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Microporous nanofibrous fibrin-based scaffolds for craniofacial bone tissue engineering.

机译:基于微孔纳米纤维蛋白的支架,用于颅面骨组织工程。

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摘要

The fibrotic response of the body to synthetic polymers limits their success in tissue engineering and other applications. Though porous polymers have demonstrated improved healing, difficulty in controlling their pore sizes and pore interconnections has clouded the understanding of this phenomenon. In this study, a novel method to fabricate natural polymer/calcium phosphate composite scaffolds and immobilized alkaline phosphatase fibrin scaffolds with tightly controllable pore size, pore interconnection has been investigated. Microporous, nanofibrous fibrin scaffolds (FS) were fabricated using sphere-templating method. Calcium phosphate/fibrin composite scaffolds were created by solution deposition of calcium phosphate on fibrin surfaces or by direct incorporation of nanocrystalline hydroxyapatite (nHA). The SEM results showed that fibrin scaffolds exhibited a highly porous and interconnected structure. Osteoblast-like cells, obtained from murine calvaria, attached, spread and showed a polygonal morphology on the surface of the biomaterial. Multiple cell layers and fibrillar matrix deposition were observed. Moreover, cells seeded on mineralized fibrin scaffolds (MFS) exhibited significantly higher alkaline phosphatase activity as well as osteoblast marker gene expression compared to FS and nHA incorporated fibrin scaffolds (nHA/FS). These fibrin-based scaffolds were degraded both in vitro and in vivo. Furthermore, these scaffolds promoted bone formation in a mouse calvarial defect model and the bone formation was enhanced by addition of rhBMP-2. The second approach was to immobilize alkaline phosphatase (ALP) on fibrin scaffolds. ALP enzyme was covalently immobilized on the microporous nanofibrous fibrin scaffolds using 1-ethyl-3-(dimethylaminopropyl)carbodiimide hydrochloride (EDC). The SEM results demonstrated mineral deposition on immobilized ALP fibrin scaffolds (ALP/FS) when incubated in medium supplemented with beta-glycerophosphate, suggesting that the immobilized ALP enzyme was active. Mineral deposition was also observed in cells seeded on immobilized ALP/FS. Furthermore, cells seeded on immobilized ALP/FS exhibited higher osteoblast marker gene expression compared to those on control FS. Upon implantation in mouse calvarial defect, the immobilized ALP/FS treated group had slightly higher bone volume in the defect compared to empty defect control and FS alone. In conclusion, the enhanced biological responses both in vitro and in vivo demonstrated the potential application of these novel microporous nanofibrous fibrin-based scaffolds for bone tissue engineering.
机译:人体对合成聚合物的纤维化反应限制了它们在组织工程和其他应用中的成功。尽管多孔聚合物已显示出改善的愈合能力,但控制其孔径和孔互连的困难使对该现象的理解变得模糊。在这项研究中,研究了一种新颖的方法来制造天然聚合物/磷酸钙复合支架和固定的孔径可严格控制,孔互连的碱性磷酸酶纤维蛋白支架。使用球形模板法制备了微孔,纳米纤维蛋白纤维支架(FS)。磷酸钙/纤维蛋白复合支架是通过将磷酸钙溶液沉积在纤维蛋白表面或直接掺入纳米晶羟基磷灰石(nHA)制成的。 SEM结果表明血纤蛋白支架表现出高度多孔和相互连接的结构。从鼠头颅获得的成骨细胞样细胞附着并扩散,并在生物材料表面显示出多边形形态。观察到多个细胞层和原纤维基质沉积。而且,与FS和掺入nHA的纤维蛋白支架(nHA / FS)相比,接种在矿化的纤维蛋白支架(MFS)上的细胞表现出明显更高的碱性磷酸酶活性以及成骨细胞标志物基因表达。这些基于纤维蛋白的支架在体外和体内均被降解。此外,这些支架在小鼠颅骨缺损模型中促进了骨形成,并且通过添加rhBMP-2增强了骨形成。第二种方法是将碱性磷酸酶(ALP)固定在血纤蛋白支架上。使用1-乙基-3-(二甲基氨基丙基)碳二亚胺盐酸盐(EDC)将ALP酶共价固定在微孔纳米纤维蛋白纤维支架上。 SEM结果表明,当在添加了β-甘油磷酸的培养基中孵育时,矿物质沉积在固定的ALP纤维蛋白支架(ALP / FS)上,表明固定的ALP酶具有活性。在固定化ALP / FS上播种的细胞中也观察到了矿物质沉积。此外,与对照FS相比,接种在固定化ALP / FS上的细胞表现出更高的成骨细胞标记基因表达。植入小鼠颅盖缺损后,固定的ALP / FS治疗组与单独的缺损对照和FS相比,缺损处的骨体积略高。总之,体外和体内增强的生物学反应证明了这些新型的基于微孔纳米纤维蛋白的支架在骨组织工程中的潜在应用。

著录项

  • 作者

    Osathanon, Thanaphum.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Engineering Biomedical.;Health Sciences Dentistry.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 239 p.
  • 总页数 239
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;工程材料学;口腔科学;
  • 关键词

  • 入库时间 2022-08-17 11:38:04

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