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In vivo and in vitro tracking of erosion in biodegradable materials using non-invasive fluorescence imaging

机译:使用非侵入性荧光成像在体内和体外跟踪可生物降解材料中的侵蚀

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摘要

The design of erodible biomaterials relies on the ability to program the in vivo retention time, which necessitates real-time monitoring of erosion. However, in vivo performance cannot always be predicted by traditional determination of in vitro erosion[superscript 1, 2] , and standard methods sacrifice samples or animals[superscript 3], preventing sequential measures of the same specimen. We harnessed non-invasive fluorescence imaging to sequentially follow in vivo material-mass loss to model the degradation of materials hydrolytically (PEG:dextran hydrogel) and enzymatically (collagen). Hydrogel erosion rates in vivo and in vitro correlated, enabling the prediction of in vivo erosion of new material formulations from in vitro data. Collagen in vivo erosion was used to infer physiologic in vitro conditions that mimic erosive in vivo environments. This approach enables rapid in vitro screening of materials, and can be extended to simultaneously determine drug release and material erosion from a drug-eluting scaffold, or cell viability and material fate in tissue-engineering formulations.
机译:可蚀生物材料的设计依赖于对体内保留时间进行编程的能力,这需要对侵蚀进行实时监测。但是,体内性能不能总是通过传统的体外侵蚀测定来预测[上标1、2],而标准方法会牺牲样品或动物[上标3],从而无法对同一样品进行连续测量。我们利用非侵入性荧光成像依次跟踪体内物质质量损失,以模拟水解(PEG:葡聚糖水凝胶)和酶(胶原蛋白)降解的材料。体内和体外的水凝胶腐蚀速率相关,从而能够根据体外数据预测新材料配方的体内腐蚀。体内胶原蛋白的侵蚀被用来推断模仿体内侵蚀环境的体外生理条件。这种方法可以对材料进行快速的体外筛选,并且可以扩展为同时确定药物洗脱支架中的药物释放和材料侵蚀,或组织工程制剂中的细胞活力和材料命运。

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