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溶胶-凝胶技术制备的明胶/纳米羟基磷灰石水凝胶支架作为填充物修复骨缺损。

Gelatin/nano-hydroxyapatite hydrogel scaffold prepared by sol-gel technology as filler to repair bone defects.

机构信息

Institute of Polymers, Composites and Biomaterials - National Research Council of Italy, Mostra d'Oltremare Pad.20 - Viale J.F. Kennedy 54, Naples, 80125, Italy.

Department of Engineering for Innovation, University of Salento, Via Monteroni, km 1, Lecce, 73100, Italy.

出版信息

J Biomed Mater Res A. 2018 Jul;106(7):2007-2019. doi: 10.1002/jbm.a.36395. Epub 2018 Apr 17.

Abstract

This study reports on the development of a scaffold with a gradient of bioactive solid signal embedded in the biodegradable polymer matrix by combining a sol-gel approach and freeze-drying technology. The chemical approach based on the sol-gel transition of calcium phosphates ensures the particles dispersion into the gelatin matrix and a direct control of interaction among COOH /Ca ions. Morphological analysis demonstrated that on the basis of the amount of inorganic component and by using specific process conditions, it is possible to control the spatial distribution of nanoparticles around the gelatin helix. In fact, methodology and formulations were able to discriminate between the different hydroxyapatite concentrations and their respective morphology. The good biological response represented by good cell attachment, proliferation and increased levels of alkaline phosphatase as an indicator of osteoblastic differentiation of human mesenchymal stem cells toward the osteogenic lineage, demonstrating the effect of bioactive solid signals on cellular behavior. Furthermore, the inhibition of reactive oxygen species production by composite materials predicted potential anti-inflammatory properties of scaffolds thus confirming their biocompatibility. Indeed, these interesting biological results suggest good potential application of this scaffold as filler to repair bone defects. © 2018 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 106A: 2007-2019, 2018.

摘要

本研究报告了一种通过结合溶胶-凝胶法和冷冻干燥技术,在可生物降解聚合物基质中嵌入具有生物活性固体信号梯度的支架的开发。基于磷酸钙溶胶-凝胶转变的化学方法确保了颗粒在明胶基质中的分散,并能直接控制 COOH/Ca 离子之间的相互作用。形态分析表明,基于无机成分的量,并使用特定的工艺条件,可以控制纳米颗粒在明胶螺旋周围的空间分布。事实上,该方法和配方能够区分不同浓度的羟基磷灰石及其各自的形态。良好的生物响应表现为良好的细胞附着、增殖和碱性磷酸酶水平的增加,碱性磷酸酶是人类间充质干细胞向成骨谱系的成骨分化的指标,证明了生物活性固体信号对细胞行为的影响。此外,复合材料中活性氧物质产生的抑制作用预测了支架的潜在抗炎特性,从而证实了其生物相容性。事实上,这些有趣的生物学结果表明,这种支架作为填充物修复骨缺损具有良好的潜在应用前景。2018 年 Wiley 期刊公司。J 生物材料研究杂志 A 部分:106A:2007-2019 年

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