State Key Laboratory of Environmental Friendly Energy Materials, School of Materials Science and Engineering, Southwest University of Science and Technology, Sichuan, 621010, China.
Institute for NanoScale Science and Technology, College of Science and Engineering, Flinders University, South Australia, 5042, Australia.
Adv Healthc Mater. 2022 Oct;11(20):e2200717. doi: 10.1002/adhm.202200717. Epub 2022 Aug 24.
Hydrogels with soft and wet properties have been intensively investigated for chronic disease tissue repair. Nevertheless, tissue engineering hydrogels containing high water content are often simultaneously suffered from low porous size and low water-resistant capacities, leading to undesirable surgery outcomes. Here, a novel sponge-like macro-porous hydrogel (SM-hydrogel) with stable macro-porous structures and anti-swelling performances is developed via a facile, fast yet robust approach induced by Ti C MXene additives. The MXene-induced SM-hydrogels (80% water content) with 200-300 µm open macropores, demonstrating ideal mass/nutrient infiltration capability at ≈20-fold higher water/blood-transport velocity over that of the nonporous hydrogels. Moreover, the highly strong interactions between MXene and polymer chains endow the SM-hydrogels with excellent anti-swelling capability, promising equilibrium SM-hydrogels with identical macro-porous structures and toughened mechanical performances. The SM-hydrogel with versatile functions such as facilitating mass transport, antibacterial (bacterial viability in (Acrylic acid-co-Methacrylamide dopamine) copolymer-Ti C MXene below 25%), and reactive oxygen species scavenging capacities (96% scavenging ratio at 120 min) synergistically promotes diabetic wound healing (compared with non-porous hydrogels the wound closure rate increased from 39% to 81% within 7 days). Therefore, the durable SM-hydrogels exhibit connective macro-porous structures and bears versatile functions induced by MXene, demonstrating its great potential for wound tissue engineering.
具有柔软和湿润特性的水凝胶已被广泛研究用于慢性疾病组织修复。然而,含有高含水量的组织工程水凝胶通常同时存在多孔尺寸低和耐水能力差的问题,导致不理想的手术效果。在这里,通过一种简单、快速且稳健的方法,利用 TiC MXene 添加剂,开发了一种具有稳定大孔结构和抗肿胀性能的新型海绵状大孔水凝胶 (SM-水凝胶)。具有 200-300 μm 大开孔的 MXene 诱导的 SM-水凝胶 (含水量为 80%),其质量/营养物渗透能力约是无孔水凝胶的 20 倍,水/血液传输速度更快。此外,MXene 和聚合物链之间的强相互作用赋予了 SM-水凝胶优异的抗肿胀能力,有望得到具有相同大孔结构和增强机械性能的平衡 SM-水凝胶。SM-水凝胶具有促进质量传递、抗菌((丙烯酸-co-甲基丙烯酰胺多巴胺)共聚物-TiC MXene 中的细菌活力低于 25%)和清除活性氧物质的能力(120 分钟时清除率达到 96%)等多种功能,协同促进糖尿病伤口愈合(与无孔水凝胶相比,7 天内伤口闭合率从 39%增加到 81%)。因此,耐用的 SM-水凝胶具有连接的大孔结构,并具有由 MXene 诱导的多种功能,展示了其在伤口组织工程中的巨大潜力。