Biofunctional fibers by polyelectrolyte complexation
Biofunctional fibers by polyelectrolyte complexation
批准号:
6868039
负责人:
KAM W LEONG
金额:
$29.27万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-04-01 至 2009-01-31
中文摘要
描述(由申请人提供):纤维形式的生物材料可应用于外科缝线、编织医疗器械(如血管移植物)和组织工程支架等。纤维支架由于其固有的优点,包括细胞附着的高表面积和可控的多孔结构,在组织工程中具有吸引力。传统的纤维制造过程需要加热或变性溶剂。因此,在这些纤维支架中掺入生物材料是有限的或困难的。我们建议使用界面络合技术,以制造纤维,可以拥有生物功能的封装生长因子和表面固定的配体。界面络合是当两种带相反电荷的聚电解质聚集在一起时发生的自组装过程。在水溶液中进行,该过程足够温和,可以将蛋白质包封或固定到纤维中。这样的纤维对于组织工程应用将是特别有吸引力的,其中最佳的组织工程需要的不仅仅是仅用作细胞附着和细胞生长的基质的惰性支架。以粘附分子、生长和分化因子或甚至质粒DNA形式的线索或信号分子应以空间限定的方式并入这些支架中以协调新组织的生长。我们建议通过评估聚合物组合物的关键参数,带相反电荷的聚电解质的浓度,温度,电荷密度和纤维拉伸速率来理解纤维形成的机制。以水溶性甲壳素或壳聚糖为聚阳离子,海藻酸钠或肝素为聚阴离子合成纤维。通过测定这些纤维的物理、化学和生物学性能,建立它们的结构性能关系。我们将通过封装药物、蛋白质、DNA纳米颗粒以及用链霉亲和素装饰纤维表面以允许生物素化配体的附着来将生物功能引入纤维中。最后,我们将评估在这些生物功能纤维的非织造网上培养的原代肝细胞的细胞行为。预计该提案中的发现将产生具有有趣的生物医学应用的新型生物功能纤维生物材料。
英文摘要
DESCRIPTION (provided by applicant): Biomaterials in the form of fibers find applications in surgical sutures, woven medical devices such as vascular grafts, and tissue engineering scaffolds, among others. Fibrous scaffolds are attractive in tissue engineering for their inherent advantages, including high surface area for cell attachment and controlled porous architecture. Conventional fiber fabrication procedures require heat or denaturing solvents. Incorporation of biological materials in these fibrous scaffolds have therefore been limited or difficult. We propose to use the interracial polyelectrolyte complexation technique to fabricate fibers that can possess biofunctionalities of encapsulated growth factors and surface-immobilized ligands. Interfacial polyelectrolyte complexation is a process of self-assembly that occurs when two oppositely charged polyelectrolytes come together. Taking place in aqueous solutions, the process is mild enough for encapsulation or immobilization of proteins into the fibers. Such fibers would be particularly attractive for tissue engineering applications, where optimal tissue engineering requires more than an inert scaffold to serve merely as a substrate for cell attachment and cell growth. Cues or signal molecules in the form of adhesion molecules, growth and differentiation factors, or even plasmid DNA, should be incorporated into these scaffolds in a spatially defined manner to orchestrate the growth of new tissue. We propose to understand the mechanism of fiber formation by evaluating the critical parameters of polymer composition, concentration of the oppositely charged polyelectrolytes, temperature, charge density, and fiber draw rate. Fibers will be synthesized based on water-soluble chitin or chitosan as the polycation, and alginate or heparin as the polyanion. The structure property relationship of these fibers will be established by determining their physical, chemical, and biology properties. We will introduce biofunctionalities into the fibers by encapsulating drugs, proteins, DNA nanoparticles, as well as decorating the fiber surface with streptavidin to allow attachment of biotinylated ligands. Finally we will evaluate the cell behavior of primary hepatocytes cultured on a non-woven mesh of these biofunctional fibers. It is expected that findings in this proposal will produce novel biofunctional fibrous biomaterials with interesting biomedical applications.
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会议论文
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