Collaborative Innovation Centre of Henan Province for Green Manufacturing of Fine Chemicals, Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Henan Engineering Research Centre of Chiral Hydroxyl Pharmaceutical, School of Chemistry and Chemical Engineering, Henan Normal University, Xinxiang 453007, China.
Biomater Sci. 2022 Dec 20;11(1):170-180. doi: 10.1039/d2bm01416e.
Supramolecular-polymeric hydrogels by combining low-molecular-weight gelators (LMWGs) with polymers have attracted great attention due to their unique double networks. Polymers are generally introduced into an LMWG matrix, thus enhancing the mechanical performance and broadening of the application fields of supramolecular hydrogels. Herein, a series of supramolecular-polymer hydrogels with inherent multiple properties were fabricated as wound dressings. An enzyme-like supramolecular H/G4 hydrogel co-assembled by hemin and guanosine-quartet motifs was successively integrated with hyaluronic acid (HA) and polyaniline (PANI), yielding a supramolecular-polymeric composite hydrogel (namely H/G4-HA(Cu)/PANI). The introduction of Cu-crosslinked hydrazide-grafted HA polymeric networks not only enhanced the viscoelasticity of the H/G4 supramolecular hydrogel but also endowed composite hydrogels with bioactive properties as wound healing dressings. The enzyme-like nanofibril H/G4 hydrogel could catalyse the oxidative polymerization of aniline, thus introducing PANI into gel networks. The porous H/G4-HA(Cu)/PANI exhibited a certain degree of swelling ratio under physiological conditions. H/G4-HA(Cu)/PANI also showed degradability, conductivity and appropriate mechanical properties. Through a full-thickness skin defect model of mice, this haemostatic, antioxidant, antibacterial and drug-free H/G4-HA(Cu)/PANI could accelerate wound healing processes by promoting wound closure, collagen deposition and upregulation of the CD31 expression level, which indicates that H/G4-HA(Cu)/PANI could be a promising wound dressing material.
通过将低分子量凝胶剂 (LMWG) 与聚合物结合形成超分子聚合物水凝胶,由于其独特的双网络结构,引起了人们的极大关注。聚合物通常被引入到 LMWG 基质中,从而提高了超分子水凝胶的机械性能和应用领域的拓宽。本文以伤口敷料为应用背景,制备了一系列具有内在多功能的超分子聚合物水凝胶。通过酶样超分子 H/G4 水凝胶与肝素和鸟嘌呤四联体结构单元的协同组装,将其与透明质酸 (HA) 和聚苯胺 (PANI) 进行集成,得到了超分子聚合物复合水凝胶(即 H/G4-HA(Cu)/PANI)。Cu 交联的酰腙接枝 HA 聚合物网络的引入不仅增强了 H/G4 超分子水凝胶的粘弹性,而且使复合水凝胶作为伤口愈合敷料具有生物活性。类酶纳米纤维 H/G4 水凝胶可以催化苯胺的氧化聚合,从而将 PANI 引入凝胶网络中。多孔 H/G4-HA(Cu)/PANI 在生理条件下具有一定的溶胀比。H/G4-HA(Cu)/PANI 还具有可降解性、导电性和适当的机械性能。通过小鼠全层皮肤缺损模型,这种具有止血、抗氧化、抗菌和无药物的 H/G4-HA(Cu)/PANI 可以通过促进伤口闭合、胶原沉积和上调 CD31 表达水平来加速伤口愈合过程,这表明 H/G4-HA(Cu)/PANI 可能是一种有前途的伤口敷料材料。