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受生物启发的静电纺丝胶原支架的原位交联和矿化及其在骨组织工程中的应用。

Bio-inspired in situ crosslinking and mineralization of electrospun collagen scaffolds for bone tissue engineering.

机构信息

Anti-Infectives Research Group, Singapore Eye Research Institute, The Academia, 20 College Road, Discovery Tower, 169856, Singapore.

Lee Kong Chian School of Medicine, Nanyang Technological University, Experimental Medicine Building, 636921, Singapore.

出版信息

Biomaterials. 2016 Oct;104:323-38. doi: 10.1016/j.biomaterials.2016.07.007. Epub 2016 Jul 14.

Abstract

Bone disorders are the most common cause of severe long term pain and physical disability, and affect millions of people around the world. In the present study, we report bio-inspired preparation of bone-like composite structures by electrospinning of collagen containing catecholamines and Ca(2+). The presence of divalent cation induces simultaneous partial oxidative polymerization of catecholamines and crosslinking of collagen nanofibers, thus producing mats that are mechanically robust and confer photoluminescence properties. Subsequent mineralization of the mats by ammonium carbonate leads to complete oxidative polymerization of catecholamines and precipitation of amorphous CaCO3. The collagen composite scaffolds display outstanding mechanical properties with Young's modulus approaching the limits of cancellous bone. Biological studies demonstrate that human fetal osteoblasts seeded on to the composite scaffolds display enhanced cell adhesion, penetration, proliferation, differentiation and osteogenic expression of osteocalcin, osteopontin and bone matrix protein when compared to pristine collagen or tissue culture plates. Among the two catecholamines, mats containing norepinephrine displayed superior mechanical, photoluminescence and biological properties than mats loaded with dopamine. These smart multifunctional scaffolds could potentially be utilized to repair and regenerate bone defects and injuries.

摘要

骨骼疾病是导致严重长期疼痛和身体残疾的最常见原因,影响着全世界数百万人。在本研究中,我们报告了通过含有儿茶酚胺和 Ca(2+)的胶原电纺制备仿生骨样复合材料结构。二价阳离子的存在诱导儿茶酚胺的同时部分氧化聚合和胶原纳米纤维的交联,从而产生机械强度高且具有荧光性质的垫。随后通过碳酸铵对垫进行矿化,导致儿茶酚胺的完全氧化聚合和无定形 CaCO3 的沉淀。胶原复合材料支架具有出色的机械性能,杨氏模量接近松质骨的极限。生物学研究表明,与原胶原或组织培养板相比,接种在复合支架上的人胎成骨细胞表现出增强的细胞黏附、穿透、增殖、分化和骨钙素、骨桥蛋白和骨基质蛋白的成骨表达。在两种儿茶酚胺中,含有去甲肾上腺素的垫比负载多巴胺的垫具有更优异的机械、荧光和生物学性能。这些智能多功能支架可能有潜力用于修复和再生骨缺损和损伤。

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