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用于骨支架的生物力学可调纳米二氧化硅/P-HEMA结构水凝胶

Biomechanically Tunable Nano-Silica/P-HEMA Structural Hydrogels for Bone Scaffolding.

作者信息

Aversa Raffaella, Petrescu Relly Victoria, Petrescu Florian Ion T, Perrotta Valeria, Apicella Davide, Apicella Antonio

机构信息

Advanced Materials Lab, Department of Architecture and Industrial Design, Second University of Naples, Abazia di San Lorenzo, 81031 Aversa, Italy.

IFToMM, ARoTMM, Bucharest Polytechnic University, Splaiul Independenței 313, 060042 Bucharest, Romania.

出版信息

Bioengineering (Basel). 2021 Apr 4;8(4):45. doi: 10.3390/bioengineering8040045.

Abstract

Innovative tissue engineering biomimetic hydrogels based on hydrophilic polymers have been investigated for their physical and mechanical properties. 5% to 25% by volume loading PHEMA-nanosilica glassy hybrid samples were equilibrated at 37 °C in aqueous physiological isotonic and hypotonic saline solutions (0.15 and 0.05 M NaCl) simulating two limiting possible compositions of physiological extracellular fluids. The glassy and hydrated hybrid materials were characterized by both dynamo-mechanical properties and equilibrium absorptions in the two physiological-like aqueous solutions. The mechanical and morphological modifications occurring in the samples have been described. The 5% volume nanosilica loading hybrid nanocomposite composition showed mechanical characteristics in the dry and hydrated states that were comparable to those of cortical bone and articular cartilage, respectively, and then chosen for further sorption kinetics characterization. Sorption and swelling kinetics were monitored up to equilibrium. Changes in water activities and osmotic pressures in the water-hybrid systems equilibrated at the two limiting solute molarities of the physiological solutions have been related to the observed anomalous sorption modes using the Flory-Huggins interaction parameter approach. The bulk modulus of the dry and glassy PHEMA-5% nanosilica hybrid at 37 °C has been observed to be comparable with the values of the osmotic pressures generated from the sorption of isotonic and hypotonic solutions. The anomalous sorption modes and swelling rates are coherent with the difference between osmotic swelling pressures and hybrid glassy nano-composite bulk modulus: the lower the differences the higher the swelling rate and equilibrium solution uptakes. Bone tissue engineering benefits of the use of tuneable biomimetic scaffold biomaterials that can be "designed" to act as biocompatible and biomechanically active hybrid interfaces are discussed.

摘要

基于亲水性聚合物的创新型组织工程仿生水凝胶因其物理和机械性能而受到研究。将体积含量为5%至25%的聚甲基丙烯酸羟乙酯-纳米二氧化硅玻璃态混合样品在37°C下于模拟生理细胞外液两种极限可能组成的等渗和低渗生理盐溶液(0.15 M和0.05 M NaCl)中平衡。通过动态力学性能和在两种类似生理的水溶液中的平衡吸收对玻璃态和水合态混合材料进行了表征。描述了样品中发生的力学和形态学变化。体积含量为5%的纳米二氧化硅负载混合纳米复合材料组成在干燥和水合状态下分别表现出与皮质骨和关节软骨相当的力学特性,因此被选用于进一步的吸附动力学表征。监测吸附和溶胀动力学直至达到平衡。利用弗洛里-哈金斯相互作用参数方法,将在生理溶液的两种极限溶质摩尔浓度下平衡的水-混合体系中的水活度和渗透压变化与观察到的异常吸附模式相关联。已观察到37°C下干燥玻璃态的聚甲基丙烯酸羟乙酯-5%纳米二氧化硅混合物的体积模量与等渗和低渗溶液吸附产生的渗透压值相当。异常吸附模式和溶胀速率与渗透压溶胀压力和混合玻璃态纳米复合物体积模量之间的差异一致:差异越小,溶胀速率和平衡溶液吸收量越高。讨论了使用可“设计”为具有生物相容性和生物力学活性的混合界面的可调仿生支架生物材料对骨组织工程的益处。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/908f/8065879/32337a03fc09/bioengineering-08-00045-g001.jpg

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