组织工程低温烧结钛-羟基磷灰石复合材料:体外细胞支持和生物相容性

R. Comín, M. Cid, Luciano Grinschpun, C. Oldani, N. A. Salvatierra
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引用次数: 20

摘要

背景在临床骨科中,一个关键问题是由疾病或损伤引起的骨组织损失。由于羟基磷灰石生物活性和钛良好的机械性能的有利结合,钛和羟基磷灰石复合材料在生物医学应用中的应用已经增加。粉末冶金是一种简单且成本较低的方法,它使用钛和羟基磷灰石的粉末来获得在金属基体中具有羟基磷灰石相的复合材料。然而,由于羟基磷灰石在800°C以上的钛-羟基磷灰石系统中的热分解,这种方法具有一定的局限性。我们从800°C烧结的钛和牛羟基磷灰石粉末中获得了一种复合材料,并根据ISO 10993标准评估了其生物活性和细胞相容性。方法采用X射线衍射和扫描电镜对复合材料进行表面分析和生物活性评价,MTT法测定其对Vero和NIH3T3细胞的细胞毒性。用荧光和扫描电镜分析了复合材料表面的细胞形态和细胞粘附情况。结果获得了羟基磷灰石颗粒与钛基体良好结合的多孔复合材料,具有良好的生物活性。我们的数据没有揭示钛-羟基磷灰石复合物对Vero或NIH3T3细胞的任何毒性。此外,复合物的提取物不影响细胞形态或密度。最后,NIH3T3细胞能够粘附并在复合材料表面上增殖。结论通过简单的粉末冶金方法制备的复合材料具有良好的生物医学应用前景。此外,这些发现为在800°C下烧结的钛-羟基磷灰石复合材料的充分生物相容性提供了体外证据。
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Titanium-Hydroxyapatite Composites Sintered at Low Temperature for Tissue Engineering: In vitro Cell Support and Biocompatibility
Background In clinical orthopedics, a critical problem is the bone tissue loss produced by a disease or injury. The use of composites from titanium and hydroxyapatite for biomedical applications has increased due to the resulting advantageous combination of hydroxyapatite bioactivity and favorable mechanical properties of titanium. Powder metallurgy is a simple and lower-cost method that uses powder from titanium and hydroxyapatite to obtain composites having hydroxyapatite phases in a metallic matrix. However, this method has certain limitations arising from thermal decomposition of hydroxyapatite in the titanium-hydroxyapatite system above 800°C. We obtained a composite from titanium and bovine hydroxyapatite powders sintered at 800°C and evaluated its bioactivity and cytocompatibility according to the ISO 10993 standard. Methods Surface analysis and bioactivity of the composite was evaluated by X-ray diffraction and SEM. MTT assay was carried out to assess cytotoxicity on Vero and NIH3T3 cells. Cell morphology and cell adhesion on the composite surface were analyzed using fluorescence and SEM. Results We obtained a porous composite with hydroxyapatite particles well integrated in titanium matrix which presented excellent bioactivity. Our data did not reveal any toxicity of titanium-hydroxyapatite composite on Vero or NIH3T3 cells. Moreover, extracts from composite did not affect cell morphology or density. Finally, NIH3T3 cells were capable of adhering to and proliferating on the composite surface. Conclusions The composite obtained displayed promising biomedical applications through the simple method of powder metallurgy. Additionally, these findings provide an in vitro proof for adequate biocompatibility of titanium-hydroxyapatite composite sintered at 800°C.
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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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