School of Materials and Mineral Resources Engineering, Universiti Sains Malaysia, Engineering Campus, 14300, Nibong Tebal, Penang, Malaysia.
De Eco SR Hygiene, Science and Engineering Research Centre (SERC), Engineering Campus, Universiti Sains Malaysia, 14300, Nibong Tebal, Penang, Malaysia.
Sci Rep. 2023 Sep 1;13(1):14379. doi: 10.1038/s41598-023-41477-8.
The most common material used for blood bags is PVC, which requires the addition of DEHP to increase its flexibility. DEHP is known to cross the polymer barrier and move into the stored blood and, ultimately, the patient's bloodstream. In this work, an alternative prototype composed of SEBS/PP was fabricated through blow-moulding and compared with the commercially available PVC-based blood bag which was designated as the control. The blow-moulded sample layers were welded together using CO lasers and optimized to obtain complete sealing of the sides. The samples' performance characteristics were analyzed using water permeability, oxygen permeability, shelf-life, and bioburden tests. The SEBS/PP sample exhibited the highest oxygen permeability rate of 1486.6 cc/m/24 h after 40 days of ageing, indicating that the sample is conducive for red blood cell (RBC) respiration. On the other hand, the SEBS/PP sample showcased a lower water permeability rate of 0.098 g/h m after 40 days of aging, indicating a high-water barrier property and thus preventing water loss during storage. In comparison, the oxygen and water permeability rates of PVC-DEHP were found to be distinctly lower in performance (662.7 cc/m/24 h and 0.221 g/h m, respectively). In addition, shelf-life analyses revealed that after 40 days of ageing, polymer samples exhibited no visual damage or degradation. The optimal parameters to obtain adequate welding of the SEBS/PP were determined to be power of 60% (18 W), speed of 70 in/sec and 500 Pulse Per Inch (PPI). Furthermore, the bioburden estimates of SEBS/PP of 115 CFU are markedly lower compared to the bioburden estimate of PVC-DEHP of 213 CFU. The SEBS/PP prototype can potentially be an effective alternative to PVC-based blood bags, particularly for high-risk patients in order to reduce the likelihood of medical issues.
最常用于血袋的材料是 PVC,为了增加其柔韧性,需要添加 DEHP。已知 DEHP 会穿过聚合物屏障并进入储存的血液中,并最终进入患者的血液中。在这项工作中,通过吹塑成型制造了一种由 SEBS/PP 组成的替代原型,并与市售的基于 PVC 的血袋进行了比较,后者被指定为对照。通过 CO 激光将吹塑成型的样品层焊接在一起,并进行了优化以获得完全密封。使用水渗透率、氧气渗透率、保质期和生物负荷测试来分析样品的性能特征。SEBS/PP 样品在老化 40 天后表现出最高的氧气渗透率,为 1486.6 cc/m/24 h,表明该样品有利于红细胞(RBC)呼吸。另一方面,SEBS/PP 样品在老化 40 天后表现出较低的水渗透率,为 0.098 g/h·m,表明具有较高的水阻隔性能,从而防止储存过程中的水分流失。相比之下,PVC-DEHP 的氧气和水渗透率明显较低(分别为 662.7 cc/m/24 h 和 0.221 g/h·m)。此外,保质期分析表明,在老化 40 天后,聚合物样品没有出现可见的损坏或降解。确定获得 SEBS/PP 充分焊接的最佳参数为功率 60%(18 W)、速度 70 英寸/秒和 500 脉冲/英寸(PPI)。此外,SEBS/PP 的生物负荷估计为 115 CFU,明显低于 PVC-DEHP 的生物负荷估计值 213 CFU。SEBS/PP 原型有可能成为基于 PVC 的血袋的有效替代品,特别是对于高风险患者,以降低医疗问题的可能性。