Division of Plastic Surgery and Hand Surgery, University Hospital Zurich, Sternwartstrasse 14, 8091, Zurich, Switzerland.
Laboratory of Applied Mechanobiology, ETH Zürich, Vladimir-Prelog-Weg 1-5/10, 8093, Zurich, Switzerland.
Sci Rep. 2019 Oct 22;9(1):15117. doi: 10.1038/s41598-019-51513-1.
To effectively translate bioactive scaffolds into a preclinical setting, proper sterilization techniques and storage conditions need to be carefully considered, as the chosen sterilization technique and storage condition might affect the structural and mechanical properties of the scaffolds, as well as the bioactivity and release kinetics of the incorporated biomolecules. Since rarely tested or quantified, we show here in a proof-of-concept study how these parameters are affected by UV sterilization and one week storage at different temperatures using bioactive electrospun DegraPol scaffolds that were specifically designed for application in the field of tendon rupture repair. Even though UV sterilization and the different storage conditions did not impact the morphology or the physicochemical properties of the bioactive scaffolds, UV sterilization caused significant attenuation of the growth factor release kinetics, here platelet derived growth factor (PDGF-BB) release (by approx. 85%) and slight decrease in ascorbic acid release (by approx. 20%). In contrast, 4 °C and -20 °C storage did not have a major effect on the release kinetics of PDGF-BB, while storage at room temperature caused increase in PDGF-BB released. All storage conditions had little effect on ascorbic acid release. Equally important, neither UV sterilization nor storage affected the bioactivity of the released PDGF-BB, suggesting stability of the bioactive scaffolds for at least one week and showing potential for bioactive DegraPol scaffolds to be translated into an off-the-shelf available product. These parameters are expected to be scaffold and protein-dependent.
为了将生物活性支架有效地转化为临床前环境,需要仔细考虑适当的灭菌技术和储存条件,因为所选的灭菌技术和储存条件可能会影响支架的结构和机械性能,以及掺入的生物分子的生物活性和释放动力学。由于很少进行测试或量化,我们在这里通过使用专门设计用于肌腱断裂修复领域的生物活性电纺 DegraPol 支架进行了概念验证研究,展示了这些参数如何受到 UV 灭菌和不同温度下一周储存的影响。尽管 UV 灭菌和不同的储存条件不会影响生物活性支架的形态或物理化学性质,但 UV 灭菌会导致生长因子释放动力学显著衰减,这里是血小板衍生生长因子(PDGF-BB)释放(约 85%)和抗坏血酸释放略有下降(约 20%)。相比之下,4°C 和-20°C 储存对 PDGF-BB 的释放动力学没有重大影响,而在室温下储存会导致 PDGF-BB 释放增加。所有储存条件对抗坏血酸释放的影响都很小。同样重要的是,UV 灭菌和储存都不会影响释放的 PDGF-BB 的生物活性,这表明生物活性支架至少稳定一周,并显示出生物活性 DegraPol 支架有可能转化为现成的可用产品。这些参数预计将取决于支架和蛋白质。