Development of novel osteochondral scaffolds and relatedin vitroenvironment with the aid of chemical engineering principles.

Jovana Zvicer, Mia Milosevic, Ana Medic, Sasa Novak, Bojana Obradovic
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Abstract

In tissue engineering, collaboration among experts from different fields is needed to design appropriate cell scaffolds and the required three-dimensional environment. Osteochondral tissue engineering is particularly challenging due to the need to provide scaffolds that imitate structural and compositional differences between two neighboring tissues, articular cartilage and bone, and the required complex biophysical environments for cultivating such scaffolds. This work focuses on two key objectives: first, to develop bilayered osteochondral scaffolds based on gellan gum and bioactive glass and, second, to create a biomimetic environment for scaffold characterization by designing and utilizing novel dual-medium cultivation bioreactor chambers. Basic chemical engineering principles were utilized to help achieve both aims. First, a simple heat transport model based on one-dimensional conduction was applied as a guideline for bilayer scaffold preparation, leading to the formation of a gelatinous upper part and a macroporous lower part with a thin, well-integrated interfacial zone. Second, a novel cultivation chamber was developed to be used in a dynamic compression bioreactor to provide possibilities for flow of two different media, such as chondrogenic and osteogenic. These chambers were utilized for characterization of the novel scaffolds with regard to bioactivity and stability under dynamic compression and fluid perfusion over 14 d, while flow distribution under different conditions was analyzed by a tracer method and residence time distribution analysis.

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利用化学工程原理开发新型骨软骨支架及相关体外环境。
在组织工程中,需要不同领域的专家合作设计合适的细胞支架和所需的三维环境。骨软骨组织工程尤其具有挑战性,因为必须提供能模仿关节软骨和骨这两种相邻组织的结构和成分差异的支架,以及培养这种支架所需的复杂生物物理环境。这项研究主要有两个目标:第一,开发基于结冷胶和生物活性玻璃的双层骨软骨支架;第二,通过设计和利用新型双介质培养生物反应器室,为支架表征创造仿生环境。我们利用基本的化学工程原理来实现这两个目标。首先,应用基于一维传导的简单热传输模型作为双层支架制备的指导,从而形成胶状的上部和具有薄而完整的界面区的大孔下部。其次,开发了一种新型培养室,可用于动态压缩生物反应器,提供两种不同培养基(如软骨和成骨培养基)流动的可能性。利用这些培养室对新型支架在动态压缩和流体灌注 14 天内的生物活性和稳定性进行了表征,并通过示踪法和停留时间分布分析对不同条件下的流动分布进行了分析。
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