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无机钙填充细菌纤维素基水凝胶支架用于骨生物工程的生物相容性和生物功效。

Biocompatibility and Biological Efficiency of Inorganic Calcium Filled Bacterial Cellulose Based Hydrogel Scaffolds for Bone Bioengineering.

机构信息

Centre of Polymer Systems, University Institute, Tomas Bata University in Zlin, Trida Tomase Bati 5678, 760 01 Zlín, Czech Republic.

Institute of Experimental Morphology, Pathology and Anthropology with Museum, Bulgarian Academy of Sciences, 1113 Sofia, Bulgaria.

出版信息

Int J Mol Sci. 2018 Dec 11;19(12):3980. doi: 10.3390/ijms19123980.

Abstract

The principal focus of this work is the in-depth analysis of the biological efficiency of inorganic calcium-filled bacterial cellulose (BC) based hydrogel scaffolds for their future use in bone tissue engineering/bioengineering. Inorganic calcium was filled in the form of calcium phosphate (β-tri calcium phosphate (β-TCP) and hydroxyapatite (HA)) and calcium carbonate (CaCO₃). The additional calcium, CaCO₃ was incorporated following bio-mineralization. Cell viability study was performed with the extracts of BC based hydrogel scaffolds: BC-PVP, BC-CMC; BC-PVP-β-TCP/HA, BC-CMC-β-TCP/HA and BC-PVP-β-TCP/HA-CaCO₃, BC-CMC-β-TCP/HA-CaCO₃; respectively. The biocompatibility study was performed with two different cell lines, i.e., human fibroblasts, Lep-3 and mouse bone explant cells. Each hydrogel scaffold has facilitated notable growth and proliferation in presence of these two cell types. Nevertheless, the percentage of DNA strand breaks was higher when cells were treated with BC-CMC based scaffolds i.e., BC-CMC-β-TCP/HA and BC-CMC-β-TCP/HA-CaCO₃. On the other hand, the apoptosis of human fibroblasts, Lep-3 was insignificant in BC-PVP-β-TCP/HA. The scanning electron microscopy confirmed the efficient adhesion and growth of Lep-3 cells throughout the surface of BC-PVP and BC-PVP-β-TCP/HA. Hence, among all inorganic calcium filled hydrogel scaffolds, 'BC-PVP-β-TCP/HA' was recommended as an efficient tissue engineering scaffold which could facilitate the musculoskeletal (i.e., bone tissue) engineering/bioengineering.

摘要

这项工作的主要重点是深入分析无机钙填充细菌纤维素 (BC) 基水凝胶支架的生物效率,以将其未来用于骨组织工程/生物工程。无机钙以磷酸钙(β-三磷酸钙 (β-TCP) 和羟基磷灰石 (HA)) 和碳酸钙 (CaCO₃) 的形式填充。额外的 CaCO₃ 通过生物矿化加入。用 BC 基水凝胶支架的提取物进行细胞活力研究:BC-PVP、BC-CMC;BC-PVP-β-TCP/HA、BC-CMC-β-TCP/HA 和 BC-PVP-β-TCP/HA-CaCO₃、BC-CMC-β-TCP/HA-CaCO₃;分别。用两种不同的细胞系,即人成纤维细胞 Lep-3 和小鼠骨外植体细胞进行了生物相容性研究。在这两种细胞类型存在的情况下,每种水凝胶支架都促进了明显的生长和增殖。然而,当用 BC-CMC 基支架处理细胞时,DNA 链断裂的百分比更高,即 BC-CMC-β-TCP/HA 和 BC-CMC-β-TCP/HA-CaCO₃。另一方面,BC-PVP-β-TCP/HA 中人类成纤维细胞 Lep-3 的细胞凋亡不明显。扫描电子显微镜证实 Lep-3 细胞在 BC-PVP 和 BC-PVP-β-TCP/HA 整个表面上的有效粘附和生长。因此,在所有填充无机钙的水凝胶支架中,“BC-PVP-β-TCP/HA”被推荐为一种有效的组织工程支架,可促进肌肉骨骼(即骨组织)工程/生物工程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62f0/6320792/9ccf412502b7/ijms-19-03980-g001.jpg

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