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Biodegradable polymer scaffolds with well-defined interconnected spherical pore network.

机译:具有良好定义的相互连接的球形孔网络的可生物降解的聚合物支架。

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摘要

Scaffolding plays pivotal role in tissue engineering. In this work, a novel processing technique has been developed to create three-dimensional biodegradable polymer scaffolds with well-controlled interconnected spherical pores. Paraffin spheres were fabricated with a dispersion method, and were bonded together through a heat treatment to form a three-dimensional assembly in a mold. Biodegradable polymers such as PLLA and PLGA were dissolved in a solvent and cast onto the paraffin sphere assembly. After dissolving the paraffin, a porous polymer scaffold was formed. The fabrication parameters were studied in relation to the pore shape, interpore connectivity, pore wall morphology, and mechanical properties of the polymer scaffolds. The compressive modulus of the scaffolds decreased with increasing porosity. Longer heat treatment time of the paraffin spheres resulted in larger openings between the pores of the scaffolds. Foams of smaller pore size (100-200 microm) resulted in significantly lower compressive modulus than that of larger pore sizes (250-350 or 420-500 microm). The PLLA foams had a skeletal structure consisting of small platelets, whereas PLGA foams had homogeneous skeletal structure. The new processing technique can tailor the polymer scaffolds for a variety of potential tissue engineering applications because of the well-controlled architecture, interpore connectivity, and mechanical properties.
机译:脚手架在组织工程中起关键作用。在这项工作中,已开发出一种新颖的加工技术来制造具有良好控制的相互连接的球形孔的三维可生物降解的聚合物支架。用分散法制造石蜡球,并通过热处理将它们结合在一起,以在模具中形成三维组件。将可生物降解的聚合物(例如PLLA和PLGA)溶解在溶剂中,然后浇铸到石蜡球组件上。溶解石蜡后,形成多孔聚合物支架。研究了与聚合物支架的孔形状,孔间连通性,孔壁形态和机械性能有关的制造参数。支架的压缩模量随孔隙率的增加而降低。石蜡球的较长的热处理时间导致支架孔之间的较大开口。与较大孔径(250-350或420-500微米)相比,较小孔径(100-200微米)的泡沫所产生的压缩模量要低得多。 PLLA泡沫具有由小血小板组成的骨架结构,而PLGA泡沫具有均一的骨架结构。由于良好控制的结构,孔间连通性和机械性能,新的加工技术可以为各种潜在的组织工程应用定制聚合物支架。

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