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用于组织工程的粘土纳米管-生物聚合物复合支架

Clay nanotube-biopolymer composite scaffolds for tissue engineering.

作者信息

Naumenko Ekaterina A, Guryanov Ivan D, Yendluri Raghuvara, Lvov Yuri M, Fakhrullin Rawil F

机构信息

Bionanotechnology Lab, Institute of Fundamental Medicine and Biology, Kazan Federal University, Kreml uramı 18, Kazan, Republic of Tatarstan 420008, Russian Federation.

Institute for Micromanufacturing, Louisiana Tech University, 911 Hergot Ave., Ruston, LA 71272, USA.

出版信息

Nanoscale. 2016 Apr 7;8(13):7257-71. doi: 10.1039/c6nr00641h.

Abstract

Porous biopolymer hydrogels doped at 3-6 wt% with 50 nm diameter/0.8 μm long natural clay nanotubes were produced without any cross-linkers using the freeze-drying method. The enhancement of mechanical strength (doubled pick load), higher water uptake and thermal properties in chitosan-gelatine-agarose hydrogels doped with halloysite was demonstrated. SEM and AFM imaging has shown the even distribution of nanotubes within the scaffolds. We used enhanced dark-field microscopy to visualise the distribution of halloysite nanotubes in the implantation area. In vitro cell adhesion and proliferation on the nanocomposites occur without changes in viability and cytoskeleton formation. In vivo biocompatibility and biodegradability evaluation in rats has confirmed that the scaffolds promote the formation of novel blood vessels around the implantation sites. The scaffolds show excellent resorption within six weeks after implantation in rats. Neo-vascularization observed in newly formed connective tissue placed near the scaffold allows for the complete restoration of blood flow. These phenomena indicate that the halloysite-doped scaffolds are biocompatible as demonstrated both in vitro and in vivo. The chitosan-gelatine-agarose doped clay nanotube nanocomposite scaffolds fabricated in this work are promising candidates for tissue engineering applications.

摘要

采用冷冻干燥法,在不使用任何交联剂的情况下制备了掺杂有直径50纳米/长度0.8微米的天然粘土纳米管且掺杂量为3 - 6重量%的多孔生物聚合物水凝胶。结果表明,掺杂埃洛石的壳聚糖 - 明胶 - 琼脂糖水凝胶的机械强度有所增强(挑针负荷加倍),吸水性和热性能更高。扫描电子显微镜(SEM)和原子力显微镜(AFM)成像显示纳米管在支架内分布均匀。我们使用增强暗场显微镜观察了埃洛石纳米管在植入区域的分布。纳米复合材料上的体外细胞黏附和增殖过程中,细胞活力和细胞骨架形成未发生变化。在大鼠体内进行的生物相容性和生物降解性评估证实,该支架促进了植入部位周围新血管的形成。在大鼠体内植入六周后,该支架显示出优异的吸收性能。在支架附近新形成的结缔组织中观察到的新血管形成使得血流得以完全恢复。这些现象表明,如体外和体内实验所示,掺杂埃洛石的支架具有生物相容性。本研究制备的壳聚糖 - 明胶 - 琼脂糖掺杂粘土纳米管纳米复合支架是组织工程应用的有前景的候选材料。

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