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首页> 外文期刊>Journal of materials science >Dry versus hydrated collagen scaffolds: are dry states representative of hydrated states?
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Dry versus hydrated collagen scaffolds: are dry states representative of hydrated states?

机译:干性胶原蛋白与水合胶原蛋白支架:干态是否代表水合态?

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摘要

Collagen composite scaffolds have been used for a number of studies in tissue engineering. The hydration of such highly porous and hydrophilic structures may influence mechanical behaviour and porosity due to swelling. The differences in physical properties following hydration would represent a significant limiting factor for the seeding, growth and differentiation of cells in vitro and the overall applicability of such hydrophilic materials in vivo. Scaffolds based on collagen matrix, poly(DL-lactide) nanofibers, calcium phosphate particles and sodium hyaluronate with 8 different material compositions were characterised in the dry and hydrated states using X-ray microcomputed tomography, compression tests, hydraulic permeability measurement, degradation tests and infrared spectrometry. Hydration, simulating the conditions of cell seeding and cultivation up to 48 h and 576 h, was found to exert a minor effect on the morphological parameters and permeability. Conversely, hydration had a major statistically significant effect on the mechanical behaviour of all the tested scaffolds. The elastic modulus and compressive strength of all the scaffolds decreased by similar to 95%. The quantitative results provided confirm the importance of analysing scaffolds in the hydrated rather than the dry state since the former more precisely simulates the real environment for which such materials are designed.& para;& para;
机译:胶原复合支架已用于组织工程中的许多研究。由于溶胀,这种高度多孔和亲水的结构的水合会影响机械性能和孔隙率。水合后物理性质的差异代表了体外细胞播种,生长和分化以及此类亲水性材料在体内的总体适用性的重要限制因素。使用X射线微计算机断层扫描,压缩测试,水力渗透性测量,降解测试和降解测试,对基于胶原蛋白基质,聚(DL-丙交酯)纳米纤维,磷酸钙颗粒和透明质酸钠和8种不同材料组成的支架在干燥和水合状态下进行表征。红外光谱。水合模拟了细胞播种和培养的条件,分别长达48 h和576 h,对形态学参数和通透性影响不大。相反,水合对所有测试支架的机械行为具有重大的统计学显着影响。所有支架的弹性模量和抗压强度降低了约95%。提供的定量结果证实了在水合状态而不是干燥状态下分析支架的重要性,因为前者可以更精确地模拟设计此类材料的实际环境。

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  • 来源
    《Journal of materials science》 |2018年第2期|20.1-20.14|共14页
  • 作者单位

    Acad Sci Czech Republ, Inst Rock Struct & Mech, Dept Composites & Carbon Mat, V Holesovickach 41, Prague 18209 8, Czech Republic;

    Acad Sci Czech Republ, Inst Rock Struct & Mech, Dept Composites & Carbon Mat, V Holesovickach 41, Prague 18209 8, Czech Republic;

    Charles Univ Prague, Fac Med 1, Dept Stomatol, Katerinska 32, Prague 12801 2, Czech Republic;

    Czech Tech Univ, Fac Mech Engn, Dept Mech Biomech & Mechatron, Lab Biomech,Tech 4, Prague 16607 6, Czech Republic;

    Politecn Milan, Dipartimento Elettron Informaz & Bioingn, Piazza Leonardo da Vinci 32, I-20133 Milan, Italy;

    Politecn Milan, Dipartimento Elettron Informaz & Bioingn, Piazza Leonardo da Vinci 32, I-20133 Milan, Italy;

    Politecn Milan, Dipartimento Elettron Informaz & Bioingn, Piazza Leonardo da Vinci 32, I-20133 Milan, Italy;

    Charles Univ Prague, Fac Med Pilsen, Biomed Ctr, Alej Svobody 76, Plzen, Czech Republic;

    Charles Univ Prague, Fac Med Pilsen, Biomed Ctr, Alej Svobody 76, Plzen, Czech Republic;

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