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The future of carbon dioxide for polymer processing in tissue engineering

机译:用于组织工程中聚合物加工的二氧化碳的未来

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The use of CO2 for scaffold fabrication in tissue engineering was popularized in the mid-1990s as a tool for producing polymeric foam scaffolds, but had fallen out of favor to some extent, in part due to challenges with pore interconnectivity. Pore interconnectivity issues have since been resolved by numerous dedicated studies that have collectively outlined how to control the appropriate parameters to achieve a pore structure desirable for tissue regeneration. In addition to CO2 foaming, several groups have leveraged CO2 as a swelling agent to impregnate scaffolds with drugs and other bioactive additives, and for encapsulation of plasmids within scaffolds for gene delivery. Moreover, in contrast to CO2 foaming, which typically relies on supercritical CO2 at very high pressures, CO2 at much lower pressures has also been used to sinter polymeric microspheres together in the presence of cells to create cell-seeded scaffolds in a single step. CO2 has a number of advantages for polymer processing in tissue engineering, including its ease of use, low cost, and the opportunity to circumvent the use of organic solvents. Building on these advantages, and especially now with the tremendous precedent that has paved the way in defining operating parameters, and making the technology accessible for new groups to adapt, we invite and encourage our colleagues in the field to leverage CO2 as a new tool to enhance their own respective unique capabilities.
机译:在组织工程中,将CO2用于支架制造的过程在1990年代中期作为制造聚合物泡沫支架的工具得到了普及,但在某种程度上已不受欢迎,部分原因是孔连通性的挑战。此后,大量的专门研究解决了孔洞互连性问题,这些研究共同概述了如何控制适当的参数来实现组织再生所需的孔结构。除了CO2发泡之外,还有几个小组利用CO2作为溶胀剂,用药物和其他生物活性添加剂浸渍支架,以及将质粒封装在支架中以进行基因传递。此外,与通常在非常高的压力下依赖于超临界CO2的CO2发泡相反,在有孔的情况下,也已使用低得多的压力的CO2将聚合物微球烧结在一起,从而在一个步骤中形成了带细胞的支架。对于组织工程中的聚合物处理,CO2具有许多优势,包括易用,低成本以及避免使用有机溶剂的机会。借助这些优势,尤其是在如今已经有了巨大的先例,该先例为定义操作参数以及使新技术能够适应新人群提供了便利,我们邀请并鼓励我们在该领域的同事利用CO2作为一种新工具来增强各自的独特功能。

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