Minsart Manon, Deroose Nicolas, Parmentier Laurens, Van Vlierberghe Sandra, Mignon Arn, Dubruel Peter
Polymer Chemistry & Biomaterials Research Group, Centre of Macromolecular Chemistry, Department of Organic and Macromolecular Chemistry, Ghent University, Krijgslaan 281, Building S4-bis, Ghent, 9000, Belgium.
Smart Polymeric Biomaterials Research Group, Biomaterials and Tissue Engineering (SIEM) @ Campus Group T Leuven, Andreas Vesaliusstraat 13, Leuven, 3000, Belgium.
Macromol Biosci. 2023 Mar;23(3):e2200341. doi: 10.1002/mabi.202200341. Epub 2022 Dec 7.
Most commercial dressings with moderate to high exudate uptake capacities are mechanically weaker and/or require a secondary dressing. The current research article focuses on the development of hydrogel-based wound dressings combining mechanical strength with high exudate absorption capacities using acrylate-endcapped urethane-based precursors (AUPs). AUPs with varying poly(ethylene glycol) backbone molar masses (10 and 20 kg mol ) and endcap chemistries are successfully synthesized in toluene, subsequently processed into UV-cured hydrogel sheets and are benchmarked against several commercial wound dressings (Hydrosorb, Kaltostat, and Mepilex Ag). The AUP materials show high gel fractions (>90%) together with strong swelling degrees in water, phosphate buffered saline and simulated wound fluid (12.7-19.6 g g ), as well as tunable mechanical properties (e.g., Young's modulus: 0.026-0.061 MPa). The AUPs have significantly (p < 0.05) higher swelling degrees than the tested commercial dressings, while also being mechanically resistant. The elasticity of the synthesized materials leads to an increased resistance against fatigue. The di- and hexa-acrylated AUPs show excellent in vitro biocompatibility against human foreskin fibroblasts, as evidenced by indirect MTS assays and live/dead cell assays. In conclusion, the processed AUP materials demonstrate high potential for wound healing application and can even compete with commercially available dressings.
大多数具有中等至高渗液吸收能力的商用敷料机械强度较弱,和/或需要使用二级敷料。当前的研究文章聚焦于开发基于水凝胶的伤口敷料,该敷料使用丙烯酸酯封端的聚氨酯基前体(AUPs)将机械强度与高渗液吸收能力相结合。成功在甲苯中合成了具有不同聚乙二醇主链摩尔质量(10和20 kg/mol)和封端化学结构的AUPs,随后将其加工成紫外线固化水凝胶片,并与几种商用伤口敷料(Hydrosorb、Kaltostat和Mepilex Ag)进行基准测试。AUP材料显示出高凝胶分数(>90%),同时在水、磷酸盐缓冲盐水和模拟伤口液中具有很强的溶胀度(12.7 - 19.6 g/g),以及可调节的机械性能(例如,杨氏模量:0.026 - 0.061 MPa)。AUPs的溶胀度比测试的商用敷料显著更高(p < 0.05),同时还具有机械抗性。合成材料的弹性导致抗疲劳性增强。通过间接MTS测定和活/死细胞测定证明,二丙烯酸化和六丙烯酸化的AUPs对人包皮成纤维细胞具有优异的体外生物相容性。总之,加工后的AUP材料在伤口愈合应用中显示出很高的潜力,甚至可以与市售敷料竞争。