0.75 MPa). The pearl/PLGA scaffolds exhibited better biocompatibility and osteoconductivity compared with the tricalcium phosphate/PLGA scaffold. All these results indicate that the pearl/PLGA scaffolds fulfill the basic requirements of bone tissue engineering scaffold.
在这里,我们利用低温沉积制造(LDM)技术开发了一种珍珠/聚乳酸-羟基乙酸共聚物(pearl/PLGA)复合支架。LDM 可以在低温下制造具有设计微观结构和宏观结构的支架,同时保持生物材料的生物活性。我们进行了工艺优化,以制造具有设计的层次结构的珍珠粉、PLGA 和 1,4-二恶烷混合物,并在-40°C 的温度下进行冷冻干燥。通过遵循 3D 模型,制造出具有正方形和指定骨形状的支架。将骨髓间充质干细胞(MSCs)接种在珍珠/PLGA 支架上,然后在旋转细胞培养系统中进行培养。通过扫描电子显微镜、WST-1 测定法、碱性磷酸酶活性测定法、免疫荧光染色和实时逆转录聚合酶链反应来确定 MSCs 向成骨细胞的黏附、增殖和分化。结果表明,复合支架具有高孔隙率(81.98±3.75%)、适当的孔径(微孔:<10μm;大孔:495±54μm)和机械性能(压缩强度:0.81±0.04MPa;弹性模量:23.14±0.75MPa)。与磷酸三钙/PLGA 支架相比,珍珠/PLGA 支架具有更好的生物相容性和骨诱导性。所有这些结果表明,珍珠/PLGA 支架满足骨组织工程支架的基本要求。