Development of an in situ controllable polymerization tool and process for hydrogel used to replace nucleus pulposus

A. Schmocker, A. Khoushabi, P. Bourban, C. Schizas, D. Pioletti, C. Moser
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Abstract

Currently implants or tissue replacements are inserted either as a whole implant or by injecting a liquid which polymerizes to form a solid implant at the appropriate location. This is either highly invasive or not controllable. We developed a tool to perform such surgeries in a minimally invasive and controllable way. It combines photopolymerization and fluorescence spectroscopy in a surgical apparatus. However, to successfully replace tissue such as cartilage or an intervertebral disc, photopolymerizable materials do not only need to be photoactive. They should also be able to withstand the environmental loading conditions after implantation. Therefore we developed a set of in situ and in vitro tests adapted to the evaluation of photopolymerized tissue replacements and implants. In particular in this article, we report on a method, which combines photopolymerization and photorheology to track the current state of polymer during photopolymerization.
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替代髓核的水凝胶原位可控聚合工具及工艺的研制
目前植入物或组织替代物要么作为整个植入物插入,要么通过在适当位置注入聚合形成固体植入物的液体插入。这要么是高度侵入性的,要么是不可控制的。我们开发了一种工具,以微创和可控的方式进行这种手术。它结合了光聚合和荧光光谱的手术设备。然而,为了成功地替代软骨或椎间盘等组织,光聚合材料不仅需要具有光活性。它们还应能够承受植入后的环境载荷条件。因此,我们开发了一套适合于评估光聚合组织替代物和植入物的原位和体外测试。在本文中,我们特别报道了一种结合光聚合和光流变学的方法来跟踪聚合物在光聚合过程中的当前状态。
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