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首页> 外文期刊>Herz >Cultivation of Human Cells on Polymer Covered Biomaterial-a New Concept to Improve Long-Term Performance of Biologic Implants
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Cultivation of Human Cells on Polymer Covered Biomaterial-a New Concept to Improve Long-Term Performance of Biologic Implants

机译:在聚合物覆盖的生物材料上培养人类细胞-一种改善生物植入物长期性能的新概念

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摘要

BACKGROUND AND PURPOSE: Calcific degeneration with the resulting need for operative replacement remains the major drawback of bioprostheses. Previous studies have shown that cellular surface seeding decreases calcium uptake in vitro and in vivo, but complete coverage remains difficult to achieve. A new approach is presented, masking glutaraldehyde residues with a covalently bound polymer layer thus facilitating cell seeding. The aim of this study was to evaluate different polymers for their ability to promote surface cell adhesion and formation of complete monolayers. MATERIAL AND METHODS: Ten ultrathin polymers, covalently bound to glass and exhibiting different physicochemical characteristics (thickness, molecular weight, hydrophilic properties, electrical charge) were seeded with human endothelial cells. Four of the ten polymers were also seeded with fibroblasts. As a reference, both cell types were seeded on glass surface. Quality of cell growth and coverage was evaluated by light and scanning electron microscopy. RESULTS: Five of ten polymers and glass exhibited excellent growth and complete surface coverage after 2 weeks, two allowed less cell adherence than glass reference, and three showed only poor cellular growth without adherence. Scanning electron microscopy demonstrated an intact monolayer for the five polymers with excellent cell coverage. Fibroblasts grew well on glass but not on the four tested polymers. No correlation was found between molecular weight, thickness, hydrophilic or charge characteristics of the polymers. CONCLUSION: Several ultrathin polymers, seeded with human endothelial cells, permit complete monolayer formation, but without any apparent correlation to physicochemical characteristics. Polymers covalently bound to biologic tissue appear as a promising approach to prevent calcific degeneration of bioprostheses.
机译:背景与目的:钙化变性导致需要进行手术置换仍然是生物假体的主要缺点。先前的研究表明,细胞表面播种可降低体内和体外的钙吸收,但仍难以完全覆盖。提出了一种新方法,用共价结合的聚合物层掩盖戊二醛残基,从而促进细胞播种。这项研究的目的是评估不同聚合物促进表面细胞粘附和形成完整单层的能力。材料与方法:将十种与玻璃共价结合并表现出不同理化特性(厚度,分子量,亲水性,电荷)的超薄聚合物植入人内皮细胞。十种聚合物中的四种也接种了成纤维细胞。作为参考,两种细胞类型都接种在玻璃表面上。细胞生长和覆盖的质量通过光和扫描电子显微镜评估。结果:十种聚合物和玻璃中有五种在2周后表现出出色的生长和完全的表面覆盖,其中两种比细胞参照物具有更少的细胞粘附性,而三种仅表现出较差的细胞生长而没有粘附性。扫描电子显微镜显示完整的单层的五种聚合物具有出色的细胞覆盖率。成纤维细胞在玻璃上生长良好,但在四种测试的聚合物上却生长不好。在聚合物的分子量,厚度,亲水性或电荷特性之间未发现相关性。结论:几种超薄聚合物,植入人内皮细胞后,可以形成完整的单层细胞,但与理化特性没有明显的关系。与生物组织共价结合的聚合物似乎是防止生物假体钙化变性的一种有前途的方法。

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